WO2004052182A2 - Monitoring and treating hemodynamic parameters - Google Patents

Monitoring and treating hemodynamic parameters Download PDF

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Publication number
WO2004052182A2
WO2004052182A2 PCT/US2003/039524 US0339524W WO2004052182A2 WO 2004052182 A2 WO2004052182 A2 WO 2004052182A2 US 0339524 W US0339524 W US 0339524W WO 2004052182 A2 WO2004052182 A2 WO 2004052182A2
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WO
WIPO (PCT)
Prior art keywords
sensors
carrier
data
effectors
electrical
Prior art date
Application number
PCT/US2003/039524
Other languages
French (fr)
Other versions
WO2004052182A3 (en
Inventor
Mark Zdeblick
George M. Savage
Original Assignee
Proteus Biomedical, Inc.
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Proteus Biomedical, Inc. filed Critical Proteus Biomedical, Inc.
Priority to EP03812966A priority Critical patent/EP1581102A4/en
Priority to AU2003296956A priority patent/AU2003296956A1/en
Priority to CA002508800A priority patent/CA2508800A1/en
Priority to JP2004558723A priority patent/JP2006509547A/en
Publication of WO2004052182A2 publication Critical patent/WO2004052182A2/en
Publication of WO2004052182A3 publication Critical patent/WO2004052182A3/en

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Classifications

    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B5/00Measuring for diagnostic purposes; Identification of persons
    • A61B5/24Detecting, measuring or recording bioelectric or biomagnetic signals of the body or parts thereof
    • A61B5/25Bioelectric electrodes therefor
    • A61B5/279Bioelectric electrodes therefor specially adapted for particular uses
    • A61B5/28Bioelectric electrodes therefor specially adapted for particular uses for electrocardiography [ECG]
    • A61B5/283Invasive
    • A61B5/287Holders for multiple electrodes, e.g. electrode catheters for electrophysiological study [EPS]
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B5/00Measuring for diagnostic purposes; Identification of persons
    • A61B5/03Detecting, measuring or recording fluid pressure within the body other than blood pressure, e.g. cerebral pressure; Measuring pressure in body tissues or organs
    • A61B5/036Detecting, measuring or recording fluid pressure within the body other than blood pressure, e.g. cerebral pressure; Measuring pressure in body tissues or organs by means introduced into body tracts
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61NELECTROTHERAPY; MAGNETOTHERAPY; RADIATION THERAPY; ULTRASOUND THERAPY
    • A61N1/00Electrotherapy; Circuits therefor
    • A61N1/02Details
    • A61N1/04Electrodes
    • A61N1/05Electrodes for implantation or insertion into the body, e.g. heart electrode
    • A61N1/0526Head electrodes
    • A61N1/0529Electrodes for brain stimulation
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61NELECTROTHERAPY; MAGNETOTHERAPY; RADIATION THERAPY; ULTRASOUND THERAPY
    • A61N1/00Electrotherapy; Circuits therefor
    • A61N1/02Details
    • A61N1/04Electrodes
    • A61N1/05Electrodes for implantation or insertion into the body, e.g. heart electrode
    • A61N1/0551Spinal or peripheral nerve electrodes
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61NELECTROTHERAPY; MAGNETOTHERAPY; RADIATION THERAPY; ULTRASOUND THERAPY
    • A61N1/00Electrotherapy; Circuits therefor
    • A61N1/02Details
    • A61N1/04Electrodes
    • A61N1/05Electrodes for implantation or insertion into the body, e.g. heart electrode
    • A61N1/056Transvascular endocardial electrode systems
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B18/00Surgical instruments, devices or methods for transferring non-mechanical forms of energy to or from the body
    • A61B18/04Surgical instruments, devices or methods for transferring non-mechanical forms of energy to or from the body by heating
    • A61B18/12Surgical instruments, devices or methods for transferring non-mechanical forms of energy to or from the body by heating by passing a current through the tissue to be heated, e.g. high-frequency current
    • A61B18/14Probes or electrodes therefor
    • A61B18/1492Probes or electrodes therefor having a flexible, catheter-like structure, e.g. for heart ablation
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B2562/00Details of sensors; Constructional details of sensor housings or probes; Accessories for sensors
    • A61B2562/02Details of sensors specially adapted for in-vivo measurements
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61NELECTROTHERAPY; MAGNETOTHERAPY; RADIATION THERAPY; ULTRASOUND THERAPY
    • A61N1/00Electrotherapy; Circuits therefor
    • A61N1/02Details
    • A61N1/04Electrodes
    • A61N1/05Electrodes for implantation or insertion into the body, e.g. heart electrode
    • A61N1/0551Spinal or peripheral nerve electrodes
    • A61N1/0553Paddle shaped electrodes, e.g. for laminotomy

Definitions

  • the present invention relates generally to medical devices and methods. More particularly, the present invention relates to medical devices that carry multiplexed effectors for performing a variety of diagnostic and therapeutic procedures.
  • the present invention generally provides multiplexed medical carrier devices and systems, and methods for configuring and using multiplexed carriers.
  • multiplexed or “multiplexing,” it is generally meant that a carrier may carry two or more effectors which may transmit and/or receive signals to and/or from one or more "remote" devices.
  • a remote device may be located anywhere, either on the carrier or apart from the carrier.
  • each effector on a multiplexed carrier will be identifiable in some way by the remote device.
  • effectors may be addressable, may transmit signals on different frequencies, at different times, and/or the like.
  • multiplexing may be accomplished by any of a number of different techniques.
  • One technique for example, may be referred to generally as “broadcasting.” Broadcasting generally refers to transmitting of any kind, and those terms are often used interchangeably herein.
  • An example of broadcasting is a radio transmitter, which broadcasts analog information in a frequency band using either Amplitude Modulation (AM) or Frequency Modulation (FM).
  • AM Amplitude Modulation
  • FM Frequency Modulation
  • a second multiplexing technique may be referred to as "frequency-domain multiplexing.” Examples of this technique are provided by walkie-talkies and citizen-band (CB) radios. Each CB radio has a frequency selector that allows the transmitter to select a carrier frequency for transmission, preferably one that is not being used by another CB radio. The transmitter's voice is converted by a microphone into an analog electrical signal that modulates that carrier frequency using either AM or FM modulation. The receiver, of course, must be tuned to the same carrier frequency, or channel. It then de-modulates the received carrier signal back into an analog electrical signal, which drives the speaker that allows the receiver to hear the message.
  • a typical CB radio might have 20 "channels" or carrier frequencies to choose from. Using this system, 20 different conversations may be transmitted and received simultaneously in the same vicinity. Each radio would use its frequency band 100% of the time.
  • time-domain multiplexing An everyday example of time-domain multiplexing is a polite dinner conversation. Here, each person shares the single transmission medium of sound waves with each other. Typically, people take turns using that transmission medium to broadcast information, which may be received by any other listener. Electronically, the same principle may be used, where two wires transmit electronic information between any number of transceivers. There are two common methods for allocating time: synchronous and asynchronous. In synchronous, each transmitter is allocated a certain period of time on a regular basis to transmit information.
  • a telephone might electronically convert a voice into a 20,000 numbers per second, break up those 20,000 numbers into 100 "packets" of 200 numbers each and transmit each packet in, for example, a microsecond.
  • 100 packets, each containing 200 numbers might be transmitted by a single transmitter per second. Since each packet needs only 1 microsecond of transmission time, each transmitter uses only 100 microseconds of transmission time per second. Thus, each transmitter uses the transmission line only 0.1 % of the time. If there were 1000 transmitters sharing the same line, for example, each would be allocated 1 microsecond out of every 1000 microseconds, usually synchronized by a clock signal. Typically, each transmitter would use the same microsecond during each 1000 microsecond period.
  • each effector has a digital address or number.
  • each broadcast from an effector includes the digital address, which is read by each receiver. If the address corresponds to a receiver's address, then that receiver accepts the information and in some cases carries out additional instructions.
  • a conversation may be digitized by an analog-to digital converter, which might convert a voice into 20,000 digital numbers per second. The telephone might broadcast every 10 ms (or 100 times per second) it's own address followed by 200 numbers representing the previous 10 ms of voice information. In a modern system, it might take less than 1 microsecond to transmit the address and the 200 numbers.
  • the receiving station would then read that address, remember the following 200 numbers and then route those numbers, preceded by the address (or number) of the destination telephone, to each of one or more destination telephones.
  • the receiving antennae would listen on its dedicated frequency until it "hears" its address and then remembers the next 200 numbers.
  • a Digital-to- Analog Converter then converts those numbers, over the next 10 ms, into an analog signal that is transmitted to the speaker in or connected to the telephone. Since each telephone only uses 1 microsecond (or significantly less in high performance systems) out of every 10 ms, one can see how, at least theoretically, 1000 telephones, each allocated a 1 microsecond time slot out of every 10 ms, could share a single frequency band.
  • any of these techniques, or any other suitable techniques may be used in a multiplexed carrier of the invention.
  • combinations of the above described techniques may be used, such as a combination of frequency-domain and time-domain multiplexing.
  • identifiable effectors on a multiplexed carrier may be addressed (or addressable) or may be identifiable by some other means, without addressing.
  • multiplexed medical carriers comprise a body having a surface and at least two lumens, and at least two electrical conductors, each conductor disposed in a separate lumen along at least a portion of the body.
  • the body is adapted to mount and electrically couple to the electrical conductors at least two separately identifiable effectors at a plurality of distributed locations within the body or on the surface.
  • Each conductor may be disposed in a separate lumen along any portion of the body or along the entire length of the body. In one embodiment, for example, each conductor is disposed in a separate lumen along at least a distal portion of the body.
  • a separate lumen it is meant any separate passageway.
  • separate lumens may be formed as separately extruded lumens in some embodiments, while in others they may comprise partitioned portions of one lumen or the like.
  • Carriers will usually comprise a plurality of effectors mounted on the body and coupled to the conductor(s). Coupling of the effectors with the conductors may be achieved by any suitable means. In one embodiment, for example, the conductors are uninsulated along at least part of their lengths to allow for coupling with the effectors.
  • effectors is generally used herein to refer to sensors, actuators, sensor/actuators, or any other device that may be coupled with a carrier for performing a function.
  • the at least two identifiable effectors comprise a transducer and a processor (digital or analog), where the processor is identifiable and distinguishable from all other effector processors using conventional multiplexing circuitry.
  • the effectors may be intended for collecting data, such as but not limited to pressure data, volume data, dimension data, temperature data, oxygen or carbon dioxide concentration data, hematocrit data, electrical conductivity data, electrical potential data, pH data, chemical data, blood flow rate data, thermal conductivity data, optical property data, cross-sectional area data, viscosity data, radiation data and the like.
  • the effectors may be intended for actuation or intervention, such as providing an electrical current or voltage, setting an electrical potential, heating a substance or area, inducing a pressure change, releasing or capturing a material or substance, emitting light, emitting sonic or ultrasound energy, emitting radiation and the like.
  • both sensor(s) and actuator(s) may be coupled with a carrier.
  • the effectors include a transducer and an electronic conversion circuit, wherein output from the transducer is encoded using a carrier frequency and broadcast onto one of the electrical conductors, and wherein each effector utilizes a different carrier frequency.
  • at least some of the effectors may include a transducer and an electronic conversion circuit, wherein output from the transducer is broadcast onto one of the electrical conductors during a specified time interval, and wherein each effector utilizes a different time interval.
  • the carrier body will comprise three electrical conductors electrically coupled to the effectors, each conductor being isolated in at least a portion of one of the lumens of the carrier body.
  • the three electrical conductors may include, for example, a ground conductor, a power conductor, and a data conductor. As will be described in more detail below, such a three-wire system is most useful for connecting the effectors to an external power supply as well as collecting data and/or providing instruction to transducers within the effectors and appropriately addressing the effector with the external controller.
  • Effectors may be coupled to electrical conductors by any suitable means, but in one embodiment they are coupled to a wire in the carrier through an opening in the body of the carrier and via a conductive material, such as a conductive gel, fluid, paste, slurry, epoxy or eutectic.
  • the conductive material may extend through part or all of a length of the carrier, and in some embodiments may act as the electrical conductors themselves. Effectors may also be mounted on the carrier body in any suitable way, such as on an external surface or an internal surface of the body.
  • the body comprises an elongated body, such as an intravascular or other intraluminal catheter, adapted to be introduced to and through a blood vessel or other body lumen.
  • the conductor(s) extend axially from a distal location at or near the distal tip of the elongated body to a proximal connection, typically within a proximal hub on the catheter or other elongated body.
  • the multiple effectors will typically be axially spaced-apart, although they may also be circumferentially spaced apart under certain circumstances.
  • Such catheters may comprise from two effectors to 100 effectors, typically comprising from 4 effectors to 40 effectors, and more typically comprising from 4 effectors to 12 effectors.
  • the body comprises a flat surface, adapted to be positioned on a tissue such as brain tissue.
  • the conductor(s) are disposed along one or more additional surfaces in proximity to the flat surface.
  • the flat surface may comprise any number of effectors, but some embodiments include from 6 effectors to 1000 effectors and more preferably from 36 effectors to 100 effectors.
  • the present invention provides an improved medical carrier of the type including a plurality of actuators.
  • the improvement comprises providing separately addressable actuators that are multiplexed by at least one common conductor in the medical carrier.
  • at least some of the actuators comprise electrodes for delivering electrical energy.
  • any other suitable actuators may be used, such as the actuators described further above. Further particular features of this aspect of the present invention are set forth above with respect to the first description of the medical carrier.
  • the present invention provides an improved medical carrier of the type including a plurality of systems.
  • the improvement comprises separately identifiable systems that are multiplexed by at least one common conductor, with each system including at least one sensor, at least one actuator, and an electronic circuit. Sensors and actuators may be any of those described above or any other suitable sensors or actuators.
  • at least one of the plurality of systems comprises an electrode sensor for measuring electrical potential and an electrode actuator for delivering electrical energy.
  • a system comprises a multiplexed medical carrier having a plurality of separately identifiable effectors distributed over a surface thereof, wherein the effectors are multiplexed by at least one common connector.
  • the system further includes a multiplexing controller adapted to connect to the effectors via the common conductor, typically arranged as a bus together with further conductors in a conventional multiplexing system.
  • the multiplexed medical carrier may be connected to the multiplexing controller in any conventional fashion.
  • the multiplexing controller could be adapted for a wireless connection to the multiplexed medical carrier, in which case the medical carrier would include a transceiver for such wireless communication.
  • the system may comprise an implantable data collection and transmission unit, which connects to an implanted multiplexed medical carrier and which wirelessly communicates with the multiplexing controller.
  • the present invention still further provides methods for configuring a medical carrier comprising: providing a body having a surface and at least one electrical conductor; selectively mounting at least one separately identifiable effector on the surface; and electrically coupling the at least one effector to the at least one electrical conductor through a surface penetration.
  • two or three connections would be made between the effectors and respective conductors within the body.
  • Selectively mounting typically comprises exposing the conductor(s) through the surface and electrically coupling a lead from the each of the effectors to each conductor.
  • the method may further involve encapsulating at least a portion of the body and the effector(s) with an encapsulating material. Specific aspects of the body and effectors have been described in more detail above.
  • the invention provides an improved method for configuring a medical carrier of the type including a plurality of actuators. The improvement comprises providing separately identifiable actuators that are multiplexed by at least one common conductor.
  • an improved method for configuring a medical carrier of the type including a plurality of systems comprises providing separately identifiable systems that are multiplexed by at least one common conductor.
  • each system comprises at least one sensor, at least one actuator, and an electronic circuit.
  • the present invention still further provides methods for collecting medical data from a patient.
  • a network of multiplexed sensors residing on parallel conductors residing in the patient is interrogated.
  • interrogating comprises (a) addressing a first addressable sensor in the network to obtain first data and (b) addressing a second addressable sensor in the network to obtain second data.
  • Interrogating according to this method may further comprise addressing third, fourth, fifth, and even additional sensors in the network to obtain additional sets of data.
  • the methods will further comprise powering sensors within the multiplexed network of sensors via the network.
  • each sensor may transmit data without interrogation.
  • data may be encoded by processing circuitry collocated with the sensor.
  • the encoding scheme allows processing circuitry located outside the patient to extract the data thereby transmitted.
  • the data collected may include any one of pressure data, volume data, dimension data, temperature data, oxygen or carbon dioxide concentration data, hematocrit data, electrical conductivity data, electrical potential data, pH data, chemical data, blood flow rate data, thermal conductivity data, optical property data, cross-sectional area data, viscosity data, radiation data and the like.
  • Typical methods will be performed where the sensors are distributed and the catheter present in the vasculature and/or within a chamber of the heart. Other methods will be performed where the sensors are distributed on a flat surface and the surface is present on or near brain tissue.
  • a method for collecting medical data from a patient involves activating a network of multiplexed sensors residing on parallel conductors in the patient such that each activated sensor transmits sensed data.
  • the transmitted data is received and separated into multiple data streams, each data stream comprising data from one sensor.
  • each activated sensor transmits data on a different carrier frequency.
  • sensors may transmit data at different time intervals or the like.
  • a method for delivering energy or one or more substances to a patient involves addressing at least a first addressable actuator in a network of actuators to cause the first actuator to deliver energy or a substance.
  • a second addressable actuator is addressed to cause the actuator to deliver energy or a substance.
  • third, fourth or any number of additional actuators may be similarly addressed. Any suitable function(s) may be performed by the actuators, as described more fully above, and the actuators may reside in any suitable location in the patient.
  • Fig. 1 is a schematic illustration of a multiplexed medical carrier, in the form of an intraluminal catheter, constructed in accordance with the principals of the present invention.
  • Fig. 1A is a schematic illustration of a multiplexed medical carrier, in the form of flat surface, constructed in accordance with the principals of the present invention
  • Fig. 2 is a schematic illustration of an effector constructed in accordance with the principals of the present invention.
  • FIG. 3 A illustrates a first exemplary effector for measuring pressure constructed in accordance with the principals of the present invention.
  • Fig. 3B illustrates a second exemplary effector for measuring electrical conductivity constructed in accordance with the principals of the present invention.
  • Fig. 4 is a perspective view of an intravascular or intracardiac catheter having multiple sensors thereon constructed in accordance with the principals of the present invention.
  • Fig. 5 illustrates a cross-sectional view of the catheter of Fig. 4.
  • Fig. 6 is a detailed view of the section of the body of the catheter of Fig. 4 shown with an aperture preformed in its side prior to connecting an effector according to the methods of the present invention.
  • Fig. 7 illustrates an exemplary effector construction for mounting on the catheter body of Fig. 6.
  • Fig. 8 A is a cross-sectional view of the effector of Fig. 7 mounted on the catheter body of Fig. 6.
  • Fig. 8B is a perspective view of a portion of a multiplexed medical carrier, showing the effector of Figs. 7 and 8 A mounted on the catheter body of Fig. 6.
  • Fig. 9 illustrates use of the catheter of Fig. 4 in performing intracardiac monitoring according to methods of the present invention.
  • an "effector" on a multiplexed medical carrier may comprise a sensor, an actuator, a sensor/actuator, or any other suitable device, and any given carrier may include one or more sensors, actuators, or a combination of both.
  • a multiplexed carrier is configured as an elongate catheter, with one or more effectors disposed along its length.
  • the carrier is configured as a flat surface, with effectors disposed along the surface. Each effector is separately identifiable and all effectors on a given carrier are coupled to at least two electrical conductors disposed on, or more typically within, a body of the carrier.
  • the effectors may be mounted to a surface of the carrier or may be disposed within the body of the carrier.
  • multiplexed medical carriers may be used for sensing any of a variety of data, such as pressure data, volume data, dimension data, temperature data, oxygen or carbon dioxide concentration data, hematocrit data, electrical conductivity data, electrical potential data, pH data, chemical data, blood flow rate data, thermal conductivity data, optical property data, cross-sectional area data, viscosity data, radiation data and the like.
  • the effectors may be intended for actuation or intervention, such as providing an electrical current or voltage, setting an electrical potential, heating a substance or area, inducing a pressure change, releasing or capturing a material, emitting light, emitting sonic or ultrasound energy, emitting radiation and/or the like.
  • Carriers may also be used in a variety of locations within a body, such as in one or more chambers of the heart, in arterial or venous vasculature, in or on brain tissue, in the urinary, gastrointestinal or reproductive tracts, in the abdominal cavity, in a joint space or the like. Methods for monitoring one or more patient parameters using a multiplexed medical carrier and for fabricating such a carrier are also provided.
  • a multiplexed medical carrier 100 of the present invention suitably includes a body 102, multiple electrical conductors 104 disposed in body 102, and multiple, separately idenitfiable effectors 106a-e, which may be disposed at distributed locations within body 102, in a lumen 112 of body 102, and/or on an exterior surface of body 102.
  • many variations may be made in the size or configuration of body 102, in the number and type of electrical conductors 104, in the number and type of effectors 106a-e and/or the like.
  • Body 102 of multiplexed medical carrier 100 may have any suitable shape, size, configuration, dimensions and the like.
  • body 102 comprises an elongate catheter body having a proximal end 108 and a distal end 110 and defining a central lumen 112.
  • body 102 includes one or more intramural lumens (not shown), which run longitudinally within body 102 and may house one or more electrical conductors 104, conductive material(s) such a gel, fluid, paste, slurry, epoxy or eutectic and/or other components of multiplexed carrier 100.
  • intramural lumens such as a gel, fluid, paste, slurry, epoxy or eutectic and/or other components of multiplexed carrier 100.
  • intramural lumens (not shown), which run longitudinally within body 102 and may house one or more electrical conductors 104, conductive material(s) such a gel, fluid, paste, slurry, epoxy or eutectic and/or other components of multiplexed carrier 100.
  • conductive material(s) such as gel, fluid, paste, slurry, epoxy or eutectic and/or other components of multiplexed carrier 100.
  • body 102 may comprise a flat surface, with effectors being disposed along the surface and
  • body 102 may comprise a catheter body adapted for intraluminal introduction into a target body lumen or other body structure, such as vasculature or the heart.
  • body 102 may include a guidewire lumen configured for over-the-wire or rapid exchange introduction, in various embodiments.
  • Catheter bodies intended for intravascular introduction may have a length in the range from 50 cm to 200 cm and an outer diameter in the range from 1 French to 12 French (0.33 mm: 1 French).
  • Bodies 102 will typically be composed of an organic polymer, which is fabricated by conventional extrusion techniques. Suitable polymers include polyvinylchloride, polyurethanes, polyesters, polytetrafluoroethylenes (PTFE), silicone polymers, natural rubbers, polyamides (i.e., nylons) and the like.
  • the catheter body may be reinforced with braid, helical wires, coils, axial filaments, or the like, in order to increase rotational strength, column strength, toughness, pushability, and the like.
  • Suitable catheter bodies may be formed by extrusion, with one or more channels being provided when desired. The catheter diameter can be modified by heat expansion and shrinkage using conventional techniques. The resulting catheters will thus be suitable for introduction to the vascular system, the heart, or any other desired location by conventional techniques.
  • body 102 comprises an elongated body, such as an intravascular or other intraluminal catheter
  • electrical conductor(s) 104 extend axially from a distal location at or near the distal tip of the elongated body to a proximal connection, typically within a proximal hub on the catheter or other elongated body 102.
  • effectors 106 will typically be axially spaced-apart, although they may also be circumferentially spaced apart under certain circumstances.
  • Such catheters may comprise any suitable number of effectors, such as from two effectors 106 to 100 effectors 106, typically comprising from 4 effectors 106 to 40 effectors 106, and more typically comprising from 4 effectors 106 to 12 effectors 106.
  • Electrical conductors 104 generally comprise conductors running axially along all or a portion of the length of body 102.
  • Conductors 104 may comprise thin, elongate wires, a conductive sheath or mesh disposed within or on a surface of body 102, or the like. In one embodiment, only one electrical conductor 104 is used and a conductive fluid or gel in central lumen 112 or an intramural lumen acts as a ground. More commonly, however, multiplexed medical carrier 100 includes two, or preferably three, electrical conductors 104. In some embodiments, each electrical conductor 104 is isolated at least a portion of its length.
  • body 102 may comprise three or more intramural lumens and each electrical conductor 104 may be housed in a separate intramural lumen.
  • each electrical conductor 104 typically performs a unique function.
  • one conductor 104 comprises a ground conductor, one comprises a power conductor and one comprises a data conductor.
  • a ground conductor generally acts as a conventional electrical grounding mechanism, to return electrical current to the proximal end 108 of multiplexed carrier 100.
  • a power conductor provides energy to one or more effectors 106a-e and a data conductor may transmit data to and/or from one or more effectors 106a-e.
  • three electrical conductors 104 is described as an exemplary embodiment only. Various other embodiments may include, one, two or more than three conductors 104. Some embodiments may even include no conductors 104, for example if wireless RF communication is used.
  • multiplexed medical carrier 100 may include one effector 106, two effectors, five effectors (as shown in Figure 1) or any other suitable number of effectors 106a-e.
  • Effectors 106a-e which are described further below, may be of any suitable size and configuration and may be disposed within carrier body 102 (as effector 106c) on an interior surface of body 102 (as effector 106d) and/or on an exterior surface of body 102 (as effectors 106a, b and e).
  • effectors 106a-e may be positioned at any suitable locations relative to the longitudinal length of body 102.
  • effectors 106 may be advantageous to dispose effectors 106 along the length of carrier 100 so as to measure one or more parameters in two adjacent chambers of the heart simultaneously. Any suitable combination of numbers, types, sizes and placements of effectors 106 is contemplated within the scope of the invention.
  • Each effector 106a-e is coupled with each electrical conductor 104 via a lead 214.
  • Medical carriers 100 of the present invention such as the catheter in Figure 1, are referred to as multiplexed carriers because multiple, separately identifiable effectors 106a-e are coupled with a single set (or "network") of electrical conductors 104.
  • all effectors 104 would be coupled with a common ground conductor, a common data conductor and a common power conductor.
  • Such multiplexing provides for convenient use of multiple effectors 106 on one carrier 100, without requiring a separate set of electrical conductors 104 for each effector 104.
  • Using separate sets of conductors for each effector 106 limits the number of possible effectors 106 due to constraints of size and maneuverability of the catheter.
  • a multiplexed medical carrier 150 suitably includes a body comprising a flat surface 152 and multiple effectors 154 disposed along surface 152. Any suitable size and configuration of surface may be used and any number of effectors may be used. In some embodiments, between 4 and 1000 effectors may be used and preferably between 36 and 100 effectors. Carrier 150 may further include one or more conductors 158, which may similarly comprise flat surfaces positioned adjacent to or in proximity with flat surface 152. One or more leads 156 may extend from each effector 154 to electronically couple with each conductor 158. In this way, each flat conductor 158 may communicate with all of the addressable effectors 154 on flat surface 152. Such a flat configuration of carrier 150 may be used for any suitable purpose, such as for placement on a bodily tissue. In one embodiment, carrier 150 is configured for placement on brain tissue.
  • an effector 106 suitably includes a chip 202, typically a silicon chip, including or coupled with one or more arms 214a-c.
  • an arm 214a-c generally comprises any suitable structure for housing an electrode, for electrically coupling effector 106 with an electrical conductor 104.
  • Chip 202 typically includes a transducer 206, which may comprise a sensor for sensing a parameter within a vascular structure, the heart, or other body structure, or an actuator for actuating a pressure change, temperature change or any other suitable action within the body structure.
  • Sensors may comprise any suitable sensors such as pressure sensors, volume sensors, dimension sensors, temperature or thermal sensors, oxygen or carbon dioxide sensors, electrical conductivity sensors, electrical potential sensors, pH sensors, chemical sensors, flow rate sensors, optical sensors, acoustic sensors, hematocrit sensors, viscosity sensors and the like.
  • An actuator may perform any suitable function, such as providing an electrical current or voltage, setting an electrical potential, generating a biopotential, pacing a heart, heating a substance or area, inducing a pressure change, releasing or capturing a material, emitting light, emitting sonic or ultrasound energy, emitting radiation or the like.
  • transducer 206 may extend beyond the outer boundaries of chip 202, while in others transducer 206 may be confined wholly within chip 202.
  • Chip also typically includes circuitry 204 for providing measurement of a parameter sensed by transducer 206.
  • circuitry 204 for providing measurement of a parameter sensed by transducer 206.
  • a processor includes an analog-to-digital (AD) converter 210 for converting data from circuitry 204 into digital data, stored address information 208 for addressing the processor, and a microprocessor 212 for receiving and processing data from the AD converter 210 and/or from data supplied by a data conductor 214b.
  • AD analog-to-digital
  • no addressing system is used. Instead, each effector broadcasts data either during a predetermined interval or using a dedicated frequency.
  • One embodiment may include, for example, a circuit including a voltage-controlled duty cycle oscillator that converts a differential pressure signal into an oscillator with a variable duty cycle. Such a circuit is described, for example, in U.S. Provisional Patent Application No.
  • the output of such a circuit produces a series of pulses: the ratio of the time in the "on” state to the time in the "off state is proportional to the absolute pressure.
  • On and off states generally represent two different voltage levels, and the off state need not be zero (0) volts. It may be preferable, in fact, to designate a positive voltage, such as 3 V, as the off state and a higher voltage, such as 5 V, as the on state. Any combination of voltages may be used.
  • This series of pulses then becomes the envelope for a carrier frequency of a voltage controlled oscillator. Each of several sensors may broadcast at a different carrier frequency.
  • An external monitor may have a number of electronic filters connected in parallel to the catheter's output line, with each filter tuned to one of the carrier frequencies.
  • the output of each filter may, for example, comprise a series of square pulses whose duty cycle (the ratio of on time to off time) is proportional to the pressure measured by that sensor.
  • Circuitry, sensors, processing apparatus or any other suitable components of chip 202 may be fabricated using lithographic processes similar to those used to make transistors and micro-electromechanical systems (MEMS) devices.
  • MEMS micro-electromechanical systems
  • a silicon chip for example, a thin coating of polyimide may be spun onto a wafer and patterned. Metal lines, fabricated from a thin layer of chrome and a thicker layer of gold in one embodiment, may then be formed on the cured polyimide. A second layer of polyimide is then deposited and patterned on the wafer.
  • chip 202 remains adhered to the polyimide and the silicon is removed from under the polyimide and two or more flexible "flaps.”
  • the flexible flaps may comprise electrodes for contacting with electrical conductors 104.
  • Arms 214a-c may comprise any suitable means for housing electrodes or electrical leads (not shown).
  • an arm 214a-c may comprise simply an electrode coupled with chip 202 via a wire or other conductive material.
  • arms 214a-c are flexible, such that they can be conformed to a surface of body 102 of a multiplexed carrier 100.
  • any suitable arms may be used.
  • any number of arms 214a-c may be used, depending on the number of electrodes to be coupled with chip 202.
  • effector 106 includes three arms 104a-c, each housing one electrode corresponding to an isolated electrical conductor 104.
  • One arm may comprise a power transmission lead 214a for transmitting energy from a power conductor 104 to circuitry 204.
  • a second arm may comprise a data lead 214b for transmitting data between a data conductor 104 and microprocessor 212.
  • a third arm may comprise a ground lead 214c for coupling circuitry 204 with a ground conductor 104. In other embodiments, fewer than three or more than three arms 214 may be used to couple chip 202 with one or more electrical conductors 104.
  • effector 106 typically includes a chip 202, coupled with one or more, and often three, flexible arms 214a-c.
  • the transducer comprises a pressure sensor 302 embedded on chip 202 for sensing pressure within a body structure, such as pressure within a blood vessel or heart chamber.
  • each arm 214 includes an electrode 314, coupled to chip 202 via a thin film wire 312.
  • Other embodiments may alternatively include arms having electrodes 314 with other means for coupling electrodes 314 with chip 202.
  • a transducer may comprise an electrical conductivity sensor 304 for sensing electrical conductivity of blood.
  • effector 106 may be configured to sense any suitable parameter, such as but not limited to pressure, volume, dimensions, temperature, oxygen, electrical conductivity, electrical potential, pH, lactase, ejection fraction, regurgitant flow or other chemical or physical parameters and/or rates of change in any of the above parameters.
  • any suitable effectors be they sensors or actuators, may be used in various embodiments of the present invention. Examples of such effectors have been described above.
  • Carrier 100 may generally include body 102 coupled at its proximal end with a handle 402. As previously described, body 102 may include multiple effectors 106a-c disposed at dispersed locations wholly or partially on its outer surface.
  • Handle 402 may include any suitable means for holding, manipulating, activating or otherwise using multiplexed carrier.
  • handle 402 may suitably include one or more electrical connections 404 and one or more fluidic connections.
  • carrier 100 includes body 102, three separate intramural lumens 502a-c disposed within body 102, and central lumen 112, defined by body 102.
  • Each intramural lumen 502a-c may contain an electrical conductor 504a-c.
  • each electrical conductor 504a-c may be configured to have a distinct function.
  • the three conductors in one embodiment may include a ground conductor 504a, a power conductor 504b and a data conductor 504c. In a given embodiment, fewer or additional conductors may suitably be included.
  • any suitable placement of conductors 504a-c within intramural lumens 502a-c is contemplated.
  • conductors 504a-c may be alternatively disposed on the inner surface 506 of central lumen 112.
  • greater than four, five, eight or any other suitable number of intramural lumens 502a-c may be included and electrical conductors 504a-c may be disposed in adjacent or spaced-apart lumens 502.
  • a conductive material such as a conductive gel or fluid may be disposed within the lumen in some embodiments.
  • body 102 is fabricated from two or more layers of material.
  • intramural lumens 504a-c may be positioned between two layers of material.
  • one layer of body 102 such as a metallic mesh or solid metallic layer, comprises an electrical conductor 504 such that leads from effectors may contact that layer to achieve conductance.
  • a conducting fluid or gel may disposed in central lumen 112 and/or one or more intramural lumens 502 may act as an electrical conductor 502.
  • body 102 may include one or more holes or sidewall openings 602.
  • Sidewall openings 602 provide locations for placement of arms of effectors (not shown in Figure 6), so that electrodes of the effectors may electrically contact electrical conductors 504.
  • a sidewall opening 602 is generally positioned to overly a part of one or more intramural lumens 502. In Figure 6, sidewall opening 602 overlies one intramural lumen 502a and one electrical conductor 504a.
  • opening 602 may be positioned so as to provide access to two lumens and electrical conductors, three lumens and electrical conductors, or any other suitable number.
  • an arm of an effector is typically positioned over a sidewall opening 602 such that the electrode in the arm contacts conductive gel, fluid or other substance in an intramural lumen. Electrical signals may then travel through the conductive substance between the electrode of the effector and the electrical conductor in the intramural lumen 502.
  • an effector 700 includes a chip 702 and three arms 704a-c.
  • chip 702 typically includes a transducer, such as a sensor or actuator, and an addressable processor.
  • Arms 704a-c may extend from chip 702 in any suitable directions and may have any suitable shape, size and configuration.
  • two arms 704a and 704c are configured to wrap partially or completely around body 102 of multiplexed medical carrier 100 and a third arm 704b extends longitudinally along the outer surface of body 102.
  • One or more arms 704 may include a protrusion 706 for extending through an outer later of body 102 to contact blood or other bodily fluid surrounding body 102. anchoring effector 700 in a location of body 102.
  • arms 704a-c may be disposed on an outer surface of body 102 and an outer cover or coating may be placed over body 102, covering leads.
  • Protrusion 706 may extend through this outer coating or covering, sense one or more parameters and or to actuate an effect in fluid surrounding body 102.
  • effector 700 may be coupled with multiplexed medical carrier 100 by any suitable means or in any configuration.
  • effector 700 may be disposed partially or wholly within body 102.
  • effector 700 may be mounted between an inner layer 810 and an outer layer 808 of body 102.
  • body 102 may comprise multiple layers of extruded plastic material and effector 700 may be disposed between inner layer 810 and outer layer 808 of extruded plastic or other flexible material, such as silicone.
  • outer layer 808 will comprise a thin layer of extruded material and may be transparent in some embodiments.
  • outer layer 808 may comprise a thin coating of the same material used in fabricating body 102 or of a different material.
  • effectors 700 may be glued or otherwise fastened with adhesive to an outer surface of body 102, rather than mounting effectors 700 between layers of body.
  • any suitable adhesive may be used.
  • effectors 700 are mounted on the outer surface of body 102 in such a way that arms 704 contact body 102 and chip 202 is spaced slightly apart from the outer surface of body. In other words, chip 202 "floats" above body. Such a floating chip may confer added flexibility to carrier 100. Any other suitable means for mounting effectors 700 onto multiplexed medical catheter is contemplated.
  • effectors 700 may be mounted via mechanical pressure mounting, with two or more arms of effector 700 applying force to hold effector 700 to body 102.
  • one or more portions of effector 700 will typically extend through outer layer 808, such as chip 702 or anchor 706.
  • anchor 706 may also serve as a sensor or actuator and, thus, may protrude through outer layer 808 to contact blood or other substances in order to sense a parameter. All or a portion of chip 706 may also extend through outer layer 808, as desired.
  • Other sensors, actuators, anchors or other portions of effector 700 may likewise protrude through outer layer 808 to contact blood or other substances surrounding carrier 100 or for any other purpose.
  • leads extend from chip 702 as part of flexible arms 704a and 704c.
  • Arms 704 generally house an electrode coupled to chip via a flexible wire or similar electrical connection.
  • Each electrode (not shown) is positioned by an arm 704a, 704c in proximity with an electrical conductor 804a-c.
  • body 102 typically includes sidewall openings 806a-c, to allow conductivity between electrodes and electrical conductors 804a-c.
  • Conductive fluid, gel or similar substance in an intramural lumen 802a-c comes in contact with an adjacent electrode and provides a conductive medium between the electrode and electrical conductor 804a-c.
  • Figure 8B provides a perspective view of multiplexed medical carrier 100 with effector 700 as in Figure 8A and with flexible arm 704a pulled back to show sidewall opening 806a.
  • the dotted line represents outer layer 808, which again may comprise a thin, transparent or opaque layer or coating through which one or more portions of effector 700 protrude.
  • Flexible arm 704a housing one electrode, is shown pulled back to expose sidewall opening 806a in body 102.
  • flexible arm 704a normally lies over and completely covers opening 806a— i.e., the diameter of opening 806a is smaller than the width of the flexible arm 704a.
  • Electrical conductor 804a is exposed in intramural lumen 802a, which contains a gel, fluid or other conductive substance.
  • a second flexible arm 704b may be coupled with anchor 706, which protrudes through outer layer 808.
  • flexible arms are lined up to improved the die yield on a silicon wafer, so that when flattened they appear rectangular in shape.
  • a system 900 of the present invention may include a multiplexed medical carrier 100 and a multiplexing controller 910 adapted to connect to and control carrier 100.
  • System 900 may be used in a variety of settings and a variety of body structures but in one embodiment is configured to measure parameters within a heart 920.
  • multiplexing controller 910 connects to multiplexing carrier 100 via a wired connection including one or more wires, cables or the like.
  • controller 910 and carrier 100 are coupled via a wireless connection.
  • system 900 may further include an implantable data collection and transmission unit (not shown), which connects to the multiplexed carrier 100 (either via wired or wireless connection) and communicates wirelessly with multiplexing controller 910.
  • multiplexing medical carrier 100 may include any suitable number of separately addressable effectors 700 disposed at any suitable locations along carrier 100.
  • a method for collecting medical data from a patient according to the present invention may include interrogating a multiplexed network of sensors residing in the patient.
  • the network may include multiple effectors 700 residing in one or more chambers of a patient's heart 920.
  • Interrogating the network may comprise addressing a first addressable sensor in the network to obtain data, addressing a second addressable sensor in the network and so on, depending on the number of addressable sensors residing in the patient.
  • Data acquired may include any of a number of parameters, such as but not limited to pressure, volume dimensions, temperature, oxygen, electrical conductivity, electrical potential, pH, lactase, ejection fraction, regurgitant flow and/or other chemical or mechanical parameters.
  • the method may further include powering sensors within the multiplexed network of sensors via the network.
  • One of the electrical conductors may provide power to sensors in the network.
  • methods of the invention may be carried out in any suitable body structure, such as but not limited to the heart, arterial or venous vasculature, other hollow body structures such as the urinary bladder, and/or the like.
  • the method may not include interrogating the multiplexed network of sensors.
  • the sensors may be activated so as to broadcast sensed data.
  • each sensor may broadcast data using a different frequency, a different specified time span or the like. Broadcast data may then be received and processed to separate the data for the different sensors.
  • each effector relies on a single carrier frequency for its communication with the other elements or a central controller.
  • a sensor may broadcast its data using a dedicated carrier frequency.
  • An actuator may receive its instructions on a different dedicated frequency.
  • the effectors may communicate with one another via a network analogous to an Ethernet.
  • ultrasound broadcast transducers in electrical communication with ultrasound receivers may be placed some distance away. Distance between the transducers and the receivers may then be accurately determined from acoustic delay, even if the catheter bends.
  • addressing While some embodiments of multiplexing catheters employ addressing, others operate without addressing.
  • multiplexed carrier 100 comprises a catheter, as in Figure 9 and is used to measure pressure at multiple locations along the catheter using multiple sensor effectors 700.
  • One sensor may be positioned near the distal tip of the catheter, such as a pigtail catheter, to measure hemodynamic parameters in a left ventricle.
  • Another sensor could be positioned far enough away from the distal sensor so that it would be located outside the left ventricle during use.
  • Each sensor could transmit a signal indicating pressure at the location of the sensor to an external device, such as multiplexing controller 910.
  • the controller 910 could then subtract a downstream pressure from an upstream pressure to provide real-time measurement of the pressure gradient across the mitral valve.
  • a multiplexed carrier 100 could be adapted to measure volume of a heart chamber, artery, other vessel or the like, using impedance plethysmography.
  • Such a method would generally utilize two effectors 700 at spaced locations along carrier 100 which act as actuators to produce a voltage.
  • a method might involve producing an AC current with the two effectors 700 through blood surrounding carrier 100 at a frequency of over 100 kHz, such as 125 kHz.
  • a linear array of voltage- measuring effectors 700 would be disposed along carrier 100 between the two voltage- producing effectors 700.
  • Electric circuits in the voltage-measuring effectors 700 would filter a time-varying potential produced by the voltage-producing effectors 700, so that only the potential variation at that frequency would be used to measure the resistance of the blood between the various voltage-measuring electrodes. If one effector 700 is also adapted to measure conductivity of the blood, then a measurement of the volume of the vessel or chamber can be inferred from the various resistance measurements.

Abstract

A multiplexed medical carrier (100) provides for sensing one or more patient parameters and/or delivering energy via separately identifiable effectors (106). The carrier (100) includes a body (102) and at least two electrical conductors (104) coupled with at least two effectors (106). Effectors (106) may be any combination of sensors (206), actuators (206) or both. Sensors (206) may measure such parameters as pressure, oxygen content, volume, conductivity, fluid flow rate, or any other chemical or physical parameters. Actuators (206) may be used, for example, to pace a heart, stimulate muscle or neural tissue, broadcast ultrasonic energy, emit light, heat or other forms of radiation, or deliver any form of energy or substance. A method for collecting medical data from a patient includes interrogating a network of multiplexed sensors (106) residing on parallel conductors in the patient, including addressing a first addressable sensor (106) in the network to obtain data and addressing a second addressable sensor (106) in the network to obtain data.

Description

METHOD AND SYSTEM FOR MONITORING AND TREATING HEMODYNAMIC PARAMETERS
CROSS REFERENCE TO RELATED APPLICATIONS [0001] This application claims priority to U.S. Provisional Patent Application No. 60/432,929, filed on December 11, 2002, which is hereby fully incorporated by reference.
This application is related to U.S. Provisional Patent Application No. 60/ , (Attorney
Docket No. 21308-000200US) filed concurrently with this application, which is hereby fully incorporated by reference.
BACKGROUND OF THE INVENTION 1. Field of the Invention
[0002] The present invention relates generally to medical devices and methods. More particularly, the present invention relates to medical devices that carry multiplexed effectors for performing a variety of diagnostic and therapeutic procedures.
[0003] Intravascular and intraluminal interventions and monitoring have become essential in modern cardiology and other medical fields. Of particular interest to the present invention, a variety of intravascular catheters, implantable sensors, implantable stimulation leads, and other devices have been developed for monitoring and affecting cardiac performance and other patient parameters. While enjoying significant utility, such monitoring and therapeutic catheters have generally included only a single or limited number of sensors and/or actuators (together referred to generally herein as "effectors"). Thus, the ability to monitor or affect multiple parameters and/or a single parameter at a number of distributed positions along the catheter or other device has been significantly limited. One of the main reasons why catheters and other devices have only included a limited number of effectors has been the requirement to "hard wire" each effector to a dedicated connection or other terminal on the catheter.
[0004] Therefore, it would be desirable to provide improved catheters, implantable stimulation leads, and other devices for the intravascular and intraluminal monitoring of patient parameters, such as pressure, temperature, conductivity, electrical potential, blood flow, blood volume and the like. It would also be desirable to provide improved catheters and other devices for intravascular and intraluminal delivery of therapeutic interventions, such as tissue ablation and electrical stimulation for cardiac pacing and other physiologic purposes. It would be particularly desirable to provide such devices with multiple effectors (sensors and/or actuators) distributed over the product. It would be further desirable to permit a single device to include effectors of many different types and to permit communication to and from the effectors using a limited number of wires in the devices. It would be further desirable to provide convenient fabrication methods for such devices and convenient methods for using such devices in patients. At least some of these objectives will be met by the inventions described below. 2. Description of the Background Art
[0005] Catheters having multiple electrodes for cardiac mapping, ablation and/or other purposes are shown in U.S. Patent Nos. 4,397,314; 4,603,705; 4,776,334; 4,815,472; 4,881,410; 5,113,868; 5,419,767; 5,509,411; 5,579,764; 5,591,142; 5,662,587; 5,924,997; 5,902,248; 6,033,398; 6,309,385; and published applications US 2002/0156417 Al and US 2002/0026183 Al. U.S. Patent No. 4,815,472 describes a catheter having multiple solid state sensors permanently bonded to two common leads with multiplexing capability. U.S. Patent No. 5,579,764 describes a mapping and ablation catheter having a common bus without multiplexing. U.S. Patent No. 2002/0156417 describes MEMS sensing modules with conditioning circuitry connected to a dual-lead bus in the catheter.
BRIEF SUMMARY OF THE INVENTION [0006] The present invention generally provides multiplexed medical carrier devices and systems, and methods for configuring and using multiplexed carriers. By "multiplexed" or "multiplexing," it is generally meant that a carrier may carry two or more effectors which may transmit and/or receive signals to and/or from one or more "remote" devices. A remote device may be located anywhere, either on the carrier or apart from the carrier. Typically, each effector on a multiplexed carrier will be identifiable in some way by the remote device. For example, effectors may be addressable, may transmit signals on different frequencies, at different times, and/or the like. In some instances at least, addressable effectors, particularly addressable electrodes and other actuators (as defined below) are preferred where a digital or other switching circuit is provided at or on the effector to allow external digital or other controllers or circuitry to selectively power, actuate, or otherwise initiate operation of the effector and/or the like. [0007] Generally, multiplexing may be accomplished by any of a number of different techniques. One technique, for example, may be referred to generally as "broadcasting." Broadcasting generally refers to transmitting of any kind, and those terms are often used interchangeably herein. An example of broadcasting is a radio transmitter, which broadcasts analog information in a frequency band using either Amplitude Modulation (AM) or Frequency Modulation (FM). In either case, multiple sources broadcast at different frequencies, and multiple receivers have "tuners" that allow them to filter, or reject, all frequencies except those of interest to the receiver. Then, the signal from the accepted frequency is "de-modulated" to produce the original signal. This is an example of "basic" broadcasting, where any receiver may use the information that is broadcast from any transmitter.
[0008] A second multiplexing technique may be referred to as "frequency-domain multiplexing." Examples of this technique are provided by walkie-talkies and citizen-band (CB) radios. Each CB radio has a frequency selector that allows the transmitter to select a carrier frequency for transmission, preferably one that is not being used by another CB radio. The transmitter's voice is converted by a microphone into an analog electrical signal that modulates that carrier frequency using either AM or FM modulation. The receiver, of course, must be tuned to the same carrier frequency, or channel. It then de-modulates the received carrier signal back into an analog electrical signal, which drives the speaker that allows the receiver to hear the message. A typical CB radio might have 20 "channels" or carrier frequencies to choose from. Using this system, 20 different conversations may be transmitted and received simultaneously in the same vicinity. Each radio would use its frequency band 100% of the time.
[0009] A third exemplary multiplexing technique may be referred to as "time-domain multiplexing." An everyday example of time-domain multiplexing is a polite dinner conversation. Here, each person shares the single transmission medium of sound waves with each other. Typically, people take turns using that transmission medium to broadcast information, which may be received by any other listener. Electronically, the same principle may be used, where two wires transmit electronic information between any number of transceivers. There are two common methods for allocating time: synchronous and asynchronous. In synchronous, each transmitter is allocated a certain period of time on a regular basis to transmit information. For example, a telephone might electronically convert a voice into a 20,000 numbers per second, break up those 20,000 numbers into 100 "packets" of 200 numbers each and transmit each packet in, for example, a microsecond. Thus, 100 packets, each containing 200 numbers, might be transmitted by a single transmitter per second. Since each packet needs only 1 microsecond of transmission time, each transmitter uses only 100 microseconds of transmission time per second. Thus, each transmitter uses the transmission line only 0.1 % of the time. If there were 1000 transmitters sharing the same line, for example, each would be allocated 1 microsecond out of every 1000 microseconds, usually synchronized by a clock signal. Typically, each transmitter would use the same microsecond during each 1000 microsecond period.
[0010] Other multiplexing techniques involve addressing, whereby each effector has a digital address or number. For example, each broadcast from an effector includes the digital address, which is read by each receiver. If the address corresponds to a receiver's address, then that receiver accepts the information and in some cases carries out additional instructions. Returning to the telephone example, a conversation may be digitized by an analog-to digital converter, which might convert a voice into 20,000 digital numbers per second. The telephone might broadcast every 10 ms (or 100 times per second) it's own address followed by 200 numbers representing the previous 10 ms of voice information. In a modern system, it might take less than 1 microsecond to transmit the address and the 200 numbers. The receiving station would then read that address, remember the following 200 numbers and then route those numbers, preceded by the address (or number) of the destination telephone, to each of one or more destination telephones. The receiving antennae would listen on its dedicated frequency until it "hears" its address and then remembers the next 200 numbers. A Digital-to- Analog Converter then converts those numbers, over the next 10 ms, into an analog signal that is transmitted to the speaker in or connected to the telephone. Since each telephone only uses 1 microsecond (or significantly less in high performance systems) out of every 10 ms, one can see how, at least theoretically, 1000 telephones, each allocated a 1 microsecond time slot out of every 10 ms, could share a single frequency band.
[0011] Any of these techniques, or any other suitable techniques, may be used in a multiplexed carrier of the invention. In some embodiments, for example, combinations of the above described techniques may be used, such as a combination of frequency-domain and time-domain multiplexing. As is evident from the above description, identifiable effectors on a multiplexed carrier may be addressed (or addressable) or may be identifiable by some other means, without addressing.
[0012] According to one aspect of the invention, multiplexed medical carriers comprise a body having a surface and at least two lumens, and at least two electrical conductors, each conductor disposed in a separate lumen along at least a portion of the body. The body is adapted to mount and electrically couple to the electrical conductors at least two separately identifiable effectors at a plurality of distributed locations within the body or on the surface. Each conductor may be disposed in a separate lumen along any portion of the body or along the entire length of the body. In one embodiment, for example, each conductor is disposed in a separate lumen along at least a distal portion of the body. By "a separate lumen" it is meant any separate passageway. Thus, separate lumens may be formed as separately extruded lumens in some embodiments, while in others they may comprise partitioned portions of one lumen or the like.
[0013] Carriers will usually comprise a plurality of effectors mounted on the body and coupled to the conductor(s). Coupling of the effectors with the conductors may be achieved by any suitable means. In one embodiment, for example, the conductors are uninsulated along at least part of their lengths to allow for coupling with the effectors. The term "effectors" is generally used herein to refer to sensors, actuators, sensor/actuators, or any other device that may be coupled with a carrier for performing a function. In some embodiments, for example, the at least two identifiable effectors comprise a transducer and a processor (digital or analog), where the processor is identifiable and distinguishable from all other effector processors using conventional multiplexing circuitry. The effectors may be intended for collecting data, such as but not limited to pressure data, volume data, dimension data, temperature data, oxygen or carbon dioxide concentration data, hematocrit data, electrical conductivity data, electrical potential data, pH data, chemical data, blood flow rate data, thermal conductivity data, optical property data, cross-sectional area data, viscosity data, radiation data and the like. Alternatively, the effectors may be intended for actuation or intervention, such as providing an electrical current or voltage, setting an electrical potential, heating a substance or area, inducing a pressure change, releasing or capturing a material or substance, emitting light, emitting sonic or ultrasound energy, emitting radiation and the like. In some embodiments, both sensor(s) and actuator(s) may be coupled with a carrier. In one embodiment, at least some of the effectors include a transducer and an electronic conversion circuit, wherein output from the transducer is encoded using a carrier frequency and broadcast onto one of the electrical conductors, and wherein each effector utilizes a different carrier frequency. Alternatively, at least some of the effectors may include a transducer and an electronic conversion circuit, wherein output from the transducer is broadcast onto one of the electrical conductors during a specified time interval, and wherein each effector utilizes a different time interval. [0014] In some embodiments, the carrier body will comprise three electrical conductors electrically coupled to the effectors, each conductor being isolated in at least a portion of one of the lumens of the carrier body. The three electrical conductors may include, for example, a ground conductor, a power conductor, and a data conductor. As will be described in more detail below, such a three-wire system is most useful for connecting the effectors to an external power supply as well as collecting data and/or providing instruction to transducers within the effectors and appropriately addressing the effector with the external controller. Effectors may be coupled to electrical conductors by any suitable means, but in one embodiment they are coupled to a wire in the carrier through an opening in the body of the carrier and via a conductive material, such as a conductive gel, fluid, paste, slurry, epoxy or eutectic. The conductive material may extend through part or all of a length of the carrier, and in some embodiments may act as the electrical conductors themselves. Effectors may also be mounted on the carrier body in any suitable way, such as on an external surface or an internal surface of the body.
[0015] In one preferred embodiment, the body comprises an elongated body, such as an intravascular or other intraluminal catheter, adapted to be introduced to and through a blood vessel or other body lumen. In such cases, the conductor(s) extend axially from a distal location at or near the distal tip of the elongated body to a proximal connection, typically within a proximal hub on the catheter or other elongated body. In such cases, the multiple effectors will typically be axially spaced-apart, although they may also be circumferentially spaced apart under certain circumstances. Such catheters may comprise from two effectors to 100 effectors, typically comprising from 4 effectors to 40 effectors, and more typically comprising from 4 effectors to 12 effectors. In other preferced embodiments, the body comprises a flat surface, adapted to be positioned on a tissue such as brain tissue. In such cases, the conductor(s) are disposed along one or more additional surfaces in proximity to the flat surface. The flat surface may comprise any number of effectors, but some embodiments include from 6 effectors to 1000 effectors and more preferably from 36 effectors to 100 effectors.
[0016] In another aspect, the present invention provides an improved medical carrier of the type including a plurality of actuators. The improvement comprises providing separately addressable actuators that are multiplexed by at least one common conductor in the medical carrier. In some embodiments, for example, at least some of the actuators comprise electrodes for delivering electrical energy. In other embodiments, any other suitable actuators may be used, such as the actuators described further above. Further particular features of this aspect of the present invention are set forth above with respect to the first description of the medical carrier.
[0017] In another aspect, the present invention provides an improved medical carrier of the type including a plurality of systems. The improvement comprises separately identifiable systems that are multiplexed by at least one common conductor, with each system including at least one sensor, at least one actuator, and an electronic circuit. Sensors and actuators may be any of those described above or any other suitable sensors or actuators. In one embodiment, at least one of the plurality of systems comprises an electrode sensor for measuring electrical potential and an electrode actuator for delivering electrical energy. [0018] In a still further aspect of the present invention, a system comprises a multiplexed medical carrier having a plurality of separately identifiable effectors distributed over a surface thereof, wherein the effectors are multiplexed by at least one common connector. The system further includes a multiplexing controller adapted to connect to the effectors via the common conductor, typically arranged as a bus together with further conductors in a conventional multiplexing system. The multiplexed medical carrier may be connected to the multiplexing controller in any conventional fashion. For example, when the multiplexed medical carrier is a catheter, a hub or cable on the catheter may be removably connected to the multiplexing controller in a conventional "hard wired" configuration. Alternatively, the multiplexing controller could be adapted for a wireless connection to the multiplexed medical carrier, in which case the medical carrier would include a transceiver for such wireless communication. Still further alternatively, the system may comprise an implantable data collection and transmission unit, which connects to an implanted multiplexed medical carrier and which wirelessly communicates with the multiplexing controller. [0019] The present invention still further provides methods for configuring a medical carrier comprising: providing a body having a surface and at least one electrical conductor; selectively mounting at least one separately identifiable effector on the surface; and electrically coupling the at least one effector to the at least one electrical conductor through a surface penetration.. Typically, two or three connections would be made between the effectors and respective conductors within the body. Selectively mounting typically comprises exposing the conductor(s) through the surface and electrically coupling a lead from the each of the effectors to each conductor. Optionally, the method may further involve encapsulating at least a portion of the body and the effector(s) with an encapsulating material. Specific aspects of the body and effectors have been described in more detail above. [0020] In another aspect, the invention provides an improved method for configuring a medical carrier of the type including a plurality of actuators. The improvement comprises providing separately identifiable actuators that are multiplexed by at least one common conductor.
[0021] In yet another aspect of the invention, an improved method for configuring a medical carrier of the type including a plurality of systems is provided. The improvement comprises providing separately identifiable systems that are multiplexed by at least one common conductor. In some embodiments, each system comprises at least one sensor, at least one actuator, and an electronic circuit.
[0022] The present invention still further provides methods for collecting medical data from a patient. A network of multiplexed sensors residing on parallel conductors residing in the patient is interrogated. In particular, interrogating comprises (a) addressing a first addressable sensor in the network to obtain first data and (b) addressing a second addressable sensor in the network to obtain second data. Interrogating according to this method may further comprise addressing third, fourth, fifth, and even additional sensors in the network to obtain additional sets of data. Usually, the methods will further comprise powering sensors within the multiplexed network of sensors via the network. Alternatively, each sensor may transmit data without interrogation. In this case, data may be encoded by processing circuitry collocated with the sensor. The encoding scheme (e.g., by frequency, duty cycle, or digitally) allows processing circuitry located outside the patient to extract the data thereby transmitted. The data collected may include any one of pressure data, volume data, dimension data, temperature data, oxygen or carbon dioxide concentration data, hematocrit data, electrical conductivity data, electrical potential data, pH data, chemical data, blood flow rate data, thermal conductivity data, optical property data, cross-sectional area data, viscosity data, radiation data and the like. Typical methods will be performed where the sensors are distributed and the catheter present in the vasculature and/or within a chamber of the heart. Other methods will be performed where the sensors are distributed on a flat surface and the surface is present on or near brain tissue. Still other methods will be performed where the sensors are distributed and the catheter present in the urinary tract, reproductive tract, endoscopic surgical site, abdominal cavity, gastrointestinal tract or a joint space. [0023] In still another aspect of the invention, a method for collecting medical data from a patient involves activating a network of multiplexed sensors residing on parallel conductors in the patient such that each activated sensor transmits sensed data. The transmitted data is received and separated into multiple data streams, each data stream comprising data from one sensor. In one embodiment, each activated sensor transmits data on a different carrier frequency. Alternatively, sensors may transmit data at different time intervals or the like. [0024] In another aspect of the invention, a method for delivering energy or one or more substances to a patient involves addressing at least a first addressable actuator in a network of actuators to cause the first actuator to deliver energy or a substance. In some embodiments, a second addressable actuator is addressed to cause the actuator to deliver energy or a substance. Optionally, third, fourth or any number of additional actuators, may be similarly addressed. Any suitable function(s) may be performed by the actuators, as described more fully above, and the actuators may reside in any suitable location in the patient. [0025] These and other embodiments are described more fully below.
BRIEF DESCRIPTION OF THE DRAWINGS [0026] Fig. 1 is a schematic illustration of a multiplexed medical carrier, in the form of an intraluminal catheter, constructed in accordance with the principals of the present invention. [0027] Fig. 1A is a schematic illustration of a multiplexed medical carrier, in the form of flat surface, constructed in accordance with the principals of the present invention [0028] Fig. 2 is a schematic illustration of an effector constructed in accordance with the principals of the present invention.
[0029] Fig. 3 A illustrates a first exemplary effector for measuring pressure constructed in accordance with the principals of the present invention.
[0030] Fig. 3B illustrates a second exemplary effector for measuring electrical conductivity constructed in accordance with the principals of the present invention. [0031] Fig. 4 is a perspective view of an intravascular or intracardiac catheter having multiple sensors thereon constructed in accordance with the principals of the present invention.
[0032] Fig. 5 illustrates a cross-sectional view of the catheter of Fig. 4. [0033] Fig. 6 is a detailed view of the section of the body of the catheter of Fig. 4 shown with an aperture preformed in its side prior to connecting an effector according to the methods of the present invention.
[0034] Fig. 7 illustrates an exemplary effector construction for mounting on the catheter body of Fig. 6.
[0035] Fig. 8 A is a cross-sectional view of the effector of Fig. 7 mounted on the catheter body of Fig. 6. [0036] Fig. 8B is a perspective view of a portion of a multiplexed medical carrier, showing the effector of Figs. 7 and 8 A mounted on the catheter body of Fig. 6. [0037] Fig. 9 illustrates use of the catheter of Fig. 4 in performing intracardiac monitoring according to methods of the present invention.
DETAILED DESCRIPTION OF THE INVENTION [0038] The present invention generally provides medical devices that carry multiplexed effectors for performing a variety of diagnostic and/or therapeutic procedures. Also provided are methods for making and using such devices. As described above, an "effector" on a multiplexed medical carrier may comprise a sensor, an actuator, a sensor/actuator, or any other suitable device, and any given carrier may include one or more sensors, actuators, or a combination of both. In some embodiments, a multiplexed carrier is configured as an elongate catheter, with one or more effectors disposed along its length. In other embodiments, the carrier is configured as a flat surface, with effectors disposed along the surface. Each effector is separately identifiable and all effectors on a given carrier are coupled to at least two electrical conductors disposed on, or more typically within, a body of the carrier.
[0039] The effectors may be mounted to a surface of the carrier or may be disposed within the body of the carrier. In various embodiments, such multiplexed medical carriers may be used for sensing any of a variety of data, such as pressure data, volume data, dimension data, temperature data, oxygen or carbon dioxide concentration data, hematocrit data, electrical conductivity data, electrical potential data, pH data, chemical data, blood flow rate data, thermal conductivity data, optical property data, cross-sectional area data, viscosity data, radiation data and the like. Alternatively, the effectors may be intended for actuation or intervention, such as providing an electrical current or voltage, setting an electrical potential, heating a substance or area, inducing a pressure change, releasing or capturing a material, emitting light, emitting sonic or ultrasound energy, emitting radiation and/or the like. Carriers may also be used in a variety of locations within a body, such as in one or more chambers of the heart, in arterial or venous vasculature, in or on brain tissue, in the urinary, gastrointestinal or reproductive tracts, in the abdominal cavity, in a joint space or the like. Methods for monitoring one or more patient parameters using a multiplexed medical carrier and for fabricating such a carrier are also provided.
[0040] With reference now to Figure 1, a multiplexed medical carrier 100 of the present invention suitably includes a body 102, multiple electrical conductors 104 disposed in body 102, and multiple, separately idenitfiable effectors 106a-e, which may be disposed at distributed locations within body 102, in a lumen 112 of body 102, and/or on an exterior surface of body 102. In any given embodiment, many variations may be made in the size or configuration of body 102, in the number and type of electrical conductors 104, in the number and type of effectors 106a-e and/or the like. Thus, the embodiment shown in Figure 1 and described further below is merely one exemplary embodiment and should not be interpreted to limit the scope of the invention as set forth in the claims. [0041] Body 102 of multiplexed medical carrier 100 may have any suitable shape, size, configuration, dimensions and the like. In some embodiments, as in Figure 1, body 102 comprises an elongate catheter body having a proximal end 108 and a distal end 110 and defining a central lumen 112. In addition to central lumen 112, in some embodiments body 102 includes one or more intramural lumens (not shown), which run longitudinally within body 102 and may house one or more electrical conductors 104, conductive material(s) such a gel, fluid, paste, slurry, epoxy or eutectic and/or other components of multiplexed carrier 100. (Generally, the phrase "within body 102" means within the wall of body 102. A location within central lumen 112 formed by body 102 will be referred to as "in central lumen 112.") In other embodiments, as described further below with reference to Figure 1 A, body may comprise a flat surface, with effectors being disposed along the surface and with conductors disposed along adjacent flat surfaces.
[0042] In many embodiments, body 102 may comprise a catheter body adapted for intraluminal introduction into a target body lumen or other body structure, such as vasculature or the heart. The dimensions, materials and other physical characteristics of body 102 will vary significantly depending on the body structure to be accessed and monitored. For example, one or more portions of body 102 may be flexible while one or more other portions may be relatively rigid. Body 102 may include a guidewire lumen configured for over-the-wire or rapid exchange introduction, in various embodiments. Catheter bodies intended for intravascular introduction may have a length in the range from 50 cm to 200 cm and an outer diameter in the range from 1 French to 12 French (0.33 mm: 1 French). Bodies 102 will typically be composed of an organic polymer, which is fabricated by conventional extrusion techniques. Suitable polymers include polyvinylchloride, polyurethanes, polyesters, polytetrafluoroethylenes (PTFE), silicone polymers, natural rubbers, polyamides (i.e., nylons) and the like. Optionally, the catheter body may be reinforced with braid, helical wires, coils, axial filaments, or the like, in order to increase rotational strength, column strength, toughness, pushability, and the like. Suitable catheter bodies may be formed by extrusion, with one or more channels being provided when desired. The catheter diameter can be modified by heat expansion and shrinkage using conventional techniques. The resulting catheters will thus be suitable for introduction to the vascular system, the heart, or any other desired location by conventional techniques.
[0043] In embodiments in which body 102 comprises an elongated body, such as an intravascular or other intraluminal catheter, electrical conductor(s) 104 extend axially from a distal location at or near the distal tip of the elongated body to a proximal connection, typically within a proximal hub on the catheter or other elongated body 102. In such cases, effectors 106 will typically be axially spaced-apart, although they may also be circumferentially spaced apart under certain circumstances. Such catheters may comprise any suitable number of effectors, such as from two effectors 106 to 100 effectors 106, typically comprising from 4 effectors 106 to 40 effectors 106, and more typically comprising from 4 effectors 106 to 12 effectors 106.
[0044] Electrical conductors 104 generally comprise conductors running axially along all or a portion of the length of body 102. Conductors 104 may comprise thin, elongate wires, a conductive sheath or mesh disposed within or on a surface of body 102, or the like. In one embodiment, only one electrical conductor 104 is used and a conductive fluid or gel in central lumen 112 or an intramural lumen acts as a ground. More commonly, however, multiplexed medical carrier 100 includes two, or preferably three, electrical conductors 104. In some embodiments, each electrical conductor 104 is isolated at least a portion of its length. For example, in one embodiment body 102 may comprise three or more intramural lumens and each electrical conductor 104 may be housed in a separate intramural lumen. Furthermore, each electrical conductor 104 typically performs a unique function. In an embodiment having three conductors 104, for example, one conductor 104 comprises a ground conductor, one comprises a power conductor and one comprises a data conductor. A ground conductor generally acts as a conventional electrical grounding mechanism, to return electrical current to the proximal end 108 of multiplexed carrier 100. A power conductor provides energy to one or more effectors 106a-e and a data conductor may transmit data to and/or from one or more effectors 106a-e. As mentioned previously, three electrical conductors 104 is described as an exemplary embodiment only. Various other embodiments may include, one, two or more than three conductors 104. Some embodiments may even include no conductors 104, for example if wireless RF communication is used.
[0045] In a given embodiment, multiplexed medical carrier 100 may include one effector 106, two effectors, five effectors (as shown in Figure 1) or any other suitable number of effectors 106a-e. Effectors 106a-e, which are described further below, may be of any suitable size and configuration and may be disposed within carrier body 102 (as effector 106c) on an interior surface of body 102 (as effector 106d) and/or on an exterior surface of body 102 (as effectors 106a, b and e). Furthermore, effectors 106a-e may be positioned at any suitable locations relative to the longitudinal length of body 102. For example, it may be advantageous to dispose effectors 106 along the length of carrier 100 so as to measure one or more parameters in two adjacent chambers of the heart simultaneously. Any suitable combination of numbers, types, sizes and placements of effectors 106 is contemplated within the scope of the invention.
[0046] Each effector 106a-e is coupled with each electrical conductor 104 via a lead 214. Medical carriers 100 of the present invention, such as the catheter in Figure 1, are referred to as multiplexed carriers because multiple, separately identifiable effectors 106a-e are coupled with a single set (or "network") of electrical conductors 104. For example, in one embodiment all effectors 104 would be coupled with a common ground conductor, a common data conductor and a common power conductor. Such multiplexing provides for convenient use of multiple effectors 106 on one carrier 100, without requiring a separate set of electrical conductors 104 for each effector 104. Using separate sets of conductors for each effector 106 on the other hand, as with currently available devices, limits the number of possible effectors 106 due to constraints of size and maneuverability of the catheter.
[0047] With reference now to Figure 1 A, another embodiment of a multiplexed medical carrier 150 suitably includes a body comprising a flat surface 152 and multiple effectors 154 disposed along surface 152. Any suitable size and configuration of surface may be used and any number of effectors may be used. In some embodiments, between 4 and 1000 effectors may be used and preferably between 36 and 100 effectors. Carrier 150 may further include one or more conductors 158, which may similarly comprise flat surfaces positioned adjacent to or in proximity with flat surface 152. One or more leads 156 may extend from each effector 154 to electronically couple with each conductor 158. In this way, each flat conductor 158 may communicate with all of the addressable effectors 154 on flat surface 152. Such a flat configuration of carrier 150 may be used for any suitable purpose, such as for placement on a bodily tissue. In one embodiment, carrier 150 is configured for placement on brain tissue.
[0048] Referring now to Figure 2, one embodiment of an effector 106 suitably includes a chip 202, typically a silicon chip, including or coupled with one or more arms 214a-c. As will be described further below, an arm 214a-c generally comprises any suitable structure for housing an electrode, for electrically coupling effector 106 with an electrical conductor 104. Chip 202 typically includes a transducer 206, which may comprise a sensor for sensing a parameter within a vascular structure, the heart, or other body structure, or an actuator for actuating a pressure change, temperature change or any other suitable action within the body structure. Sensors may comprise any suitable sensors such as pressure sensors, volume sensors, dimension sensors, temperature or thermal sensors, oxygen or carbon dioxide sensors, electrical conductivity sensors, electrical potential sensors, pH sensors, chemical sensors, flow rate sensors, optical sensors, acoustic sensors, hematocrit sensors, viscosity sensors and the like. An actuator may perform any suitable function, such as providing an electrical current or voltage, setting an electrical potential, generating a biopotential, pacing a heart, heating a substance or area, inducing a pressure change, releasing or capturing a material, emitting light, emitting sonic or ultrasound energy, emitting radiation or the like. In some embodiments, transducer 206 may extend beyond the outer boundaries of chip 202, while in others transducer 206 may be confined wholly within chip 202. Chip also typically includes circuitry 204 for providing measurement of a parameter sensed by transducer 206. [0049] Once a parameter is sensed by transducer 206 and processed by circuitry 204, analog data from circuitry is transferred to a processor within chip 202. Generally, a processor may include any suitable circuitry, nanotechnology apparatus or the like. In some embodiments, a processor includes an analog-to-digital (AD) converter 210 for converting data from circuitry 204 into digital data, stored address information 208 for addressing the processor, and a microprocessor 212 for receiving and processing data from the AD converter 210 and/or from data supplied by a data conductor 214b.
[0050] In some embodiments, no addressing system is used. Instead, each effector broadcasts data either during a predetermined interval or using a dedicated frequency. One embodiment may include, for example, a circuit including a voltage-controlled duty cycle oscillator that converts a differential pressure signal into an oscillator with a variable duty cycle. Such a circuit is described, for example, in U.S. Provisional Patent Application No.
60/ , (Attorney Docket No. 21308-000200US) filed concurrently with this application and previously incorporated by reference. The output of such a circuit produces a series of pulses: the ratio of the time in the "on" state to the time in the "off state is proportional to the absolute pressure. On and off states generally represent two different voltage levels, and the off state need not be zero (0) volts. It may be preferable, in fact, to designate a positive voltage, such as 3 V, as the off state and a higher voltage, such as 5 V, as the on state. Any combination of voltages may be used. This series of pulses then becomes the envelope for a carrier frequency of a voltage controlled oscillator. Each of several sensors may broadcast at a different carrier frequency. An external monitor may have a number of electronic filters connected in parallel to the catheter's output line, with each filter tuned to one of the carrier frequencies. The output of each filter may, for example, comprise a series of square pulses whose duty cycle (the ratio of on time to off time) is proportional to the pressure measured by that sensor.
[0051] Circuitry, sensors, processing apparatus or any other suitable components of chip 202 may be fabricated using lithographic processes similar to those used to make transistors and micro-electromechanical systems (MEMS) devices. When a silicon chip is used, for example, a thin coating of polyimide may be spun onto a wafer and patterned. Metal lines, fabricated from a thin layer of chrome and a thicker layer of gold in one embodiment, may then be formed on the cured polyimide. A second layer of polyimide is then deposited and patterned on the wafer. During the die separation process, chip 202 remains adhered to the polyimide and the silicon is removed from under the polyimide and two or more flexible "flaps." The flexible flaps may comprise electrodes for contacting with electrical conductors 104.
[0052] Arms 214a-c may comprise any suitable means for housing electrodes or electrical leads (not shown). In fact, in some embodiments an arm 214a-c may comprise simply an electrode coupled with chip 202 via a wire or other conductive material. In some embodiments, arms 214a-c are flexible, such that they can be conformed to a surface of body 102 of a multiplexed carrier 100. Generally, any suitable arms may be used. Similarly, any number of arms 214a-c may be used, depending on the number of electrodes to be coupled with chip 202. In some embodiments, effector 106 includes three arms 104a-c, each housing one electrode corresponding to an isolated electrical conductor 104. One arm may comprise a power transmission lead 214a for transmitting energy from a power conductor 104 to circuitry 204. A second arm may comprise a data lead 214b for transmitting data between a data conductor 104 and microprocessor 212. A third arm may comprise a ground lead 214c for coupling circuitry 204 with a ground conductor 104. In other embodiments, fewer than three or more than three arms 214 may be used to couple chip 202 with one or more electrical conductors 104.
[0053] With reference now to Figure 3 A, one embodiment of an effector 106 is shown. Again, effector 106 typically includes a chip 202, coupled with one or more, and often three, flexible arms 214a-c. In one embodiment, the transducer comprises a pressure sensor 302 embedded on chip 202 for sensing pressure within a body structure, such as pressure within a blood vessel or heart chamber. In one embodiment, each arm 214 includes an electrode 314, coupled to chip 202 via a thin film wire 312. Other embodiments may alternatively include arms having electrodes 314 with other means for coupling electrodes 314 with chip 202. [0054] In another embodiment, and with reference to Figure 3B, a transducer may comprise an electrical conductivity sensor 304 for sensing electrical conductivity of blood. The conductivity sensor extends beyond chip 202 to contact blood in a blood vessel, in a chamber of the heart, or in any other blood-containing body cavity. Four thin-film electrodes 306 sense electrical conductivity of the blood and are coupled with chip 202 via four flexible thin film wires 308. In other embodiments, effector 106 may be configured to sense any suitable parameter, such as but not limited to pressure, volume, dimensions, temperature, oxygen, electrical conductivity, electrical potential, pH, lactase, ejection fraction, regurgitant flow or other chemical or physical parameters and/or rates of change in any of the above parameters. [0055] Generally, any suitable effectors, be they sensors or actuators, may be used in various embodiments of the present invention. Examples of such effectors have been described above. Some embodiments may include pressure sensor devices as described in
U.S. Provisional Patent Application No. 60/ , (Attorney Docket No. 21308-
000200US) filed concurrently with this application and previously incorporated by reference. Again, these or any other effectors now known or hereafter discovered may be used. [0056] With reference now to Figure 4, multiplexed medical carrier 100 is shown in perspective view. Carrier 100 may generally include body 102 coupled at its proximal end with a handle 402. As previously described, body 102 may include multiple effectors 106a-c disposed at dispersed locations wholly or partially on its outer surface. Handle 402 may include any suitable means for holding, manipulating, activating or otherwise using multiplexed carrier. For example, handle 402 may suitably include one or more electrical connections 404 and one or more fluidic connections.
[0057] Referring now to Figure 5, a cross-sectional view of multiplexed medical carrier 100 is shown from the perspective demonstrated by the arrows labeled "5" in Figure 4. In one embodiment, carrier 100 includes body 102, three separate intramural lumens 502a-c disposed within body 102, and central lumen 112, defined by body 102. Each intramural lumen 502a-c may contain an electrical conductor 504a-c. As previously discussed, each electrical conductor 504a-c may be configured to have a distinct function. For example, the three conductors in one embodiment may include a ground conductor 504a, a power conductor 504b and a data conductor 504c. In a given embodiment, fewer or additional conductors may suitably be included. Additionally, any suitable placement of conductors 504a-c within intramural lumens 502a-c is contemplated. In other embodiments, conductors 504a-c may be alternatively disposed on the inner surface 506 of central lumen 112. In still other embodiments, greater than four, five, eight or any other suitable number of intramural lumens 502a-c may be included and electrical conductors 504a-c may be disposed in adjacent or spaced-apart lumens 502. In intramural lumens 502 containing electrical conductors 504, a conductive material such as a conductive gel or fluid may be disposed within the lumen in some embodiments. Such a conductive material may act as an electrical ground, may act to couple the electrical conductor 504 with an electrode on an effector 106, or may serve any other suitable purpose. Any suitable conductive substance may be used. [0058] In some embodiments, body 102 is fabricated from two or more layers of material. In such embodiments, intramural lumens 504a-c may be positioned between two layers of material. In one embodiment, one layer of body 102, such as a metallic mesh or solid metallic layer, comprises an electrical conductor 504 such that leads from effectors may contact that layer to achieve conductance. In some embodiments, a conducting fluid or gel may disposed in central lumen 112 and/or one or more intramural lumens 502 may act as an electrical conductor 502. Thus, it is contemplated that electrical conductors 504 may have various configurations, sizes, shapes, chemical compositions and the like. [0059] With reference now to Figure 6, body 102 may include one or more holes or sidewall openings 602. Sidewall openings 602 provide locations for placement of arms of effectors (not shown in Figure 6), so that electrodes of the effectors may electrically contact electrical conductors 504. A sidewall opening 602 is generally positioned to overly a part of one or more intramural lumens 502. In Figure 6, sidewall opening 602 overlies one intramural lumen 502a and one electrical conductor 504a. In other embodiments, opening 602 may be positioned so as to provide access to two lumens and electrical conductors, three lumens and electrical conductors, or any other suitable number. As is described further below, an arm of an effector is typically positioned over a sidewall opening 602 such that the electrode in the arm contacts conductive gel, fluid or other substance in an intramural lumen. Electrical signals may then travel through the conductive substance between the electrode of the effector and the electrical conductor in the intramural lumen 502. [0060] With reference now to Figure 7, one embodiment of an effector 700 includes a chip 702 and three arms 704a-c. As described above, chip 702 typically includes a transducer, such as a sensor or actuator, and an addressable processor. Arms 704a-c may extend from chip 702 in any suitable directions and may have any suitable shape, size and configuration. In one embodiment, two arms 704a and 704c are configured to wrap partially or completely around body 102 of multiplexed medical carrier 100 and a third arm 704b extends longitudinally along the outer surface of body 102. One or more arms 704 may include a protrusion 706 for extending through an outer later of body 102 to contact blood or other bodily fluid surrounding body 102. anchoring effector 700 in a location of body 102. For example, arms 704a-c may be disposed on an outer surface of body 102 and an outer cover or coating may be placed over body 102, covering leads. Protrusion 706 may extend through this outer coating or covering, sense one or more parameters and or to actuate an effect in fluid surrounding body 102.
[0061] With reference now to Figure 8, effector 700 may be coupled with multiplexed medical carrier 100 by any suitable means or in any configuration. In one embodiment, as shown, effector 700 may be disposed partially or wholly within body 102. For example, effector 700 may be mounted between an inner layer 810 and an outer layer 808 of body 102. In one embodiment, for example, body 102 may comprise multiple layers of extruded plastic material and effector 700 may be disposed between inner layer 810 and outer layer 808 of extruded plastic or other flexible material, such as silicone. Generally, outer layer 808 will comprise a thin layer of extruded material and may be transparent in some embodiments. Similarly, outer layer 808 may comprise a thin coating of the same material used in fabricating body 102 or of a different material. In other embodiments, effectors 700 may be glued or otherwise fastened with adhesive to an outer surface of body 102, rather than mounting effectors 700 between layers of body. In such embodiments, any suitable adhesive may be used. In some embodiments using adhesive, effectors 700 are mounted on the outer surface of body 102 in such a way that arms 704 contact body 102 and chip 202 is spaced slightly apart from the outer surface of body. In other words, chip 202 "floats" above body. Such a floating chip may confer added flexibility to carrier 100. Any other suitable means for mounting effectors 700 onto multiplexed medical catheter is contemplated. In one embodiment, for example, effectors 700 may be mounted via mechanical pressure mounting, with two or more arms of effector 700 applying force to hold effector 700 to body 102. [0062] In embodiments in which effectors 700 are mounted between layers of body 102, one or more portions of effector 700 will typically extend through outer layer 808, such as chip 702 or anchor 706. In some embodiments, anchor 706 may also serve as a sensor or actuator and, thus, may protrude through outer layer 808 to contact blood or other substances in order to sense a parameter. All or a portion of chip 706 may also extend through outer layer 808, as desired. Other sensors, actuators, anchors or other portions of effector 700 may likewise protrude through outer layer 808 to contact blood or other substances surrounding carrier 100 or for any other purpose.
[0063] Generally, as described above, leads extend from chip 702 as part of flexible arms 704a and 704c. Arms 704 generally house an electrode coupled to chip via a flexible wire or similar electrical connection. Each electrode (not shown) is positioned by an arm 704a, 704c in proximity with an electrical conductor 804a-c. As noted above, body 102 typically includes sidewall openings 806a-c, to allow conductivity between electrodes and electrical conductors 804a-c. Conductive fluid, gel or similar substance in an intramural lumen 802a-c, comes in contact with an adjacent electrode and provides a conductive medium between the electrode and electrical conductor 804a-c.
[0064] Figure 8B provides a perspective view of multiplexed medical carrier 100 with effector 700 as in Figure 8A and with flexible arm 704a pulled back to show sidewall opening 806a. The dotted line represents outer layer 808, which again may comprise a thin, transparent or opaque layer or coating through which one or more portions of effector 700 protrude. Flexible arm 704a, housing one electrode, is shown pulled back to expose sidewall opening 806a in body 102. As denoted by the hollow arrow, flexible arm 704a normally lies over and completely covers opening 806a— i.e., the diameter of opening 806a is smaller than the width of the flexible arm 704a. Electrical conductor 804a is exposed in intramural lumen 802a, which contains a gel, fluid or other conductive substance. A second flexible arm 704b may be coupled with anchor 706, which protrudes through outer layer 808. In one embodiment, flexible arms are lined up to improved the die yield on a silicon wafer, so that when flattened they appear rectangular in shape.
[0065] With reference now to Figure 9, a system 900 of the present invention may include a multiplexed medical carrier 100 and a multiplexing controller 910 adapted to connect to and control carrier 100. System 900 may be used in a variety of settings and a variety of body structures but in one embodiment is configured to measure parameters within a heart 920. In one embodiment, multiplexing controller 910 connects to multiplexing carrier 100 via a wired connection including one or more wires, cables or the like. In another embodiment, controller 910 and carrier 100 are coupled via a wireless connection. In still another embodiment, system 900 may further include an implantable data collection and transmission unit (not shown), which connects to the multiplexed carrier 100 (either via wired or wireless connection) and communicates wirelessly with multiplexing controller 910. As discussed previously, multiplexing medical carrier 100 may include any suitable number of separately addressable effectors 700 disposed at any suitable locations along carrier 100. [0066] A method for collecting medical data from a patient according to the present invention may include interrogating a multiplexed network of sensors residing in the patient. For example, the network may include multiple effectors 700 residing in one or more chambers of a patient's heart 920. Interrogating the network may comprise addressing a first addressable sensor in the network to obtain data, addressing a second addressable sensor in the network and so on, depending on the number of addressable sensors residing in the patient. For example, third, fourth, fifth, sixth and seventh sensors could by addressed in one embodiment. Data acquired may include any of a number of parameters, such as but not limited to pressure, volume dimensions, temperature, oxygen, electrical conductivity, electrical potential, pH, lactase, ejection fraction, regurgitant flow and/or other chemical or mechanical parameters. The method may further include powering sensors within the multiplexed network of sensors via the network. One of the electrical conductors, for example, may provide power to sensors in the network. Furthermore, methods of the invention may be carried out in any suitable body structure, such as but not limited to the heart, arterial or venous vasculature, other hollow body structures such as the urinary bladder, and/or the like.
[0067] In alternative embodiments, the method may not include interrogating the multiplexed network of sensors. Instead, the sensors may be activated so as to broadcast sensed data. For example, each sensor may broadcast data using a different frequency, a different specified time span or the like. Broadcast data may then be received and processed to separate the data for the different sensors. In one embodiment, each effector relies on a single carrier frequency for its communication with the other elements or a central controller. Thus, a sensor may broadcast its data using a dedicated carrier frequency. An actuator may receive its instructions on a different dedicated frequency. In some embodiments, the effectors may communicate with one another via a network analogous to an Ethernet. For example, in one embodiment, such as when used to determine the volume of a ventricle, ultrasound broadcast transducers in electrical communication with ultrasound receivers may be placed some distance away. Distance between the transducers and the receivers may then be accurately determined from acoustic delay, even if the catheter bends. Thus, while some embodiments of multiplexing catheters employ addressing, others operate without addressing.
[0068] In one embodiment, multiplexed carrier 100 comprises a catheter, as in Figure 9 and is used to measure pressure at multiple locations along the catheter using multiple sensor effectors 700. One sensor may be positioned near the distal tip of the catheter, such as a pigtail catheter, to measure hemodynamic parameters in a left ventricle. Another sensor could be positioned far enough away from the distal sensor so that it would be located outside the left ventricle during use. Each sensor could transmit a signal indicating pressure at the location of the sensor to an external device, such as multiplexing controller 910. The controller 910 could then subtract a downstream pressure from an upstream pressure to provide real-time measurement of the pressure gradient across the mitral valve. [0069] In another embodiment, a multiplexed carrier 100 could be adapted to measure volume of a heart chamber, artery, other vessel or the like, using impedance plethysmography. Such a method would generally utilize two effectors 700 at spaced locations along carrier 100 which act as actuators to produce a voltage. A method might involve producing an AC current with the two effectors 700 through blood surrounding carrier 100 at a frequency of over 100 kHz, such as 125 kHz. A linear array of voltage- measuring effectors 700 would be disposed along carrier 100 between the two voltage- producing effectors 700. Electric circuits in the voltage-measuring effectors 700 would filter a time-varying potential produced by the voltage-producing effectors 700, so that only the potential variation at that frequency would be used to measure the resistance of the blood between the various voltage-measuring electrodes. If one effector 700 is also adapted to measure conductivity of the blood, then a measurement of the volume of the vessel or chamber can be inferred from the various resistance measurements. [0070] While the above is a complete description of the preferred embodiments of the inventions, various alternatives, modifications and equivalents may be made to the described embodiments without departing from the scope of the invention as set forth in the appended claims. For example, many variations to the methods just described may be made to measure or affect different parameters, to measure or affect parameters at different locations in a body and/or the like. Thus, the above description is provided for exemplary purposes only and should not be interpreted to limit the invention as set forth in the claims.

Claims

WHAT IS CLAIMED IS:
1. A multiplexed medical carrier comprising: a body having a surface and at least two lumens; and at least two electrical conductors, each conductor disposed in a separate lumen along at least a portion of the body, wherein the body is adapted to mount and electrically couple to the electrical conductors at least two separately identifiable effectors at a plurality of distributed locations within the body or on the surface.
2. A carrier as in claim 1, wherein the portion of the body comprises a distal portion of the body.
3. A carrier as in claim 1, wherein each of the at least two electrical conductors is uninsulated along at least a portion of the conductor to provide for electrical coupling of the conductor with the at least two effectors.
4. A carrier as in claim 1 , further comprising a plurality of effectors mounted on the body and coupled to the electrical conductors.
5. A carrier as in claim 4, wherein at least some of the effectors comprise a transducer and a processor, wherein the processor is identifiable.
6. A carrier as in claim 5, wherein the transducer comprises a sensor.
7. A carrier as in claim 6, wherein the sensor is selected from the group consisting of pressure sensors, volume sensors, dimension sensors, temperature or thermal sensors, oxygen or carbon dioxide sensors, electrical conductivity sensors, electrical potential sensors, pH sensors, chemical sensors, flow rate sensors, optical sensors, acoustic sensors, hematocrit sensors, and viscosity sensors.
8. A carrier as in claim 5, wherein the transducer comprises an actuator.
9. A carrier as in claim 8, wherein the actuator performs a function selected from the group consisting of providing an electrical current or voltage, setting an electrical potential, generating a biopotential, pacing a heart, stimulating a muscle, stimulating one or more neurons, heating a substance or area, inducing a pressure change, releasing or capturing a material, emitting light, emitting sonic or ultrasound energy and emitting radiation.
10. A carrier as in claim 5, wherein the transducer comprises both a sensor and an actuator.
11. A carrier as in claim 4, wherein at least some of the effectors comprise a transducer and an electronic conversion circuit, wherein output from the transducer is encoded using a carrier frequency and broadcast onto one of the electrical conductors, and wherein each effector utilizes a different carrier frequency.
12. A carrier as in claim 4, wherein at least some of the effectors comprise a transducer and an electronic conversion circuit, wherein output from the transducer is broadcast onto one of the electrical conductors during a specified time interval, and wherein each effector utilizes a different time interval.
13. A carrier as in claim 4, wherein the at least two electrical conductors comprise three electrical conductors electrically coupled to the effectors, each conductor disposed in a separate lumen along at least a portion of the body.
14. A carrier as in claim 14, wherein the three electrical conductors include a ground conductor, a power conductor, and a data conductor.
15. A carrier as in any of claims 4-14, wherein the effectors are mounted on an external surface of the body.
16. A carrier as in any of claims 4-14, wherein the effectors are mounted on an internal surface of the body.
17. A carrier as in any of claims 4-14, wherein the effectors contact the conductors through one or more holes in the body.
18. A carrier as in claim 17, wherein a conductive material is disposed within at least the portion of each of the at least two lumens, and wherein the effectors contact the electrical conductors via non-bonded connections with the conductive material.
19. A carrier as in claim 17, wherein each of the conductors comprises a conductive material disposed within at least a portion of each of the at least two lumens, and wherein the effectors contact the conductive material via non-bonded connections.
20. A carrier as in either of claims 18 and 19, wherein the conductive material is selected from the group consisting of a gel, a fluid, a paste and a slurry.
21. A carrier as in either of claims 18 and 19, wherein a bipolar alternating current is used to deliver power and signals across the conductive material.
22. A carrier as in claim 17, wherein a conductive material is disposed within at least the portion of each of the at least two lumens, and wherein the effectors contact the electrical conductors via non-bonded connections with the conductive material.
23. A carrier as in claim 22, wherein the conductive material is selected from the group consisting of a conductive epoxy, a weld, and a conductive eutectic.
24. A carrier as in claim 23, wherein a center frequency of the signals is between about 1000 Hz and about 10 MHz.
25. A carrier as in claim 24, wherein a center frequency of the signals is between about 100 kHz and about 10 MHz.
26. A carrier as in claim 18, wherein contacts with the conductive material comprise at least one electrically inert material or a coating thereof.
27. A carrier as in claim 18, wherein contacts with the conductive material comprise at least one chemically inert material or a coating thereof.
28. A carrier as in claim 27, wherein the chemically inert material is selected from the group consisting of platinum, iridium, gold and hafnium.
29. A carrier as in any of claims 4-14, wherein the body comprises an elongated body adapted to be introduced to and through a blood vessel.
30. A carrier as in claim 29, wherein the conductors extend axially from a distal location to a proximal location on the elongated body.
31. A carrier as in claim 30, wherein the effectors are spaced apart axially over a length of the catheter body.
32. A carrier as in any of claims 4-14, wherein the body comprises a flat surface adapted to be positioned on a body tissue.
33. A carrier as in claim 32, wherein the conductors are disposed along an adjacent flat surface coupled with the body.
34. An improved medical carrier of the type including a plurality of actuators, wherein the improvement comprises separately identifiable actuators that are multiplexed by at least one common conductor.
35. An improved medical carrier as in claim 34, wherein at least some of the actuators comprise electrodes for delivering electrical energy.
36. An improved medical carrier as in claim 34, wherein each of the actuators performs a function selected from the group consisting of providing an electrical current or voltage, setting an electrical potential, generating a biopotential, pacing a heart, heating a substance or area, inducing a pressure change, releasing or capturing a material, emitting light, emitting sonic or ultrasound energy, and emitting radiation.
37. An improved medical carrier as in any of claims 34-36, wherein the carrier comprises an intravascular or intracardiac catheter.
38. An improved medical carrier as in any of claims 34-36, wherein the carrier comprises an implantable carrier.
39. An improved medical carrier as in claim 38, wherein the implantable carrier is disposed on a cardiac pacing lead.
40. An improved medical carrier of the type including a plurality of systems, wherein the improvement comprises separately identifiable systems that are multiplexed by at least one common conductor, and wherein each system comprises: at least one sensor; at least one actuator; and an electronic circuit.
41. A carrier as in claim 40, wherein the at least one sensor is selected from the group consisting of pressure sensors, volume sensors, dimension sensors, temperature or thermal sensors, oxygen or carbon dioxide sensors, electrical conductivity sensors, electrical potential sensors, pH sensors, chemical sensors, flow rate sensors, optical sensors, acoustic sensors, hematocrit sensors, and viscosity sensors.
42. A carrier as in claim 40, wherein each of the at least one actuators performs a function selected from the group consisting of providing an electrical current or voltage, setting an electrical potential, generating a biopotential, pacing a heart, heating a substance or area, inducing a pressure change, releasing or capturing a material, emitting light, emitting sonic or ultrasound energy, and emitting radiation.
43. A carrier as in claim 40, wherein at least one of the plurality of systems comprises: an electrode sensor for measuring electrical potential; and an electrode actuator for delivering electrical energy.
44. A system comprising: a multiplexed medical carrier having a plurality of separately identifiable effectors distributed over a surface thereof, wherein the effectors are multiplexed by at least one common connector; and a multiplexing controller adapted to connect to the effectors via the common conductor.
45. A system as in claim 44, wherein the multiplexing controller is adapted for wired connection to the multiplexed medical carrier.
46. A system as in claim 44, wherein the multiplexing controller is adapted for wireless connection to the multiplexed medical carrier.
47. A system as in claim 46, further comprising an implantable data collection and transmission unit which connects to the multiplexed medical carrier and wirelessly communicates with the multiplexing controller.
48. A method for configuring a medical carrier, the method comprising: providing a body having a surface and at least one electrical conductor; selectively mounting at least one separately identifiable effector on the surface; and electrically coupling the at least one effector to the at least one electrical conductor through a surface penetration.
49. A method as in claim 48, wherein the providing step comprises providing the body coupled with a cardiac pacing lead.
50. A method as in claim 48, wherein the providing step comprises providing a body having at least two electrical conductors, each conductor disposed in a separate lumen along at least a portion of the body.
51. A method as in claim 50, wherein selectively mounting comprises mounting at least two separately identifiable effectors on the surface, and wherein the at least two effectors are electrically coupled to the at least two electrical conductors through one or more surface penetrations.
52. A method as in claim 48, wherein selectively mounting comprises exposing the at least one conductor through the surface and electrically coupling a lead from each of the at least one effector to the at least one conductor.
53. A method as in claim 48, wherein at least some of the effectors comprise a transducer and a processor, wherein the processor is identifiable.
54. A method as in claim 53, wherein the transducer comprises a sensor.
55. A method as in claim 54, wherein the sensor is selected from the group consisting of pressure sensors, volume sensors, dimension sensors, temperature or thermal sensors, oxygen or carbon dioxide sensors, electrical conductivity sensors, electrical potential sensors, pH sensors, chemical sensors, flow rate sensors, optical sensors, acoustic sensors, hematocrit sensors and viscosity sensors.
56. A method as in claim 54, wherein the transducer further comprises an actuator.
57. A method as in claim 53, wherein the transducer comprises an actuator.
58. A method as in either of claims 56 and 57, wherein the actuator performs a function selected from the group consisting of providing an electrical current or voltage, setting an electrical potential, heating a substance or area, inducing a pressure change, releasing or capturing a material, emitting light, emitting sonic or ultrasound energy and emitting radiation.
59. A method as in claim 48, wherein at least one of the effectors comprises both a sensor and an actuator.
60. A method as in claim 59, wherein the sensor is selected from the group consisting of pressure sensors, volume sensors, dimension sensors, temperature or thermal sensors, oxygen or carbon dioxide sensors, electrical conductivity sensors, electrical potential sensors, pH sensors, chemical sensors, flow rate sensors, optical sensors, acoustic sensors, hematocrit sensors and viscosity sensors.
61. A method as in claim 59, wherein the actuator performs a function selected from the group consisting of providing an electrical current or voltage, setting an electrical potential, heating a substance or area, inducing a pressure change, releasing or capturing a material, emitting light, emitting sonic or ultrasound energy and emitting radiation.
62. A method as in claim 48, wherein electrically coupling each of the at least one effector comprises coupling at least one lead to at least one conductor.
63. A method as in claim 62, wherein electrically coupling each of the at least one effector comprises coupling at least three leads to at least three conductors disposed in separate lumens of the body.
64. A method as in claim 63, wherein ground, power, and data leads on the effectors are connected to ground, power and data connectors in the body.
65. A method as in claim 48, further comprising encapsulating at least a portion of the body and the mounted effectors with an encapsulating material.
66. An improved method for configuring a medical carrier of the type including a plurality of actuators, wherein the improvement comprises providing separately identifiable actuators that are multiplexed by at least one common conductor.
67. An improved method for configuring a medical carrier of the type including a plurality of systems, wherein the improvement comprises providing separately identifiable systems that are multiplexed by at least one common conductor.
68. A method as in claim 67, wherein each system comprises: at least one sensor; at least one actuator; and an electronic circuit.
69. A method for collecting medical data from a patient, the method compnsmg: interrogating a network of multiplexed sensors residing on parallel conductors in the patient, wherein interrogating comprises:
(a) addressing a first addressable sensor in the network to obtain data; and
(b) addressing a second addressable sensor in the network to obtain data.
70. A method as in claim 69, wherein interrogating further comprises:
(c) addressing a third addressable sensor in the network to obtain data; and
(d) addressing at least a fourth addressable sensor in the network to obtain data.
71. A method as in claim 69, further comprising powering sensors within the network of multiplexed sensors via the network.
72. A method as in any of claims 69-71 , wherein the data obtained includes at least one of pressure data, volume data, dimension data, temperature data, oxygen or carbon dioxide concentration data, hematocrit data, electrical conductivity data, electrical potential data, pH data, chemical data, blood flow rate data, thermal conductivity data, optical property data, cross-sectional area data, viscosity data and radiation data.
73. A method as in claim 72, wherein sensors are distributed on a catheter present in one or more blood vessels or a heart chamber.
74. A method as in claim 72, wherein sensors are distributed on a flat surface present on or near brain tissue.
75. A method as in claim 72, wherein sensors are distributed in a catheter present in a urinary tract.
76. A method as in claim 72, wherein sensors are distributed on a catheter present in reproductive tract.
77. A method as in claim 72, wherein sensors are distributed on a catheter present in an endoscopic surgical site.
78. A method as in claim 72, wherein sensors are distributed on a catheter present in an abdominal cavity.
79. A method as in claim 72, wherein sensors are distributed on a catheter present in a gastrointestinal tract.
80. A method as in claim 72, wherein sensors are distributed on a catheter present adjacent a bone or in a joint space.
81. A method for collecting medical data from a patient, the method comprising: activating a network of multiplexed sensors residing on parallel conductors in the patient such that each activated sensor transmits sensed data; receiving the transmitted data; and separating the received data into multiple data streams, each data stream comprising data from one sensor.
82. A method as in claim 81, wherein each activated sensor transmits data on a different carrier frequency.
83. A method for delivering energy or one or more substances to a patient, the method comprising addressing at least a first addressable actuator in a network of actuators to cause the first actuator to deliver energy or a substance.
84. A method as in claim 83, wherein activating further comprises addressing a second addressable actuator in the network of actuators to cause the second actuator to deliver energy or a substance
85. A method as in claim 84, wherein activating further comprises: addressing a third addressable actuator in the network to cause the actuator to deliver energy or a substance; and addressing at least a fourth addressable actuator in the network to cause the actuator to deliver energy or a substance.
86. A method as in claim 83, further comprising powering actuators within the network of multiplexed actuators via the network.
87. A method as in any of claims 83-86, wherein the actuators perform a function selected from the group consisting of providing an electrical current or voltage, setting an electrical potential, heating a substance or area, inducing a pressure change, releasing or capturing a material, emitting light, emitting sonic or ultrasound energy and emitting radiation.
88. A method as in claim 83, wherein actuators are distributed on a catheter present in one or more blood vessels or a heart chamber.
89. A method as in claim 83, wherein actuators are distributed on a flat surface present on or near brain tissue.
90. A method as in claim 83, wherein actuators are distributed in a catheter present in a urinary tract.
91. A method as in claim 83, wherein actuators are distributed on a catheter present in reproductive tract.
92. A method as in claim 83, wherein actuators are distributed on a catheter present in an endoscopic surgical site.
93. A method as in claim 83, wherein actuators are distributed on a catheter present in ah abdominal cavity.
94. A method as in claim 83, wherein actuators are distributed on a catheter present in a gastrointestinal tract.
95. A method as in claim 83, wherein actuators are distributed on a catheter present adjacent a bone or in a joint space.
1/9
Figure imgf000034_0001
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Cited By (32)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2006255422A (en) * 2005-03-15 2006-09-28 Codman & Shurtleff Inc Pressure sensitive instrument
US7200439B2 (en) 2003-01-24 2007-04-03 Proteus Biomedical, Inc. Method and apparatus for enhancing cardiac pacing
US7204798B2 (en) 2003-01-24 2007-04-17 Proteus Biomedical, Inc. Methods and systems for measuring cardiac parameters
US7214189B2 (en) 2004-09-02 2007-05-08 Proteus Biomedical, Inc. Methods and apparatus for tissue activation and monitoring
US7267649B2 (en) 2003-01-24 2007-09-11 Proteus Biomedical, Inc. Method and system for remote hemodynamic monitoring
WO2007127622A2 (en) * 2006-04-26 2007-11-08 Medtronic, Inc. Contactless interconnect for transducers
JP2008525120A (en) * 2004-12-22 2008-07-17 プロテウス バイオメディカル インコーポレイテッド Segmented electrodes that are implantable and addressable
JP2008525121A (en) * 2004-12-22 2008-07-17 プロテウス バイオメディカル インコーポレイテッド Implantable hermetic sealed structure
EP1946700A3 (en) * 2007-01-19 2008-10-22 Tyco Healthcare Group, LP Thermal and electrical conductivity probes and methods of making the same
WO2009014558A1 (en) * 2007-07-23 2009-01-29 Cardiac Pacemakers, Inc. Implantable viscosity monitoring device and method therefor
EP2033588A1 (en) * 2007-09-07 2009-03-11 Tyco Healthcare Group, LP System and method for transmission of combined data stream
WO2011092202A1 (en) * 2010-01-29 2011-08-04 St Jude Medical Systems Ab Medical guide wire assembly
US8355784B2 (en) 2011-05-13 2013-01-15 Medtronic, Inc. Dynamic representation of multipolar leads in a programmer interface
US8512325B2 (en) 2010-02-26 2013-08-20 Covidien Lp Frequency shifting multi mode ultrasonic dissector
US8712549B2 (en) 2002-12-11 2014-04-29 Proteus Digital Health, Inc. Method and system for monitoring and treating hemodynamic parameters
US8718770B2 (en) 2010-10-21 2014-05-06 Medtronic, Inc. Capture threshold measurement for selection of pacing vector
US9119624B2 (en) 2006-04-24 2015-09-01 Covidien Ag ARC based adaptive control system for an electrosurgical unit
US9271790B2 (en) 2007-09-21 2016-03-01 Coviden Lp Real-time arc control in electrosurgical generators
EP3075411A1 (en) * 2015-04-03 2016-10-05 Sorin CRM SAS Multi-electrode probe with multiplexed control, in particular for cardiac stimulation, and associated connection method
US9522032B2 (en) 2005-10-21 2016-12-20 Covidien Ag Circuit and method for reducing stored energy in an electrosurgical generator
US9529025B2 (en) 2012-06-29 2016-12-27 Covidien Lp Systems and methods for measuring the frequency of signals generated by high frequency medical devices
US9636165B2 (en) 2013-07-29 2017-05-02 Covidien Lp Systems and methods for measuring tissue impedance through an electrosurgical cable
US9642665B2 (en) 2006-01-24 2017-05-09 Covidien Ag Method and system for controlling an output of a radio-frequency medical generator having an impedance based control algorithm
US9768373B2 (en) 2003-10-30 2017-09-19 Covidien Ag Switched resonant ultrasonic power amplifier system
US9872719B2 (en) 2013-07-24 2018-01-23 Covidien Lp Systems and methods for generating electrosurgical energy using a multistage power converter
WO2018038562A1 (en) * 2016-08-25 2018-03-01 주식회사 한독칼로스메디칼 Denervation catheter
US10076383B2 (en) 2012-01-25 2018-09-18 Covidien Lp Electrosurgical device having a multiplexer
CN111317561A (en) * 2018-12-14 2020-06-23 杭州普惠医疗器械有限公司 Multi-sensing deep thermosetting electrode
US20210059670A1 (en) * 2015-09-23 2021-03-04 Ethicon Llc Surgical stapler having motor control based on a drive system component
US11013548B2 (en) 2005-03-31 2021-05-25 Covidien Ag Method and system for compensating for external impedance of energy carrying component when controlling electrosurgical generator
US11848078B2 (en) 2017-10-18 2023-12-19 Autonomix Medical, Inc. Medical devices with circuitry for capturing and processing physiological signals
US11883103B2 (en) 2014-08-10 2024-01-30 Autonomix Medical, Inc. ANS assessment systems, kits, and methods

Families Citing this family (155)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US7137980B2 (en) 1998-10-23 2006-11-21 Sherwood Services Ag Method and system for controlling output of RF medical generator
US7455666B2 (en) 2001-07-13 2008-11-25 Board Of Regents, The University Of Texas System Methods and apparatuses for navigating the subarachnoid space
DE60336914D1 (en) 2002-08-24 2011-06-09 Atrial Fibrillation Division Inc METHOD AND DEVICE FOR LOCATING THE FOSSA OVALIS AND PERFORMING A TRANSSEPTAL PUNCTURE
CA2516559C (en) * 2003-02-21 2016-09-27 Electro-Cat, Llc System and method for measuring cross-sectional areas and pressure gradients in luminal organs
US9060770B2 (en) 2003-05-20 2015-06-23 Ethicon Endo-Surgery, Inc. Robotically-driven surgical instrument with E-beam driver
US20070084897A1 (en) 2003-05-20 2007-04-19 Shelton Frederick E Iv Articulating surgical stapling instrument incorporating a two-piece e-beam firing mechanism
US8104956B2 (en) 2003-10-23 2012-01-31 Covidien Ag Thermocouple measurement circuit
WO2005062823A2 (en) * 2003-12-19 2005-07-14 Savacor, Inc. Digital electrode for cardiac rhythm management
US20050137464A1 (en) * 2003-12-23 2005-06-23 Bomba Frank C. Wireless sensor and sensor initialization device and method
US11896225B2 (en) 2004-07-28 2024-02-13 Cilag Gmbh International Staple cartridge comprising a pan
US7877149B2 (en) * 2004-09-02 2011-01-25 Proteus Biomedical Inc. Electrical angle gauge
US20080058656A1 (en) * 2004-10-08 2008-03-06 Costello Benedict J Electric tomography
EP1799113A4 (en) * 2004-10-08 2010-07-07 Proteus Biomedical Inc Continuous field tomography
US7925329B2 (en) * 2004-10-08 2011-04-12 Proteus Biomedical, Inc. Implantable doppler tomography system
US7672733B2 (en) * 2004-10-29 2010-03-02 Medtronic, Inc. Methods and apparatus for sensing cardiac activity via neurological stimulation therapy system or medical electrical lead
US20080077186A1 (en) * 2006-04-18 2008-03-27 Proteus Biomedical, Inc. High phrenic, low capture threshold pacing devices and methods
US7585280B2 (en) 2004-12-29 2009-09-08 Codman & Shurtleff, Inc. System and method for measuring the pressure of a fluid system within a patient
US20060211945A1 (en) * 2005-03-15 2006-09-21 Codman & Shurtleff, Inc. Pressure sensing methods
US7510533B2 (en) * 2005-03-15 2009-03-31 Codman & Shurtleff, Inc. Pressure sensing valve
US10362947B2 (en) * 2005-03-15 2019-07-30 Integra LifeSciences Switzerland Sarl Pressure sensing devices
JP5027797B2 (en) 2005-03-31 2012-09-19 プロテウス バイオメディカル インコーポレイテッド Automatic optimization of multi-electrode pacing for cardiac resynchronization
CA2789262C (en) 2005-04-28 2016-10-04 Proteus Digital Health, Inc. Pharma-informatics system
WO2007021804A2 (en) 2005-08-12 2007-02-22 Proteus Biomedical, Inc. Evaluation of depolarization wave conduction velocity
US11246590B2 (en) 2005-08-31 2022-02-15 Cilag Gmbh International Staple cartridge including staple drivers having different unfired heights
US7669746B2 (en) 2005-08-31 2010-03-02 Ethicon Endo-Surgery, Inc. Staple cartridges for forming staples having differing formed staple heights
US20110066057A1 (en) * 2005-10-31 2011-03-17 Zdeblick Mark J Electrical Angle Gauge
US8204586B2 (en) * 2005-11-22 2012-06-19 Proteus Biomedical, Inc. External continuous field tomography
US20070167758A1 (en) * 2005-11-23 2007-07-19 Costello Benedict J Automated detection of cardiac motion using contrast markers
EP1968693A4 (en) * 2005-12-22 2011-04-27 Proteus Biomedical Inc Implantable integrated circuit
US20070161894A1 (en) * 2005-12-23 2007-07-12 Mark Zdeblick Ultrasound synchrony measurement
US8133186B2 (en) 2006-01-12 2012-03-13 St. Jude Medical Ab Implantable sensor lead
US9186200B2 (en) 2006-01-24 2015-11-17 Covidien Ag System and method for tissue sealing
US11793518B2 (en) 2006-01-31 2023-10-24 Cilag Gmbh International Powered surgical instruments with firing system lockout arrangements
US7845537B2 (en) 2006-01-31 2010-12-07 Ethicon Endo-Surgery, Inc. Surgical instrument having recording capabilities
US8708213B2 (en) 2006-01-31 2014-04-29 Ethicon Endo-Surgery, Inc. Surgical instrument having a feedback system
US8186555B2 (en) 2006-01-31 2012-05-29 Ethicon Endo-Surgery, Inc. Motor-driven surgical cutting and fastening instrument with mechanical closure system
EP2007466A4 (en) * 2006-03-31 2012-01-18 Automated Medical Instr Inc System and method for advancing, orienting, and immobilizing on internal body tissue a catheter or other therapeutic device
EP2030210A4 (en) 2006-04-12 2010-04-14 Proteus Biomedical Inc Void-free implantable hermetically sealed structures
KR101568660B1 (en) 2006-05-02 2015-11-12 프로테우스 디지털 헬스, 인코포레이티드 Patient customized therapeutic regimens
JP5603071B2 (en) * 2006-06-01 2014-10-08 キャスプリント・アクチボラゲット Tubular catheter for invasive use and manufacturing method thereof
WO2007149546A2 (en) * 2006-06-21 2007-12-27 Proteus Biomedical, Inc. Implantable medical devices comprising cathodic arc produced structures
US20080097566A1 (en) * 2006-07-13 2008-04-24 Olivier Colliou Focused segmented electrode
US20080039916A1 (en) * 2006-08-08 2008-02-14 Olivier Colliou Distally distributed multi-electrode lead
US20080114230A1 (en) * 2006-11-14 2008-05-15 Bruce Addis Electrode support
US20080154328A1 (en) * 2006-12-15 2008-06-26 Proteus Biomedical, Inc. Universal connector for implantable medical device
US8684253B2 (en) 2007-01-10 2014-04-01 Ethicon Endo-Surgery, Inc. Surgical instrument with wireless communication between a control unit of a robotic system and remote sensor
JP5524626B2 (en) 2007-02-01 2014-06-18 プロテウス デジタル ヘルス, インコーポレイテッド Ingestible event marker system
US20080208068A1 (en) * 2007-02-26 2008-08-28 Timothy Robertson Dynamic positional information constrained heart model
EP1970001B1 (en) * 2007-03-16 2014-07-23 Brainlab AG Catheter with pressure sensoring
US8764742B2 (en) 2007-04-04 2014-07-01 St. Jude Medical, Atrial Fibrillation Division, Inc. Irrigated catheter
US8979837B2 (en) 2007-04-04 2015-03-17 St. Jude Medical, Atrial Fibrillation Division, Inc. Flexible tip catheter with extended fluid lumen
US10220187B2 (en) 2010-06-16 2019-03-05 St. Jude Medical, Llc Ablation catheter having flexible tip with multiple flexible electrode segments
US11395694B2 (en) 2009-05-07 2022-07-26 St. Jude Medical, Llc Irrigated ablation catheter with multiple segmented ablation electrodes
US11672531B2 (en) 2007-06-04 2023-06-13 Cilag Gmbh International Rotary drive systems for surgical instruments
US8931682B2 (en) 2007-06-04 2015-01-13 Ethicon Endo-Surgery, Inc. Robotically-controlled shaft based rotary drive systems for surgical instruments
US11849941B2 (en) 2007-06-29 2023-12-26 Cilag Gmbh International Staple cartridge having staple cavities extending at a transverse angle relative to a longitudinal cartridge axis
US20090036769A1 (en) * 2007-07-11 2009-02-05 Zdeblick Mark J Spread spectrum electric tomography
WO2009025816A1 (en) * 2007-08-20 2009-02-26 Medtronic, Inc. Electrode configurations for directional leads
EP2195078B1 (en) 2007-08-20 2013-10-09 Medtronic, Inc. Implantable medical lead with biased electrode
EP2190528B1 (en) 2007-08-20 2014-10-08 Medtronic, Inc. Evaluating therapeutic stimulation electrode configurations based on physiological responses
US8187161B2 (en) * 2007-08-31 2012-05-29 Proteus Biomedical, Inc. Self-referencing communication in implantable devices
US9204812B2 (en) 2007-10-31 2015-12-08 DePuy Synthes Products, LLC Wireless pressure sensing shunts
US8454524B2 (en) 2007-10-31 2013-06-04 DePuy Synthes Products, LLC Wireless flow sensor
US8480612B2 (en) 2007-10-31 2013-07-09 DePuy Synthes Products, LLC Wireless shunts with storage
US7842004B2 (en) * 2007-10-31 2010-11-30 Codman & Shurtleff, Inc. Wireless pressure setting indicator
US8055353B2 (en) * 2008-02-12 2011-11-08 Proteus Biomedical, Inc. Medical carriers comprising a low-impedance conductor, and methods of making and using the same
WO2009131749A2 (en) 2008-02-28 2009-10-29 Proteus Biomedical, Inc. Integrated circuit implementation and fault control system, device, and method
BRPI0822560A8 (en) * 2008-04-18 2016-01-19 Fortimedix B V INSTRUMENT FOR ENDOSCOPIC OR SIMILAR APPLICATIONS
EP2276400A2 (en) * 2008-05-13 2011-01-26 Proteus Biomedical, Inc. Continuous field tomography systems and methods of using the same
US9513443B2 (en) 2008-05-28 2016-12-06 John Lawrence Erb Optical fiber-fine wire conductor and connectors
US20090326397A1 (en) * 2008-06-27 2009-12-31 Yashar Behzadi Clinical applications for electrical tomography derived metrics
EP2313148B1 (en) 2008-07-30 2013-08-21 Ecole Polytechnique Fédérale de Lausanne Apparatus for optimized stimulation of a neurological target
CN102202562B (en) 2008-09-11 2014-04-23 阿西斯特医疗系统有限公司 Physiological sensor delivery device and method
US9005230B2 (en) 2008-09-23 2015-04-14 Ethicon Endo-Surgery, Inc. Motorized surgical instrument
CA2743575C (en) 2008-11-12 2017-01-31 Ecole Polytechnique Federale De Lausanne Microfabricated neurostimulation device
JP2012508624A (en) 2008-11-13 2012-04-12 プロテウス バイオメディカル インコーポレイテッド Multiplexed multiple electrode nerve stimulator
WO2010057026A2 (en) * 2008-11-13 2010-05-20 Proteus Biomedical, Inc. Rechargeable stimulation lead, system, and method
JP2012508626A (en) * 2008-11-13 2012-04-12 プロテウス バイオメディカル インコーポレイテッド Implantable micro stimulator
US8644919B2 (en) 2008-11-13 2014-02-04 Proteus Digital Health, Inc. Shielded stimulation and sensing system and method
EP2358275A2 (en) * 2008-12-02 2011-08-24 Proteus Biomedical, Inc. Optimial drive frequency selection in electrical tomography
US8262652B2 (en) 2009-01-12 2012-09-11 Tyco Healthcare Group Lp Imaginary impedance process monitoring and intelligent shut-off
US20120035684A1 (en) * 2009-02-09 2012-02-09 Todd Thompson Multiplexed, Multi-Electrode Neurostimulation Devices with Integrated Circuits Having Integrated Electrodes
CN102395873A (en) 2009-04-13 2012-03-28 奥林巴斯株式会社 Fluorescence sensor, needle-type fluorescence sensor, and method for measuring analyte
US8412347B2 (en) 2009-04-29 2013-04-02 Proteus Digital Health, Inc. Methods and apparatus for leads for implantable devices
GB0908506D0 (en) * 2009-05-18 2009-06-24 Imagination Tech Ltd Method and apparatus for drawing polygons
WO2011011736A2 (en) 2009-07-23 2011-01-27 Proteus Biomedical, Inc. Solid-state thin film capacitor
SE534637C2 (en) * 2009-09-15 2011-11-01 St Jude Medical Systems Ab Quick change guide unit with pressure sensor
WO2011044387A2 (en) * 2009-10-07 2011-04-14 The Board Of Regents Of The University Of Texas System Pressure-sensing medical devices, systems and methods, and methods of forming medical devices
CA2782710C (en) 2009-12-01 2019-01-22 Ecole Polytechnique Federale De Lausanne Microfabricated neurostimulation device and methods of making and using the same
EP2552536B1 (en) * 2010-04-01 2016-06-08 Ecole Polytechnique Fédérale de Lausanne (EPFL) Device for interacting with neurological tissue
US9044616B2 (en) * 2010-07-01 2015-06-02 Boston Scientific Neuromodulation Corporation Charging system for an implantable medical device employing magnetic and electric fields
US10945731B2 (en) 2010-09-30 2021-03-16 Ethicon Llc Tissue thickness compensator comprising controlled release and expansion
US11925354B2 (en) 2010-09-30 2024-03-12 Cilag Gmbh International Staple cartridge comprising staples positioned within a compressible portion thereof
US9386988B2 (en) 2010-09-30 2016-07-12 Ethicon End-Surgery, LLC Retainer assembly including a tissue thickness compensator
US9629814B2 (en) 2010-09-30 2017-04-25 Ethicon Endo-Surgery, Llc Tissue thickness compensator configured to redistribute compressive forces
US9700317B2 (en) 2010-09-30 2017-07-11 Ethicon Endo-Surgery, Llc Fastener cartridge comprising a releasable tissue thickness compensator
US11812965B2 (en) 2010-09-30 2023-11-14 Cilag Gmbh International Layer of material for a surgical end effector
US20120130218A1 (en) * 2010-11-23 2012-05-24 Kauphusman James V Medical devices having an electroanatomical system imaging element mounted thereon
US9901711B2 (en) * 2011-02-16 2018-02-27 Siemens Medical Solutions Usa, Inc. Shape-controllable catheters and catheter system
CN103796578B (en) 2011-05-11 2016-08-24 阿西斯特医疗系统有限公司 Ink vessel transfusing method for sensing and system
US10123717B2 (en) 2011-11-10 2018-11-13 Neuropace, Inc. Multimodal brain sensing lead
US10470684B2 (en) * 2012-01-26 2019-11-12 Autonomix Medical, Inc. Controlled sympathectomy and micro-ablation systems and methods
JP6305979B2 (en) 2012-03-28 2018-04-04 エシコン・エンド−サージェリィ・インコーポレイテッドEthicon Endo−Surgery,Inc. Tissue thickness compensator with multiple layers
US9492071B2 (en) 2012-04-05 2016-11-15 Stryker Corporation In-joint sensor for a surgical fluid management pump system
US20140001231A1 (en) 2012-06-28 2014-01-02 Ethicon Endo-Surgery, Inc. Firing system lockout arrangements for surgical instruments
CN104902836B (en) 2012-11-05 2017-08-08 毕达哥拉斯医疗有限公司 Controlled tissue melts
US9770593B2 (en) 2012-11-05 2017-09-26 Pythagoras Medical Ltd. Patient selection using a transluminally-applied electric current
US9949692B2 (en) 2012-12-21 2018-04-24 Canary Medical Inc. Stent graft monitoring assembly and method of use thereof
JP2016523125A (en) 2013-05-30 2016-08-08 グラハム エイチ. クリーシー Local nervous stimulation
US11229789B2 (en) 2013-05-30 2022-01-25 Neurostim Oab, Inc. Neuro activator with controller
NZ722849A (en) * 2014-01-30 2022-08-26 3Dt Holdings Llc Luminal impedance device with integrated circuit modules
JP6532889B2 (en) 2014-04-16 2019-06-19 エシコン エルエルシーEthicon LLC Fastener cartridge assembly and staple holder cover arrangement
CN106456176B (en) 2014-04-16 2019-06-28 伊西康内外科有限责任公司 Fastener cartridge including the extension with various configuration
US10478249B2 (en) 2014-05-07 2019-11-19 Pythagoras Medical Ltd. Controlled tissue ablation techniques
CN106455985B (en) 2014-05-16 2019-09-17 阿莱瓦神经治疗股份有限公司 With the device and production and preparation method thereof of nerve fiber interaction
US11311718B2 (en) 2014-05-16 2022-04-26 Aleva Neurotherapeutics Sa Device for interacting with neurological tissue and methods of making and using the same
US10244951B2 (en) 2014-06-10 2019-04-02 Acist Medical Systems, Inc. Physiological sensor delivery device and method
US10524694B2 (en) * 2014-06-25 2020-01-07 Canaray Medical Inc. Devices, systems and methods for using and monitoring tubes in body passageways
US9474894B2 (en) 2014-08-27 2016-10-25 Aleva Neurotherapeutics Deep brain stimulation lead
US9403011B2 (en) 2014-08-27 2016-08-02 Aleva Neurotherapeutics Leadless neurostimulator
US9924944B2 (en) 2014-10-16 2018-03-27 Ethicon Llc Staple cartridge comprising an adjunct material
US11077301B2 (en) 2015-02-21 2021-08-03 NeurostimOAB, Inc. Topical nerve stimulator and sensor for bladder control
US10390825B2 (en) 2015-03-31 2019-08-27 Ethicon Llc Surgical instrument with progressive rotary drive systems
US10383685B2 (en) 2015-05-07 2019-08-20 Pythagoras Medical Ltd. Techniques for use with nerve tissue
US10105139B2 (en) 2015-09-23 2018-10-23 Ethicon Llc Surgical stapler having downstream current-based motor control
US11890015B2 (en) 2015-09-30 2024-02-06 Cilag Gmbh International Compressible adjunct with crossing spacer fibers
US20170106199A1 (en) 2015-10-16 2017-04-20 Brady L. WOOLFORD Integrated pump control for dynamic control of plasma field
WO2017134587A1 (en) 2016-02-02 2017-08-10 Aleva Neurotherapeutics, Sa Treatment of autoimmune diseases with deep brain stimulation
US10357247B2 (en) 2016-04-15 2019-07-23 Ethicon Llc Surgical instrument with multiple program responses during a firing motion
US20170296173A1 (en) 2016-04-18 2017-10-19 Ethicon Endo-Surgery, Llc Method for operating a surgical instrument
WO2017199240A2 (en) 2016-05-18 2017-11-23 Pythagoras Medical Ltd. Helical catheter
US10166389B2 (en) * 2016-09-13 2019-01-01 Cochlear Limited Single-wire electrode array
US10933248B2 (en) 2016-11-04 2021-03-02 Galvani Bioelectronics Limited System for wirelessly coupling in vivo
US20180168625A1 (en) 2016-12-21 2018-06-21 Ethicon Endo-Surgery, Llc Surgical stapling instruments with smart staple cartridges
JP7010956B2 (en) 2016-12-21 2022-01-26 エシコン エルエルシー How to staple tissue
US10307170B2 (en) 2017-06-20 2019-06-04 Ethicon Llc Method for closed loop control of motor velocity of a surgical stapling and cutting instrument
US10932772B2 (en) 2017-06-29 2021-03-02 Ethicon Llc Methods for closed loop velocity control for robotic surgical instrument
US11660032B2 (en) 2017-09-07 2023-05-30 SWSA Medical Ventures, LLC Catheter assemblies, oxygen-sensing assemblies, and related methods
US11395616B2 (en) 2017-09-07 2022-07-26 WSA Medical Ventures, LLC Catheter assemblies, oxygen-sensing assemblies, and related methods
WO2019094365A1 (en) 2017-11-07 2019-05-16 Neurostim Oab, Inc. Non-invasive nerve activator with adaptive circuit
US10779826B2 (en) 2017-12-15 2020-09-22 Ethicon Llc Methods of operating surgical end effectors
US10702692B2 (en) 2018-03-02 2020-07-07 Aleva Neurotherapeutics Neurostimulation device
US10912473B2 (en) * 2018-04-10 2021-02-09 Biosense Webster (Israel) Ltd. Routing of analog signals using analog/digital followed by digital/analog conversion
WO2019203895A1 (en) 2018-04-20 2019-10-24 Acist Medical Systems, Inc. Assessment of a vessel
EP3990100A4 (en) 2019-06-26 2023-07-19 Neurostim Technologies LLC Non-invasive nerve activator with adaptive circuit
US20210093374A1 (en) 2019-09-26 2021-04-01 Biosense Webster (Israel) Ltd. Wiring for Multi-Electrode Catheter
WO2021107969A1 (en) * 2019-11-27 2021-06-03 SWSA Medical Ventures, LLC Catheter assemblies, oxygen-sensing assemblies, and related methods
JP2023506713A (en) 2019-12-16 2023-02-20 ニューロスティム テクノロジーズ エルエルシー Noninvasive nerve activator using booster charge delivery
USD1013170S1 (en) 2020-10-29 2024-01-30 Cilag Gmbh International Surgical instrument assembly
US11806011B2 (en) 2021-03-22 2023-11-07 Cilag Gmbh International Stapling instrument comprising tissue compression systems
US11826012B2 (en) 2021-03-22 2023-11-28 Cilag Gmbh International Stapling instrument comprising a pulsed motor-driven firing rack
US11826042B2 (en) 2021-03-22 2023-11-28 Cilag Gmbh International Surgical instrument comprising a firing drive including a selectable leverage mechanism
KR102596146B1 (en) * 2021-03-31 2023-11-02 아주대학교산학협력단 Assistance apparatus for sleeve gastrectomy
US20220378426A1 (en) 2021-05-28 2022-12-01 Cilag Gmbh International Stapling instrument comprising a mounted shaft orientation sensor
US11937816B2 (en) 2021-10-28 2024-03-26 Cilag Gmbh International Electrical lead arrangements for surgical instruments

Citations (17)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4397314A (en) 1981-08-03 1983-08-09 Clini-Therm Corporation Method and apparatus for controlling and optimizing the heating pattern for a hyperthermia system
US4603705A (en) 1984-05-04 1986-08-05 Mieczyslaw Mirowski Intravascular multiple electrode unitary catheter
US4776334A (en) 1985-03-22 1988-10-11 Stanford University Catheter for treatment of tumors
US4815472A (en) 1987-06-01 1989-03-28 The Regents Of The University Of Michigan Multipoint pressure-sensing catheter system
US4881410A (en) 1987-06-01 1989-11-21 The Regents Of The University Of Michigan Ultraminiature pressure sensor and method of making same
US5113868A (en) 1987-06-01 1992-05-19 The Regents Of The University Of Michigan Ultraminiature pressure sensor with addressable read-out circuit
US5419767A (en) 1992-01-07 1995-05-30 Thapliyal And Eggers Partners Methods and apparatus for advancing catheters through severely occluded body lumens
US5509411A (en) 1993-01-29 1996-04-23 Cardima, Inc. Intravascular sensing device
US5579764A (en) 1993-01-08 1996-12-03 Goldreyer; Bruce N. Method and apparatus for spatially specific electrophysiological sensing in a catheter with an enlarged ablating electrode
US5591142A (en) 1993-04-20 1997-01-07 Cordis Corporation Catheter with wire reinforcement having good electrical conductivity
US5662587A (en) 1992-09-16 1997-09-02 Cedars Sinai Medical Center Robotic endoscopy
US5902248A (en) 1996-11-06 1999-05-11 Millar Instruments, Inc. Reduced size catheter tip measurement device
US5924997A (en) 1996-07-29 1999-07-20 Campbell; Thomas Henderson Catheter and method for the thermal mapping of hot spots in vascular lesions of the human body
US6033398A (en) 1996-03-05 2000-03-07 Vnus Medical Technologies, Inc. Method and apparatus for treating venous insufficiency using directionally applied energy
US6309385B1 (en) 1998-05-05 2001-10-30 Cardiac Pacemakers, Inc. Electrode having composition-matched, common-lead thermocouple wire for providing multiple temperature-sensitive junctions
US20010053882A1 (en) 2000-06-16 2001-12-20 Haddock Thomas F. Temperature sensing catheter
US20020156417A1 (en) 2001-01-22 2002-10-24 Rich Collin A. Sensing catheter system and method of fabrication

Family Cites Families (272)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2956586A (en) 1959-09-03 1960-10-18 Gen Motors Corp Hose arrangement
FR2097337A6 (en) 1970-03-24 1972-03-03 Zacouto Fred
US3888260A (en) * 1972-06-28 1975-06-10 Univ Johns Hopkins Rechargeable demand inhibited cardiac pacer and tissue stimulator
US3985123A (en) 1975-07-17 1976-10-12 Avco Everett Research Laboratory, Inc. Method and means for monitoring cardiac output
GB1598791A (en) * 1977-03-10 1981-09-23 Needle Industries Ltd Plug and socket connectors
US4164946A (en) 1977-05-27 1979-08-21 Mieczyslaw Mirowski Fault detection circuit for permanently implanted cardioverter
DE3107128C2 (en) 1981-02-26 1984-07-05 Heinze, Roland, Dipl.-Ing., 8000 München Control circuit for adapting the stimulation frequency of a cardiac pacemaker to the load on a patient
US4750494A (en) * 1981-05-12 1988-06-14 Medtronic, Inc. Automatic implantable fibrillation preventer
US4902273A (en) * 1984-02-21 1990-02-20 Choy Daniel S J Heart assist device
US4600454A (en) 1984-03-08 1986-07-15 Plummer Walter A Method of making and using a shielded re-enterable jacket with dielectric spacer
US4628934A (en) 1984-08-07 1986-12-16 Cordis Corporation Method and means of electrode selection for pacemaker with multielectrode leads
US4628935A (en) 1985-01-08 1986-12-16 Physio-Control Corporation Defibrillator adapted for use with accessory cassettes
US5004275A (en) * 1986-03-14 1991-04-02 International Clamp Company Clamp
DE3786712D1 (en) 1986-06-16 1993-09-02 Siemens Ag SENSOR ARRANGEMENT FOR CONTROLLING IMPLANTABLE BODY SPARE PARTS.
US5005613A (en) 1986-09-26 1991-04-09 The Goodyear Tire & Rubber Company Light weight flexible coaxial vapor recovery hose
NL8701536A (en) 1987-06-30 1989-01-16 Joannes Hendricus Aloys Heuvel METHOD FOR PERFORMING HAEMODYNAMIC MEASUREMENTS IN A PATIENT AND FLOW-GUIDED BALLOON CATHETER USED THEREFOR
US4878898A (en) 1987-08-17 1989-11-07 Nova Medical Specialties Thermodilution and pressure transducer balloon catheter
CA1327838C (en) * 1988-06-13 1994-03-15 Fred Zacouto Implantable device to prevent blood clotting disorders
JPH0299036A (en) * 1988-10-07 1990-04-11 Nec San-Ei Instr Co Ltd Electrocardiographic signal transmitting apparatus
US5072737A (en) 1989-04-12 1991-12-17 Puritan-Bennett Corporation Method and apparatus for metabolic monitoring
US5176619A (en) * 1989-05-05 1993-01-05 Jacob Segalowitz Heart-assist balloon pump with segmented ventricular balloon
US5111816A (en) * 1989-05-23 1992-05-12 Ventritex System configuration for combined defibrillator/pacemaker
US5209238A (en) * 1989-08-17 1993-05-11 Sundhar Shaam P Electronic ovulation monitor
AU650845B2 (en) 1989-08-28 1994-07-07 K. Michael Sekins Lung cancer hyperthermia via ultrasound and/or convection with perfluorocarbon liquids
DE3942762C1 (en) * 1989-12-23 1990-12-20 Deutsche Automobilgesellschaft Mbh, 3000 Hannover, De
JP3055032B2 (en) 1990-10-13 2000-06-19 ニスカ株式会社 Image processing device
US5156151A (en) * 1991-02-15 1992-10-20 Cardiac Pathways Corporation Endocardial mapping and ablation system and catheter probe
US5188106A (en) * 1991-03-08 1993-02-23 Telectronics Pacing Systems, Inc. Method and apparatus for chronically monitoring the hemodynamic state of a patient using doppler ultrasound
US5156154A (en) 1991-03-08 1992-10-20 Telectronics Pacing Systems, Inc. Monitoring the hemodynamic state of a patient from measurements of myocardial contractility using doppler ultrasound techniques
US5267564A (en) * 1991-06-14 1993-12-07 Siemens Pacesetter, Inc. Pacemaker lead for sensing a physiologic parameter of the body
US5213098A (en) * 1991-07-26 1993-05-25 Medtronic, Inc. Post-extrasystolic potentiation stimulation with physiologic sensor feedback
ATE142520T1 (en) 1991-11-04 1996-09-15 Cardiac Pacemakers Inc IMPLANTABLE HEART MONITORING AND STIMULATION DEVICE FOR DIAGNOSIS AND THERAPY
US5313020A (en) * 1992-05-29 1994-05-17 Western Atlas International, Inc. Electrical cable
US5243981A (en) 1992-07-13 1993-09-14 Medtronic, Inc. Myocardial conduction velocity rate responsive pacemaker
US5285744A (en) 1992-09-04 1994-02-15 Vapor Systems Technologies, Inc. Coaxial hose assembly
US5662108A (en) * 1992-09-23 1997-09-02 Endocardial Solutions, Inc. Electrophysiology mapping system
US5309910A (en) * 1992-09-25 1994-05-10 Ep Technologies, Inc. Cardiac mapping and ablation systems
US5318591A (en) * 1992-11-23 1994-06-07 Siemens Pacesetter, Inc. Implantable cardioverter-defibrillator having early charging capability
US5433198A (en) 1993-03-11 1995-07-18 Desai; Jawahar M. Apparatus and method for cardiac ablation
US5879374A (en) 1993-05-18 1999-03-09 Heartstream, Inc. External defibrillator with automatic self-testing prior to use
US5411532A (en) * 1993-06-04 1995-05-02 Pacesetter, Inc. Cardiac pacemaker having integrated pacing lead and oxygen sensor
CA2166201A1 (en) * 1993-06-30 1995-01-12 Barry Colin Crane Biphasic material
CA2165829A1 (en) 1993-07-01 1995-01-19 John E. Abele Imaging, electrical potential sensing, and ablation catheters
US5628777A (en) * 1993-07-14 1997-05-13 Pacesetter, Inc. Implantable leads incorporating cardiac wall acceleration sensors and method of fabrication
US5391199A (en) 1993-07-20 1995-02-21 Biosense, Inc. Apparatus and method for treating cardiac arrhythmias
US5423323A (en) * 1993-08-30 1995-06-13 Rocky Mountain Research, Inc. System for calculating compliance and cardiac hemodynamic parameters
US5476485A (en) 1993-09-21 1995-12-19 Pacesetter, Inc. Automatic implantable pulse generator
US5797903A (en) * 1996-04-12 1998-08-25 Ep Technologies, Inc. Tissue heating and ablation systems and methods using porous electrode structures with electrically conductive surfaces
US5411537A (en) * 1993-10-29 1995-05-02 Intermedics, Inc. Rechargeable biomedical battery powered devices with recharging and control system therefor
US6009349A (en) 1993-11-16 1999-12-28 Pacesetter, Inc. System and method for deriving hemodynamic signals from a cardiac wall motion sensor
JP3400835B2 (en) 1993-12-20 2003-04-28 テルモ株式会社 Secondary conduction path detector
US5501703A (en) 1994-01-24 1996-03-26 Medtronic, Inc. Multichannel apparatus for epidural spinal cord stimulator
US5579234A (en) 1994-03-11 1996-11-26 Physio-Control Corporation System for automatically testing an electronic device during quiescent periods
US5549650A (en) 1994-06-13 1996-08-27 Pacesetter, Inc. System and method for providing hemodynamically optimal pacing therapy
US5810802A (en) * 1994-08-08 1998-09-22 E.P. Technologies, Inc. Systems and methods for controlling tissue ablation using multiple temperature sensing elements
US5769875A (en) 1994-09-06 1998-06-23 Case Western Reserve University Functional neuromusclar stimulation system
US6015429A (en) * 1994-09-08 2000-01-18 Gore Enterprise Holdings, Inc. Procedures for introducing stents and stent-grafts
CN1171039A (en) * 1994-10-19 1998-01-21 艾弗里·丹尼森公司 Diaper fastening system using welded branching type tabs
US5487752A (en) * 1994-11-15 1996-01-30 Cardiac Pacemakers, Inc. Automated programmable stimulating device to optimize pacing parameters and method
US5563762A (en) 1994-11-28 1996-10-08 Northern Telecom Limited Capacitor for an integrated circuit and method of formation thereof, and a method of adding on-chip capacitors to an integrated circuit
US5544656A (en) 1994-12-02 1996-08-13 The Regents Of The University Of California Method and apparatus for myocardial wall measurement
US5593430A (en) * 1995-01-27 1997-01-14 Pacesetter, Inc. Bus system for interconnecting an implantable medical device with a plurality of sensors
US6002963A (en) 1995-02-17 1999-12-14 Pacesetter, Inc. Multi-axial accelerometer-based sensor for an implantable medical device and method of measuring motion measurements therefor
US5535752A (en) 1995-02-27 1996-07-16 Medtronic, Inc. Implantable capacitive absolute pressure and temperature monitor system
DE69615007T2 (en) 1995-02-27 2002-06-13 Medtronic Inc EXTERNAL REFERENCE PROBE FOR A PATIENT
US5674258A (en) 1995-03-08 1997-10-07 Medtronic, Inc. Packaged integrated accelerometer
US5725562A (en) 1995-03-30 1998-03-10 Medtronic Inc Rate responsive cardiac pacemaker and method for discriminating stair climbing from other activities
WO1997011637A1 (en) 1995-09-28 1997-04-03 Data Sciences International, Inc. Respiration monitoring system based on sensed blood pressure
US5743267A (en) 1995-10-19 1998-04-28 Telecom Medical, Inc. System and method to monitor the heart of a patient
JP2825074B2 (en) * 1995-10-25 1998-11-18 日本電気株式会社 Method for manufacturing semiconductor device
US5713937A (en) * 1995-11-07 1998-02-03 Pacesetter, Inc. Pacemaker programmer menu with selectable real or simulated implant data graphics
US5836987A (en) 1995-11-15 1998-11-17 Cardiac Pacemakers, Inc. Apparatus and method for optimizing cardiac performance by determining the optimal timing interval from an accelerometer signal
US6363279B1 (en) * 1996-01-08 2002-03-26 Impulse Dynamics N.V. Electrical muscle controller
US5605159A (en) * 1996-02-16 1997-02-25 Smith; Joseph M. System and method for determining spatial organization of atrial activation
US6051017A (en) * 1996-02-20 2000-04-18 Advanced Bionics Corporation Implantable microstimulator and systems employing the same
US5755759A (en) * 1996-03-14 1998-05-26 Eic Laboratories, Inc. Biomedical device with a protective overlayer
FR2796562B1 (en) * 1996-04-04 2005-06-24 Medtronic Inc TECHNIQUES FOR STIMULATING LIVING TISSUE AND RECORDING WITH LOCAL CONTROL OF ACTIVE SITES
WO1997037720A1 (en) * 1996-04-04 1997-10-16 Medtronic, Inc. Living tissue stimulation and recording techniques
US5683429A (en) 1996-04-30 1997-11-04 Medtronic, Inc. Method and apparatus for cardiac pacing to prevent atrial fibrillation
US5720768A (en) 1996-05-22 1998-02-24 Sulzer Intermedics Inc. Dual chamber pacing with interchamber delay
US5938690A (en) 1996-06-07 1999-08-17 Advanced Neuromodulation Systems, Inc. Pain management system and method
US5800465A (en) 1996-06-18 1998-09-01 Medtronic, Inc. System and method for multisite steering of cardiac stimuli
US5843148A (en) * 1996-09-27 1998-12-01 Medtronic, Inc. High resolution brain stimulation lead and method of use
SE9603573D0 (en) * 1996-09-30 1996-09-30 Pacesetter Ab Implantable medecal device
US6311692B1 (en) 1996-10-22 2001-11-06 Epicor, Inc. Apparatus and method for diagnosis and therapy of electrophysiological disease
US5814089A (en) 1996-12-18 1998-09-29 Medtronic, Inc. Leadless multisite implantable stimulus and diagnostic system
US5788647A (en) 1997-01-24 1998-08-04 Eggers; Philip E. Method, system and apparatus for evaluating hemodynamic parameters
SE9700427D0 (en) 1997-02-07 1997-02-07 Pacesetter Ab Ischemia detector
US5895416A (en) 1997-03-12 1999-04-20 Medtronic, Inc. Method and apparatus for controlling and steering an electric field
JPH10280983A (en) * 1997-04-02 1998-10-20 Sanshin Ind Co Ltd Control mechanism for outboard 4 cycle engine
US5902234A (en) 1997-04-10 1999-05-11 Webb; Nicholas J. Medical communication system for ambulatory home-care patients
US6785576B2 (en) 1997-04-21 2004-08-31 Medtronic, Inc. Medical electrical lead
US5873849A (en) * 1997-04-24 1999-02-23 Ichor Medical Systems, Inc. Electrodes and electrode arrays for generating electroporation inducing electrical fields
US6032699A (en) 1997-05-19 2000-03-07 Furon Company Fluid delivery pipe with leak detection
WO1998056291A1 (en) 1997-06-12 1998-12-17 Lundgren, Clas Noninvasive monitoring of cardiac performance
US6185443B1 (en) * 1997-09-29 2001-02-06 Boston Scientific Corporation Visible display for an interventional device
US5913814A (en) * 1997-08-26 1999-06-22 Belmont Instrument Corporation Method and apparatus for deflation of an intra-aortic balloon
US5941904A (en) 1997-09-12 1999-08-24 Sulzer Intermedics Inc. Electromagnetic acceleration transducer for implantable medical device
US5999848A (en) 1997-09-12 1999-12-07 Alfred E. Mann Foundation Daisy chainable sensors and stimulators for implantation in living tissue
US5999849A (en) 1997-09-12 1999-12-07 Alfred E. Mann Foundation Low power rectifier circuit for implantable medical device
US5935084A (en) 1997-09-30 1999-08-10 Johnson & Johnson Professional, Inc. Inflatable pressure indicator
US6078830A (en) 1997-10-01 2000-06-20 Ep Technologies, Inc. Molded catheter distal end assembly and process for the manufacture thereof
US20020120200A1 (en) 1997-10-14 2002-08-29 Brian Brockway Devices, systems and methods for endocardial pressure measurement
US5991661A (en) 1997-10-17 1999-11-23 Pacesetter, Inc. System and method for measuring cardiac activity
US6119028A (en) * 1997-10-20 2000-09-12 Alfred E. Mann Foundation Implantable enzyme-based monitoring systems having improved longevity due to improved exterior surfaces
US6016449A (en) * 1997-10-27 2000-01-18 Neuropace, Inc. System for treatment of neurological disorders
US6115626A (en) * 1998-03-26 2000-09-05 Scimed Life Systems, Inc. Systems and methods using annotated images for controlling the use of diagnostic or therapeutic instruments in instruments in interior body regions
SE9801238D0 (en) 1998-04-08 1998-04-08 Siemens Elema Ab Apparatus and method for locating electrically active sites within an animal
WO1999052588A1 (en) * 1998-04-14 1999-10-21 Koninklijke Philips Electronics N.V. Electro-stimulation apparatus
US6122545A (en) 1998-04-28 2000-09-19 Medtronic, Inc. Multiple channel sequential cardiac pacing method
US6223080B1 (en) * 1998-04-29 2001-04-24 Medtronic, Inc. Power consumption reduction in medical devices employing multiple digital signal processors and different supply voltages
US6024704A (en) 1998-04-30 2000-02-15 Medtronic, Inc Implantable medical device for sensing absolute blood pressure and barometric pressure
US6015386A (en) 1998-05-07 2000-01-18 Bpm Devices, Inc. System including an implantable device and methods of use for determining blood pressure and other blood parameters of a living being
JPH11333000A (en) 1998-05-27 1999-12-07 Cardio Pacing Research Laboratory:Kk Electrode lead for vital plantation
US6406677B1 (en) * 1998-07-22 2002-06-18 Eltron Research, Inc. Methods for low and ambient temperature preparation of precursors of compounds of group III metals and group V elements
US6141588A (en) 1998-07-24 2000-10-31 Intermedics Inc. Cardiac simulation system having multiple stimulators for anti-arrhythmia therapy
KR100300527B1 (en) 1998-09-03 2001-10-27 윤덕용 Remote pressure monitoring device of sealed type and manufacture method for the same
US6044297A (en) * 1998-09-25 2000-03-28 Medtronic, Inc. Posture and device orientation and calibration for implantable medical devices
US6044298A (en) * 1998-10-13 2000-03-28 Cardiac Pacemakers, Inc. Optimization of pacing parameters based on measurement of integrated acoustic noise
US6026324A (en) * 1998-10-13 2000-02-15 Cardiac Pacemakers, Inc. Extraction of hemodynamic pulse pressure from fluid and myocardial accelerations
US6370431B1 (en) * 1998-10-26 2002-04-09 Medtronic, Inc. Pacemaker system for preventing ventricular tachycardia
JP4217313B2 (en) 1998-11-04 2009-01-28 オリンパス株式会社 Electronic endoscope device
US6253109B1 (en) * 1998-11-05 2001-06-26 Medtronic Inc. System for optimized brain stimulation
US6141593A (en) 1998-11-10 2000-10-31 Intermedics Inc. Cardiac lead with ETEE coated DBS coil
FR2786894B1 (en) 1998-12-08 2006-06-16 Thomson Csf CHARGING LIMITED LOADING MOTION DEVICE ACCORDING TO SIX DEGREES OF FREEDOM
US6115636A (en) 1998-12-22 2000-09-05 Medtronic, Inc. Telemetry for implantable devices using the body as an antenna
US6466820B1 (en) 1998-12-29 2002-10-15 Medtronic, Inc. Multi-site cardiac pacing system having trigger pace window
US6496730B1 (en) 1998-12-29 2002-12-17 Medtronic, Inc. Multi-site cardiac pacing system having conditional refractory period
US6155267A (en) 1998-12-31 2000-12-05 Medtronic, Inc. Implantable medical device monitoring method and system regarding same
US6083216A (en) 1999-01-05 2000-07-04 Intermedics Inc. Bent cardiac lead with shape memory torque coil
US6909917B2 (en) 1999-01-07 2005-06-21 Advanced Bionics Corporation Implantable generator having current steering means
US6052624A (en) 1999-01-07 2000-04-18 Advanced Bionics Corporation Directional programming for implantable electrode arrays
US6206835B1 (en) 1999-03-24 2001-03-27 The B. F. Goodrich Company Remotely interrogated diagnostic implant device with electrically passive sensor
US6171252B1 (en) 1999-04-29 2001-01-09 Medtronic, Inc. Pressure sensor with increased sensitivity for use with an implantable medical device
US6055456A (en) 1999-04-29 2000-04-25 Medtronic, Inc. Single and multi-polar implantable lead for sacral nerve electrical stimulation
US20010025192A1 (en) * 1999-04-29 2001-09-27 Medtronic, Inc. Single and multi-polar implantable lead for sacral nerve electrical stimulation
US6309350B1 (en) 1999-05-03 2001-10-30 Tricardia, L.L.C. Pressure/temperature/monitor device for heart implantation
DE19930265A1 (en) 1999-06-25 2000-12-28 Biotronik Mess & Therapieg Electrode arrangement
DE19930271A1 (en) 1999-06-25 2000-12-28 Biotronik Mess & Therapieg Electrode arrangement
US6692834B1 (en) 1999-06-28 2004-02-17 Medtronic, Inc. Method for coating implantable devices
US6451016B1 (en) * 1999-07-12 2002-09-17 C. R. Bard, Inc. Displaceable ablation electrode
US6165135A (en) 1999-07-14 2000-12-26 Neff; Samuel R. System and method of interrogating implanted passive resonant-circuit devices
US6360123B1 (en) 1999-08-24 2002-03-19 Impulse Dynamics N.V. Apparatus and method for determining a mechanical property of an organ or body cavity by impedance determination
US6442433B1 (en) 1999-10-26 2002-08-27 Medtronic, Inc. Apparatus and method for remote troubleshooting, maintenance and upgrade of implantable device systems
US6197677B1 (en) * 1999-11-01 2001-03-06 United Microelectronics Corp. Method of depositing a silicon oxide layer on a semiconductor wafer
US6277078B1 (en) 1999-11-19 2001-08-21 Remon Medical Technologies, Ltd. System and method for monitoring a parameter associated with the performance of a heart
JP2001160801A (en) * 1999-12-02 2001-06-12 Sony Corp Method and system for transmitting duplex digital data
US6473638B2 (en) 1999-12-24 2002-10-29 Medtronic, Inc. Medical device GUI for cardiac electrophysiology display and data communication
US6328699B1 (en) 2000-01-11 2001-12-11 Cedars-Sinai Medical Center Permanently implantable system and method for detecting, diagnosing and treating congestive heart failure
US6579243B2 (en) 2000-03-02 2003-06-17 Scimed Life Systems, Inc. Catheter with thermal sensor for detection of vulnerable plaque
ATE281785T1 (en) 2000-03-21 2004-11-15 Radi Medical Systems PASSIVE BIOTELEMETRY
JP4700209B2 (en) * 2000-03-21 2011-06-15 ラディ・メディカル・システムズ・アクチェボラーグ Passive biotelemetry
JP2001327605A (en) * 2000-05-25 2001-11-27 Mitsubishi Cable Ind Ltd Method of manufacturing flexible tube
JP2002006601A (en) * 2000-06-23 2002-01-11 Canon Inc Developer replenishing container and image forming device
US6584362B1 (en) * 2000-08-30 2003-06-24 Cardiac Pacemakers, Inc. Leads for pacing and/or sensing the heart from within the coronary veins
US6764446B2 (en) 2000-10-16 2004-07-20 Remon Medical Technologies Ltd Implantable pressure sensors and methods for making and using them
US6628989B1 (en) 2000-10-16 2003-09-30 Remon Medical Technologies, Ltd. Acoustic switch and apparatus and methods for using acoustic switches within a body
US7024248B2 (en) 2000-10-16 2006-04-04 Remon Medical Technologies Ltd Systems and methods for communicating with implantable devices
US6501992B1 (en) * 2000-10-17 2002-12-31 Medtronic, Inc. Radiopaque marking of lead electrode zone in a continuous conductor construction
US20010000187A1 (en) * 2000-10-23 2001-04-05 Case Western Reserve University Functional neuromuscular stimulation system
US20020077568A1 (en) 2000-11-22 2002-06-20 Haddock Thomas F. Biological vessel volume measurement method and apparatus utilizing micro accelerometer
US6746404B2 (en) 2000-12-18 2004-06-08 Biosense, Inc. Method for anchoring a medical device between tissue
US6484057B2 (en) 2000-12-21 2002-11-19 Uab Research Foundation Pacing methods and devices for treating cardiac arrhythmias and fibrillation
US6438408B1 (en) 2000-12-28 2002-08-20 Medtronic, Inc. Implantable medical device for monitoring congestive heart failure
US6666821B2 (en) * 2001-01-08 2003-12-23 Medtronic, Inc. Sensor system
US6600954B2 (en) 2001-01-25 2003-07-29 Biocontrol Medical Bcm Ltd. Method and apparatus for selective control of nerve fibers
WO2002064205A2 (en) 2001-02-13 2002-08-22 Quetzal Biomedical, Inc. Multi-electrode apparatus and method for treatment of congestive heart failure
US6514214B2 (en) 2001-02-13 2003-02-04 Scimed Life Systems, Inc. Intravascular temperature sensor
US6666862B2 (en) 2001-03-01 2003-12-23 Cardiac Pacemakers, Inc. Radio frequency ablation system and method linking energy delivery with fluid flow
JP3660887B2 (en) 2001-03-19 2005-06-15 株式会社日立製作所 Surgery support device
US6766189B2 (en) 2001-03-30 2004-07-20 Cardiac Pacemakers, Inc. Method and apparatus for predicting acute response to cardiac resynchronization therapy
US6477417B1 (en) 2001-04-12 2002-11-05 Pacesetter, Inc. System and method for automatically selecting electrode polarity during sensing and stimulation
US6580946B2 (en) 2001-04-26 2003-06-17 Medtronic, Inc. Pressure-modulated rate-responsive cardiac pacing
US6611714B1 (en) 2001-06-13 2003-08-26 Pacesetter, Inc. Multi-site cardiac stimulation device and method for detecting retrograde conduction
US6947782B2 (en) 2001-06-18 2005-09-20 Alfred E. Mann Foundation For Scientific Research Miniature implantable connectors
EP1426079B1 (en) 2001-06-18 2010-02-24 Alfred E. Mann Foundation for Scientific Research Miniature implantable connectors
US7481759B2 (en) 2001-08-03 2009-01-27 Cardiac Pacemakers, Inc. Systems and methods for treatment of coronary artery disease
US6625493B2 (en) 2001-08-24 2003-09-23 Pacesetter, Inc. Orientation of patient's position sensor using external field
US7974693B2 (en) 2001-08-31 2011-07-05 Bio Control Medical (B.C.M.) Ltd. Techniques for applying, configuring, and coordinating nerve fiber stimulation
US6907297B2 (en) * 2001-09-28 2005-06-14 Ethicon, Inc. Expandable intracardiac return electrode and method of use
IL145700A0 (en) 2001-09-30 2002-06-30 Younis Imad Electrode system for neural applications
US6934583B2 (en) * 2001-10-22 2005-08-23 Pacesetter, Inc. Implantable lead and method for stimulating the vagus nerve
US7286878B2 (en) * 2001-11-09 2007-10-23 Medtronic, Inc. Multiplexed electrode array extension
US7177680B2 (en) 2001-12-03 2007-02-13 Medtronic, Inc. Field stimulation about a discontinuity of the myocardium to capture the heart at reduced pacing thresholds
US6993384B2 (en) * 2001-12-04 2006-01-31 Advanced Bionics Corporation Apparatus and method for determining the relative position and orientation of neurostimulation leads
US7127289B2 (en) 2001-12-05 2006-10-24 Cardiac Pacemakers, Inc. Cardiac resynchronization system employing mechanical measurement of cardiac walls
US6666826B2 (en) 2002-01-04 2003-12-23 Cardiac Pacemakers, Inc. Method and apparatus for measuring left ventricular pressure
US7050856B2 (en) 2002-01-11 2006-05-23 Medtronic, Inc. Variation of neural-stimulation parameters
US6915160B2 (en) 2002-02-08 2005-07-05 Cardiac Pacemakers, Inc. Dynamically optimized multisite cardiac resynchronization device
US6957107B2 (en) 2002-03-13 2005-10-18 Cardionet, Inc. Method and apparatus for monitoring and communicating with an implanted medical device
US7270669B1 (en) 2002-03-14 2007-09-18 Medtronic, Inc. Epicardial lead placement for bi-ventricular pacing using thoracoscopic approach
US6934584B1 (en) 2002-03-27 2005-08-23 Pacesetter, Inc. Enhanced power efficiency in implantable cardiac stimulation devices
US20030216800A1 (en) 2002-04-11 2003-11-20 Medtronic, Inc. Implantable medical device conductor insulation and process for forming
US20040039417A1 (en) * 2002-04-16 2004-02-26 Medtronic, Inc. Electrical stimulation and thrombolytic therapy
US7184840B2 (en) * 2002-04-22 2007-02-27 Medtronic, Inc. Implantable lead with isolated contact coupling
US7177704B2 (en) 2002-04-29 2007-02-13 Medtronic, Inc. Pacing method and apparatus
NZ519153A (en) * 2002-05-23 2004-09-24 David Stanley Hoyle Agricultural spreader having an inclinometer means and a microprocessor for controlling the supply rate of the fertiliser
JP2004024551A (en) 2002-06-26 2004-01-29 Renesas Technology Corp Semiconductor device for sensor system
US6978184B1 (en) 2002-07-29 2005-12-20 Marcus Frank I Optimization method for cardiac resynchronization therapy
US7485089B2 (en) 2002-09-05 2009-02-03 Paracor Medical, Inc. Cardiac harness
US7130700B2 (en) * 2002-11-19 2006-10-31 Medtronic, Inc. Multilumen body for an implantable medical device
US7047084B2 (en) * 2002-11-20 2006-05-16 Advanced Neuromodulation Systems, Inc. Apparatus for directionally stimulating nerve tissue
US20040106951A1 (en) 2002-11-22 2004-06-03 Edman Carl Frederick Use of electric fields to minimize rejection of implanted devices and materials
AU2003296956A1 (en) 2002-12-11 2004-06-30 Proteus Biomedical, Inc. Monitoring and treating hemodynamic parameters
US20060035147A1 (en) * 2003-01-15 2006-02-16 Quallion Llc Battery
EP1585441A4 (en) * 2003-01-24 2008-05-21 Proteus Biomedical Inc Methods and systems for measuring cardiac parameters
EP1585442A4 (en) 2003-01-24 2006-04-26 Proteus Biomedical Inc Method and system for remote hemodynamic monitoring
WO2004067081A2 (en) 2003-01-24 2004-08-12 Proteus Biomedical Inc. Methods and apparatus for enhancing cardiac pacing
EP1592344A4 (en) 2003-01-31 2006-08-16 Univ Leland Stanford Junior Detection of apex motion for monitoring cardiac dysfunction
US6812796B2 (en) 2003-02-18 2004-11-02 02Micro International Limited Inter-stage coupling in multistage amplifiers
US6885889B2 (en) * 2003-02-28 2005-04-26 Medtronic, Inc. Method and apparatus for optimizing cardiac resynchronization therapy based on left ventricular acceleration
WO2004082460A2 (en) 2003-03-14 2004-09-30 Shock, Llc Methods of and apparatus for determining fluid volume presence in mammalian tissue
US8368150B2 (en) 2003-03-17 2013-02-05 Megica Corporation High performance IC chip having discrete decoupling capacitors attached to its IC surface
US8383158B2 (en) 2003-04-15 2013-02-26 Abbott Cardiovascular Systems Inc. Methods and compositions to treat myocardial conditions
US6994676B2 (en) * 2003-04-30 2006-02-07 Medtronic, Inc Method and apparatus for assessing ventricular contractile status
CA2530429A1 (en) * 2003-07-10 2005-01-27 Paracor Medical, Inc. Self-anchoring cardiac harness
US7092759B2 (en) * 2003-07-30 2006-08-15 Medtronic, Inc. Method of optimizing cardiac resynchronization therapy using sensor signals of septal wall motion
US7174218B1 (en) * 2003-08-12 2007-02-06 Advanced Bionics Corporation Lead extension system for use with a microstimulator
WO2005025401A2 (en) 2003-09-09 2005-03-24 Board Of Regents Method and apparatus for determining cardiac performance in a patient with a conductance catheter
US8489196B2 (en) * 2003-10-03 2013-07-16 Medtronic, Inc. System, apparatus and method for interacting with a targeted tissue of a patient
US7184833B2 (en) * 2003-10-07 2007-02-27 Medtronic, Inc. Multiple pacing output channels
US7155295B2 (en) * 2003-11-07 2006-12-26 Paracor Medical, Inc. Cardiac harness for treating congestive heart failure and for defibrillating and/or pacing/sensing
US20050246004A1 (en) 2004-04-28 2005-11-03 Advanced Neuromodulation Systems, Inc. Combination lead for electrical stimulation and sensing
EP1799101A4 (en) * 2004-09-02 2008-11-19 Proteus Biomedical Inc Methods and apparatus for tissue activation and monitoring
WO2006069322A2 (en) 2004-12-22 2006-06-29 Proteus Biomedical, Inc. Implantable addressable segmented electrodes
US7877149B2 (en) * 2004-09-02 2011-01-25 Proteus Biomedical Inc. Electrical angle gauge
FR2875071B1 (en) * 2004-09-03 2006-11-24 Inst Nat Rech Inf Automat DEVICE FOR DISTRIBUTING CURRENT BETWEEN CATHODES OF A MULTIPOLAR ELECTRODE, IN PARTICULAR AN IMPLANT
US20080058656A1 (en) * 2004-10-08 2008-03-06 Costello Benedict J Electric tomography
US7200437B1 (en) * 2004-10-13 2007-04-03 Pacesetter, Inc. Tissue contact for satellite cardiac pacemaker
US9050455B2 (en) * 2004-10-21 2015-06-09 Medtronic, Inc. Transverse tripole neurostimulation methods, kits and systems
US8195308B2 (en) 2004-12-22 2012-06-05 Proteus Biomedical, Inc. Implantable hermetically sealed structures
US20060161211A1 (en) 2004-12-31 2006-07-20 Todd Thompson Implantable accelerometer-based cardiac wall position detector
EP1686692A3 (en) 2005-01-31 2006-08-09 Advanced Neuromodulation Systems, Inc. Pulse generator having an efficient fractional voltage converter and method of use
US8224444B2 (en) * 2005-02-18 2012-07-17 Bio Control Medical (B.C.M.) Ltd. Intermittent electrical stimulation
JP5027797B2 (en) 2005-03-31 2012-09-19 プロテウス バイオメディカル インコーポレイテッド Automatic optimization of multi-electrode pacing for cardiac resynchronization
US8118748B2 (en) 2005-04-28 2012-02-21 Medtronic, Inc. Implantable capacitive pressure sensor system and method
US7395119B2 (en) 2005-05-19 2008-07-01 Cvrx, Inc. Implantable electrode assembly having reverse electrode configuration
US20090299447A1 (en) 2005-07-01 2009-12-03 Marc Jensen Deployable epicardial electrode and sensor array
US8620436B2 (en) * 2005-07-08 2013-12-31 Boston Scientific Neuromodulation Corporation Current generation architecture for an implantable stimulator device having coarse and fine current control
WO2007021804A2 (en) 2005-08-12 2007-02-22 Proteus Biomedical, Inc. Evaluation of depolarization wave conduction velocity
JP2009509669A (en) 2005-09-27 2009-03-12 シネコー・エルエルシー Transgastric surgery device and procedure
US20070198066A1 (en) * 2005-11-03 2007-08-23 Greenberg Robert J Method and apparatus for visual neural stimulation
US8204586B2 (en) * 2005-11-22 2012-06-19 Proteus Biomedical, Inc. External continuous field tomography
EP1968693A4 (en) 2005-12-22 2011-04-27 Proteus Biomedical Inc Implantable integrated circuit
US7467016B2 (en) 2006-01-27 2008-12-16 Cyberonics, Inc. Multipolar stimulation electrode with mating structures for gripping targeted tissue
US7657319B2 (en) 2006-02-24 2010-02-02 Medtronic, Inc. Programming interface with an unwrapped 2D view of a stimulation lead with complex electrode array geometry
WO2007103262A2 (en) * 2006-03-01 2007-09-13 The Board Of Trustees Of The Leland Stanford Junior University Implanted cardiac device for defibrillation
US7729781B2 (en) 2006-03-16 2010-06-01 Greatbatch Ltd. High efficiency neurostimulation lead
US7617006B2 (en) 2006-04-28 2009-11-10 Medtronic, Inc. Medical electrical lead for spinal cord stimulation
US20070255336A1 (en) 2006-04-28 2007-11-01 Medtronic, Inc. Gastric constriction device with selectable electrode combinations
US7460929B2 (en) 2006-05-01 2008-12-02 Agere Systems Inc. Integrated current fault controller
TWI330354B (en) * 2006-07-07 2010-09-11 Chimei Innolux Corp Pulse light-adjusting circuit
US20080097566A1 (en) * 2006-07-13 2008-04-24 Olivier Colliou Focused segmented electrode
US7706888B2 (en) 2006-07-14 2010-04-27 Med-El Elektromedizinische Geraete Gmbh Bi-planar electrode with shunting gates
US20080039916A1 (en) * 2006-08-08 2008-02-14 Olivier Colliou Distally distributed multi-electrode lead
US8874214B2 (en) * 2006-08-28 2014-10-28 Cardiac Pacemakers, Inc. Implantable pulse generator with a stacked capacitor, battery, and electronics
US20080114230A1 (en) * 2006-11-14 2008-05-15 Bruce Addis Electrode support
US20080147168A1 (en) * 2006-12-04 2008-06-19 Terrance Ransbury Intravascular implantable device having detachable tether arrangement
US8311633B2 (en) 2006-12-04 2012-11-13 Synecor Llc Intravascular implantable device having superior anchoring arrangement
EP2102772A2 (en) * 2006-12-06 2009-09-23 Medtronic, Inc. Medical device programming safety
US7892675B1 (en) 2006-12-06 2011-02-22 Quallion Llc Electrochemical device having ultrasonic weld attaching weld material to electrode tab
US20080200802A1 (en) 2006-12-07 2008-08-21 Philometron, Inc. Platform for detection of tissue content and/or structural changes with closed-loop control in mammalian organisms
FR2910818A1 (en) 2006-12-28 2008-07-04 Ela Medical Soc Par Actions Si MULTIPLEXED ELECTRODE CONTROLLED SWITCHING CIRCUIT FOR ACTIVE ACTIVE IMPLANTABLE DISPOSITION
WO2008148097A2 (en) 2007-05-25 2008-12-04 Massachusetts Institute Of Technology Low-power analog architecture for brain-machine interfaces
US20090024184A1 (en) * 2007-07-17 2009-01-22 Nurotron Biotechnology, Inc. Cochlear implant utilizing multiple-resolution current sources and flexible data encoding
EP2190528B1 (en) * 2007-08-20 2014-10-08 Medtronic, Inc. Evaluating therapeutic stimulation electrode configurations based on physiological responses
WO2009025816A1 (en) * 2007-08-20 2009-02-26 Medtronic, Inc. Electrode configurations for directional leads
US8187161B2 (en) 2007-08-31 2012-05-29 Proteus Biomedical, Inc. Self-referencing communication in implantable devices
US8406898B2 (en) * 2007-09-27 2013-03-26 Cardiac Pacemakers, Inc. Implantable lead with an electrostimulation capacitor
US8032218B2 (en) * 2008-07-31 2011-10-04 Pacesetter, Inc. Implantable cardiac device with satellite refresh
WO2011103477A2 (en) 2010-02-19 2011-08-25 Philometron, Inc. Vascular patency management using electric fields
JP5269136B2 (en) 2011-03-30 2013-08-21 中国電力株式会社 How to identify jellyfish planula larvae

Patent Citations (18)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4397314A (en) 1981-08-03 1983-08-09 Clini-Therm Corporation Method and apparatus for controlling and optimizing the heating pattern for a hyperthermia system
US4603705A (en) 1984-05-04 1986-08-05 Mieczyslaw Mirowski Intravascular multiple electrode unitary catheter
US4776334A (en) 1985-03-22 1988-10-11 Stanford University Catheter for treatment of tumors
US4815472A (en) 1987-06-01 1989-03-28 The Regents Of The University Of Michigan Multipoint pressure-sensing catheter system
US4881410A (en) 1987-06-01 1989-11-21 The Regents Of The University Of Michigan Ultraminiature pressure sensor and method of making same
US5113868A (en) 1987-06-01 1992-05-19 The Regents Of The University Of Michigan Ultraminiature pressure sensor with addressable read-out circuit
US5419767A (en) 1992-01-07 1995-05-30 Thapliyal And Eggers Partners Methods and apparatus for advancing catheters through severely occluded body lumens
US5662587A (en) 1992-09-16 1997-09-02 Cedars Sinai Medical Center Robotic endoscopy
US5579764A (en) 1993-01-08 1996-12-03 Goldreyer; Bruce N. Method and apparatus for spatially specific electrophysiological sensing in a catheter with an enlarged ablating electrode
US5509411A (en) 1993-01-29 1996-04-23 Cardima, Inc. Intravascular sensing device
US5591142A (en) 1993-04-20 1997-01-07 Cordis Corporation Catheter with wire reinforcement having good electrical conductivity
US6033398A (en) 1996-03-05 2000-03-07 Vnus Medical Technologies, Inc. Method and apparatus for treating venous insufficiency using directionally applied energy
US5924997A (en) 1996-07-29 1999-07-20 Campbell; Thomas Henderson Catheter and method for the thermal mapping of hot spots in vascular lesions of the human body
US5902248A (en) 1996-11-06 1999-05-11 Millar Instruments, Inc. Reduced size catheter tip measurement device
US6309385B1 (en) 1998-05-05 2001-10-30 Cardiac Pacemakers, Inc. Electrode having composition-matched, common-lead thermocouple wire for providing multiple temperature-sensitive junctions
US20020026183A1 (en) 1998-05-05 2002-02-28 Simpson John A. Electrode having composition-matched, common-lead thermocouple wire for providing multiple temperature-sensitive junctions
US20010053882A1 (en) 2000-06-16 2001-12-20 Haddock Thomas F. Temperature sensing catheter
US20020156417A1 (en) 2001-01-22 2002-10-24 Rich Collin A. Sensing catheter system and method of fabrication

Non-Patent Citations (1)

* Cited by examiner, † Cited by third party
Title
See also references of EP1581102A4

Cited By (54)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US8712549B2 (en) 2002-12-11 2014-04-29 Proteus Digital Health, Inc. Method and system for monitoring and treating hemodynamic parameters
US7200439B2 (en) 2003-01-24 2007-04-03 Proteus Biomedical, Inc. Method and apparatus for enhancing cardiac pacing
US7204798B2 (en) 2003-01-24 2007-04-17 Proteus Biomedical, Inc. Methods and systems for measuring cardiac parameters
US7738958B2 (en) 2003-01-24 2010-06-15 Proteus Biomedical, Inc. Methods and apparatus for enhancing cardiac pacing
US7267649B2 (en) 2003-01-24 2007-09-11 Proteus Biomedical, Inc. Method and system for remote hemodynamic monitoring
US9768373B2 (en) 2003-10-30 2017-09-19 Covidien Ag Switched resonant ultrasonic power amplifier system
US7214189B2 (en) 2004-09-02 2007-05-08 Proteus Biomedical, Inc. Methods and apparatus for tissue activation and monitoring
US8700148B2 (en) 2004-09-02 2014-04-15 Proteus Digital Health, Inc. Methods and apparatus for tissue activation and monitoring
US8123684B2 (en) 2004-09-02 2012-02-28 Proteus Biomedical, Inc. Methods for configuring implantable satellite effectors
US7935056B2 (en) 2004-09-02 2011-05-03 Proteus Biomedical, Inc. Intravascularly implantable integrated circuits
US7713194B2 (en) 2004-09-02 2010-05-11 Proteus Biomedical, Inc. Methods for configuring satellite electrodes
US7713195B2 (en) 2004-09-02 2010-05-11 Proteus Biomedical, Inc. Methods for controlling implantable satellite electrodes
US7640060B2 (en) 2004-09-02 2009-12-29 Proteus Biomedical, Inc. Implantable satellite effectors
US7637867B2 (en) 2004-09-02 2009-12-29 Proteus Biomedical, Inc. Methods for configuring implantable satellite effectors
JP2008525121A (en) * 2004-12-22 2008-07-17 プロテウス バイオメディカル インコーポレイテッド Implantable hermetic sealed structure
JP2008525120A (en) * 2004-12-22 2008-07-17 プロテウス バイオメディカル インコーポレイテッド Segmented electrodes that are implantable and addressable
JP2006255422A (en) * 2005-03-15 2006-09-28 Codman & Shurtleff Inc Pressure sensitive instrument
US11013548B2 (en) 2005-03-31 2021-05-25 Covidien Ag Method and system for compensating for external impedance of energy carrying component when controlling electrosurgical generator
US9522032B2 (en) 2005-10-21 2016-12-20 Covidien Ag Circuit and method for reducing stored energy in an electrosurgical generator
US10582964B2 (en) 2006-01-24 2020-03-10 Covidien Lp Method and system for controlling an output of a radio-frequency medical generator having an impedance based control algorithm
US9642665B2 (en) 2006-01-24 2017-05-09 Covidien Ag Method and system for controlling an output of a radio-frequency medical generator having an impedance based control algorithm
US9119624B2 (en) 2006-04-24 2015-09-01 Covidien Ag ARC based adaptive control system for an electrosurgical unit
WO2007127622A3 (en) * 2006-04-26 2007-12-21 Medtronic Inc Contactless interconnect for transducers
US7684872B2 (en) 2006-04-26 2010-03-23 Medtronic, Inc. Contactless interconnect for transducers
WO2007127622A2 (en) * 2006-04-26 2007-11-08 Medtronic, Inc. Contactless interconnect for transducers
EP1946700A3 (en) * 2007-01-19 2008-10-22 Tyco Healthcare Group, LP Thermal and electrical conductivity probes and methods of making the same
US7951144B2 (en) 2007-01-19 2011-05-31 Mahajan Roop L Thermal and electrical conductivity probes and methods of making the same
US9375246B2 (en) 2007-01-19 2016-06-28 Covidien Lp System and method of using thermal and electrical conductivity of tissue
WO2009014558A1 (en) * 2007-07-23 2009-01-29 Cardiac Pacemakers, Inc. Implantable viscosity monitoring device and method therefor
EP2399537A1 (en) * 2007-09-07 2011-12-28 Tyco Healthcare Group, LP System and method for transmission of combined data stream
EP2033588A1 (en) * 2007-09-07 2009-03-11 Tyco Healthcare Group, LP System and method for transmission of combined data stream
US9271790B2 (en) 2007-09-21 2016-03-01 Coviden Lp Real-time arc control in electrosurgical generators
WO2011092190A1 (en) * 2010-01-29 2011-08-04 St Jude Medical Systems Ab Medical guide wire assembly
WO2011092202A1 (en) * 2010-01-29 2011-08-04 St Jude Medical Systems Ab Medical guide wire assembly
US8512325B2 (en) 2010-02-26 2013-08-20 Covidien Lp Frequency shifting multi mode ultrasonic dissector
US8718770B2 (en) 2010-10-21 2014-05-06 Medtronic, Inc. Capture threshold measurement for selection of pacing vector
US8483829B2 (en) 2011-05-13 2013-07-09 Medtronic, Inc. Dynamic representation of multipolar leads in a programmer interface
US8355784B2 (en) 2011-05-13 2013-01-15 Medtronic, Inc. Dynamic representation of multipolar leads in a programmer interface
US10076383B2 (en) 2012-01-25 2018-09-18 Covidien Lp Electrosurgical device having a multiplexer
US10073125B2 (en) 2012-06-29 2018-09-11 Covidien Lp Systems and methods for measuring the frequency of signals generated by high frequency medical devices
US9529025B2 (en) 2012-06-29 2016-12-27 Covidien Lp Systems and methods for measuring the frequency of signals generated by high frequency medical devices
US10338115B2 (en) 2012-06-29 2019-07-02 Covidien Lp Systems and methods for measuring the frequency of signals generated by high frequency medical devices
US9872719B2 (en) 2013-07-24 2018-01-23 Covidien Lp Systems and methods for generating electrosurgical energy using a multistage power converter
US11135001B2 (en) 2013-07-24 2021-10-05 Covidien Lp Systems and methods for generating electrosurgical energy using a multistage power converter
US9655670B2 (en) 2013-07-29 2017-05-23 Covidien Lp Systems and methods for measuring tissue impedance through an electrosurgical cable
US9636165B2 (en) 2013-07-29 2017-05-02 Covidien Lp Systems and methods for measuring tissue impedance through an electrosurgical cable
US11883103B2 (en) 2014-08-10 2024-01-30 Autonomix Medical, Inc. ANS assessment systems, kits, and methods
US9937339B2 (en) 2015-04-03 2018-04-10 Sorin Crm Sas Multielectrode lead with multiplexed control and associated connection method
US10300267B2 (en) 2015-04-03 2019-05-28 Sorin Crm Sas Multielectrode lead with multiplexed control and associated connection method
EP3075411A1 (en) * 2015-04-03 2016-10-05 Sorin CRM SAS Multi-electrode probe with multiplexed control, in particular for cardiac stimulation, and associated connection method
US20210059670A1 (en) * 2015-09-23 2021-03-04 Ethicon Llc Surgical stapler having motor control based on a drive system component
WO2018038562A1 (en) * 2016-08-25 2018-03-01 주식회사 한독칼로스메디칼 Denervation catheter
US11848078B2 (en) 2017-10-18 2023-12-19 Autonomix Medical, Inc. Medical devices with circuitry for capturing and processing physiological signals
CN111317561A (en) * 2018-12-14 2020-06-23 杭州普惠医疗器械有限公司 Multi-sensing deep thermosetting electrode

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EP1581102A4 (en) 2006-12-20
US20040193021A1 (en) 2004-09-30
CA2508800A1 (en) 2004-06-24
JP2006509547A (en) 2006-03-23
WO2004052182A3 (en) 2005-07-14
EP1581102A2 (en) 2005-10-05
US8712549B2 (en) 2014-04-29
AU2003296956A8 (en) 2004-06-30
AU2003296956A1 (en) 2004-06-30

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