EP4326385A1 - Method and apparatus for assisting a heart - Google Patents
Method and apparatus for assisting a heartInfo
- Publication number
- EP4326385A1 EP4326385A1 EP22792326.5A EP22792326A EP4326385A1 EP 4326385 A1 EP4326385 A1 EP 4326385A1 EP 22792326 A EP22792326 A EP 22792326A EP 4326385 A1 EP4326385 A1 EP 4326385A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- heart
- assist device
- cardiac assist
- shaft
- patient
- Prior art date
- Legal status (The legal status 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 status listed.)
- Pending
Links
Classifications
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61M—DEVICES FOR INTRODUCING MEDIA INTO, OR ONTO, THE BODY; DEVICES FOR TRANSDUCING BODY MEDIA OR FOR TAKING MEDIA FROM THE BODY; DEVICES FOR PRODUCING OR ENDING SLEEP OR STUPOR
- A61M60/00—Blood pumps; Devices for mechanical circulatory actuation; Balloon pumps for circulatory assistance
- A61M60/10—Location thereof with respect to the patient's body
- A61M60/122—Implantable pumps or pumping devices, i.e. the blood being pumped inside the patient's body
- A61M60/126—Implantable pumps or pumping devices, i.e. the blood being pumped inside the patient's body implantable via, into, inside, in line, branching on, or around a blood vessel
- A61M60/13—Implantable pumps or pumping devices, i.e. the blood being pumped inside the patient's body implantable via, into, inside, in line, branching on, or around a blood vessel by means of a catheter allowing explantation, e.g. catheter pumps temporarily introduced via the vascular system
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61B—DIAGNOSIS; SURGERY; IDENTIFICATION
- A61B5/00—Measuring for diagnostic purposes; Identification of persons
- A61B5/02—Detecting, measuring or recording for evaluating the cardiovascular system, e.g. pulse, heart rate, blood pressure or blood flow
- A61B5/021—Measuring pressure in heart or blood vessels
- A61B5/0215—Measuring pressure in heart or blood vessels by means inserted into the body
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61B—DIAGNOSIS; SURGERY; IDENTIFICATION
- A61B5/00—Measuring for diagnostic purposes; Identification of persons
- A61B5/02—Detecting, measuring or recording for evaluating the cardiovascular system, e.g. pulse, heart rate, blood pressure or blood flow
- A61B5/026—Measuring blood flow
- A61B5/0295—Measuring blood flow using plethysmography, i.e. measuring the variations in the volume of a body part as modified by the circulation of blood therethrough, e.g. impedance plethysmography
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61B—DIAGNOSIS; SURGERY; IDENTIFICATION
- A61B5/00—Measuring for diagnostic purposes; Identification of persons
- A61B5/48—Other medical applications
- A61B5/4836—Diagnosis combined with treatment in closed-loop systems or methods
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61M—DEVICES FOR INTRODUCING MEDIA INTO, OR ONTO, THE BODY; DEVICES FOR TRANSDUCING BODY MEDIA OR FOR TAKING MEDIA FROM THE BODY; DEVICES FOR PRODUCING OR ENDING SLEEP OR STUPOR
- A61M60/00—Blood pumps; Devices for mechanical circulatory actuation; Balloon pumps for circulatory assistance
- A61M60/20—Type thereof
- A61M60/205—Non-positive displacement blood pumps
- A61M60/216—Non-positive displacement blood pumps including a rotating member acting on the blood, e.g. impeller
- A61M60/237—Non-positive displacement blood pumps including a rotating member acting on the blood, e.g. impeller the blood flow through the rotating member having mainly axial components, e.g. axial flow pumps
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61M—DEVICES FOR INTRODUCING MEDIA INTO, OR ONTO, THE BODY; DEVICES FOR TRANSDUCING BODY MEDIA OR FOR TAKING MEDIA FROM THE BODY; DEVICES FOR PRODUCING OR ENDING SLEEP OR STUPOR
- A61M60/00—Blood pumps; Devices for mechanical circulatory actuation; Balloon pumps for circulatory assistance
- A61M60/50—Details relating to control
- A61M60/508—Electronic control means, e.g. for feedback regulation
- A61M60/515—Regulation using real-time patient data
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61M—DEVICES FOR INTRODUCING MEDIA INTO, OR ONTO, THE BODY; DEVICES FOR TRANSDUCING BODY MEDIA OR FOR TAKING MEDIA FROM THE BODY; DEVICES FOR PRODUCING OR ENDING SLEEP OR STUPOR
- A61M60/00—Blood pumps; Devices for mechanical circulatory actuation; Balloon pumps for circulatory assistance
- A61M60/50—Details relating to control
- A61M60/508—Electronic control means, e.g. for feedback regulation
- A61M60/515—Regulation using real-time patient data
- A61M60/523—Regulation using real-time patient data using blood flow data, e.g. from blood flow transducers
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61M—DEVICES FOR INTRODUCING MEDIA INTO, OR ONTO, THE BODY; DEVICES FOR TRANSDUCING BODY MEDIA OR FOR TAKING MEDIA FROM THE BODY; DEVICES FOR PRODUCING OR ENDING SLEEP OR STUPOR
- A61M60/00—Blood pumps; Devices for mechanical circulatory actuation; Balloon pumps for circulatory assistance
- A61M60/80—Constructional details other than related to driving
- A61M60/802—Constructional details other than related to driving of non-positive displacement blood pumps
- A61M60/81—Pump housings
- A61M60/816—Sensors arranged on or in the housing, e.g. ultrasonic flow sensors
Definitions
- the present invention is related to measuring native volume of a heart of a patient having a cardiac assist device. Volume per time is flow, and typically defined as cardiac output (CO).
- CO cardiac output
- Native Flow is not a standard term, but describes the difference between diastolic and systolic volumes as contributed by the contraction of the myocardium itself.
- the Native Cardiac Output is Native Volume times heart rate.
- Native CO is equal to total CO
- native volume is equal to stroke volume.
- total CO native CO + pump CO.
- references to the "present invention " or” invention” relate to exemplary embodiments and not necessarily to every embodiment encompassed by the appended claims.
- the present invention is related to monitoring a heart of a patient having a cardiac assist device with admittance or impedance
- Cardiomyopathy is a disease of the heart muscle that can lead to cardiogenic shock, a life-threatening condition in which the heart is unable to pump enough blood to support the body's vital organs. In the U.S. alone, cardiomyopathy causes 1.8 million hospitalizations per year and carries a 30% one-year mortality rate after hospital admission (3).
- Cardiomyopathy has annual Medicare costs of approximately $20 billion (4) and is the number one cause of hospitalizations and length of stay in patients greater than 65 years old (5).
- the incidence of cardiogenic shock is increasing, with a >2x increase in the number of cardiomyopathy discharges complicated by cardiogenic shock, from 2004-2014 (6).
- Cardiogenic shock occurs because the weakened heart suddenly cannot pump enough blood to the rest of the body to sustain it.
- a short-term mechanical circulatory support (MCS) device can be placed in the heart to help maintain high forward blood flow while resting (mechanically unloading) the failing heart.
- MCS mechanical circulatory support
- MCS devices are pumps that continuously draw blood from the left ventricle through an inlet port and expel the blood into the ascending aorta
- the MCS can be inserted via a standard catheterization procedure through the femoral artery, into the ascending aorta, across the aortic valve, and into the left ventricle ( Figure 1). Once proper placement has been confirmed, the speed of the pump is set depending upon patient condition.
- MCS devices have the potential to improve mortality across at least three large groups of patients (7): 1. high risk percutaneous coronary intervention (PCI), 2. acute myocardial infarction (MI) with or without cardiogenic shock, and 3. acute decompensated heart failure.
- PCI percutaneous coronary intervention
- MI acute myocardial infarction
- the present invention pertains to an apparatus for a heart of a patient.
- the apparatus comprises a cardiac assist device adapted to be implanted into the patient to assist the heart with pumping blood.
- the apparatus comprises one or more sensors adapted to be implanted into the patient.
- the sensor(s) in communication with the cardiac assist device and the heart which measures native volume of the heart.
- the apparatus may be used with a patient during recovery or in high risk, such as percutaneous coronary, intervention.
- the present invention pertains to an apparatus for a heart of a patient.
- the apparatus comprises a cardiac assist device adapted to be implanted into the patient to assist the heart with pumping blood.
- the apparatus comprises one or more sensors adapted to be implanted into the patient.
- the sensor(s) in communication with the cardiac assist device and the heart which monitors the heart based on admittance while the cardiac assist device is in operation.
- the present invention pertains to an apparatus for a heart of a patient.
- the apparatus comprises a cardiac assist device adapted to be implanted into the patient to assist the heart with pumping blood.
- the apparatus comprises one or more sensors adapted to be implanted into the patient.
- the sensor(s) in communication with the cardiac assist device and the heart which monitors the heart based on impedance while the cardiac assist device is in operation.
- the present invention pertains to a method for treating a heart of a patient.
- the method comprises the steps of pumping blood of the patient with a cardiac assist device implanted into the patient. There is the step of measuring native volume of the heart with one or more sensors implanted into the patient, the sensor(s) in communication with the cardiac assist device and the heart.
- the present invention pertains to apparatus for a heart of a patient.
- the apparatus comprises a cardiac assist device adapted to be implanted into the patient to assist the heart with pumping blood.
- the apparatus comprises one or more sensors adapted to be implanted into the patient.
- the sensor(s) producing a source signal.
- the sensor(s) in communication with the cardiac assist device and the heart which monitors the heart with the source signal.
- the sensor dynamically shifting the source signal to avoid noise from the pump or other sources.
- the present invention pertains to a method for assisting a heart of a patient.
- the method comprises the steps of producing a source signal by one or more sensors implanted in the patient.
- the sensor(s) in communication with a cardiac assist device implanted into the patient to assist the heart with pumping blood and the heart.
- Figure 1 shows the claimed invention in conjunction with the heart.
- Figure 2 is a block diagram of the claimed invention.
- Figure 3 shows the claimed invention.
- Figure 4 shows the cardiac assist device and electrodes in conjunction with the heart.
- Figure 5 shows a graph of frequency versus signal strength in regard to a simulated admittance measurement in a water bath with an Impella CP at minimum speed of 23,000 RPM.
- Figure 6a shows an unmodified Impella device.
- Figure 6b shows a modified silver tape Impella device with electrodes.
- Figure 6c shows a modified stainless steel Impella device with four electrodes.
- Figure 7 shows a Fourier analysis of motor electromagnetic noise versus admittance signal for all 9 motor speeds.
- Figure 8 shows in vitro testing with motor at various levels showing low noise
- Figure 9 shows the claimed invention.
- Figure 10 shows the claimed invention.
- Figure 11 shows the claimed invention with alternative placement of the electrodes.
- Figure 12 shows a flexible printed circuit board wrapped around the catheter.
- Figure 13 shows the embedded system is interfaced to the main computer with a cable.
- an apparatus 10 for a heart 12 of a patient comprises a cardiac assist device 14 adapted to be implanted into the patient to assist the heart 12 with pumping blood.
- the apparatus 10 comprises one or more sensors 16 adapted to be implanted into the patient.
- the sensor(s) 16 in communication with the cardiac assist device 14 and the heart 12 which measures native volume and pressure of the heart 12.
- the apparatus 10 may be used with a patient during recovery or in high-risk percutaneous coronary intervention.
- the sensor 16 may include electrodes 18 directly attached to the cardiac assist device 14 that produce signals which are used to measure the native volume and pressure of the heart 12.
- the cardiac assist device 14 may have a shaft 20 that is adapted to be positioned in the heart 12, and the electrodes 18 are in contact with the shaft 20 that is positioned in the heart 12 chamber.
- the electrodes 18 should be in the chamber of interest for the sensor 16 to work properly. If the electrodes 18 are not in the chamber of interest, the sensor 16 most likely will not work.
- the sensor 16 may include a computer 22 for data acquisition and analysis of the signals.
- the computer 22 is in communication with the electrodes 18.
- the computer 22 may provide electrical currents to the electrodes 18 and may measure corresponding voltages to make admittance-based measurements and analyze the admittance-based measurements to make real-time volume and pressure measurements of the heart 12.
- the sensor 16 may include wiring 24 that is in direct contact with the electrodes 18 and which extends to the computer 22 over which the electrical currents pass creating the corresponding voltages.
- There may be a pressure sensor 51 adapted to be implanted into the patient.
- the pressure sensor 51 in communication with the cardiac assist device 14 and the heart and the computer 22 which monitors the left ventricular pressure while the cardiac assist device 14 is in operation.
- the pressure sensor with the computer may plot native pressure volume loops while the cardiac assist device is in operation, for instance, to measure the work done by the heart and its efficiency. A considerable amount of information on cardiac performance can be determined from the pressure vs, volume plot.
- the cardiac assist device 14 may include a motor 26 and an impeller 28 disposed in the shaft 20 which is driven by the motor 26 to assist the heart 12 with pumping blood.
- the cardiac assist device 14 may have a marker 30 to guide proper placement of the cardiac assist device 14 in the heart 12.
- the electrodes 18 may be disposed on the shaft 20 of the device.
- the apparatus 10 may include a catheter having a shaft 20 disposed alongside the shaft 20 of the device and the electrodes 18 may be disposed alongside the shaft 20.
- the cardiac assist device 14 may be a temporary mechanical circulatory support (MCS) device which is a catheter-mounted blood pump that draws blood from a left ventricle of the heart 12 through an inlet port 34 of the MCS 32 and expels blood into an ascending aorta 36 of the heart 12, thereby reducing some of the mechanical load on the heart 12 and promoting recovery.
- the pump may draw the blood intermittently in a pulsatile manner that mimics the natural pulsatile movement of the heart 12 or the pump may draw the blood from the left ventricle continuously. If the pump draws the blood intermittently, the timing of the intermittent action and the pulsing of the pump blood may be coordinated with the pumping motion of the heart 12.
- the native cardiac output (CO) and pressure measurements by the sensor 16 may provide a feedback signal to the MCS 32 to modulate flow/volume by the MCS 32 during treatment,
- a permanent implant battery-powered MCS device (often used for bridge-to-transplant rather than bridge-to-recovery), would benefit from a feedback signal to control pump speed in different scenarios.
- Demand feedback is typically unimportant in temporary MCS scenarios, because they are typically indicated for rescue, or high-risk situations (like high-risk PCI).
- the pump flow is typically set for as high as the patient will tolerate, because larger total flow for short periods is protective, while total flow that is slightly low can be extremely detrimental due to concomitant conditions.
- the patient will exhibit a larger range of possible flow demand, for example, when exercising, for which a higher-than-normal pump flow is necessary.
- demand pacers https://www.biotronik.com/en-us/products/services/cls measure and respond to this demand by using end systolic volume (the minimum volume sensed) as a surrogate for contractility, which is a marker for blood flow demand.
- end systolic volume the minimum volume sensed
- This technique of demand measurement has the advantage of not being tied directly to activity, which could easily be measured using accelerometers.
- One example of non-activity related demand is changing pump flow to meet the demands on the body created by intense emotion (anger typically requires higher blood flows, and also increases contractility on a beat-to-beat basis, for example).
- Demand pacers can increase cardiac output by increasing heart rate, but a long term MCS device could directly modulate higher blood flow (stroke volume) instead.
- the present invention pertains to an apparatus 10 for a heart 12 of a patient.
- the apparatus 10 comprises a cardiac assist device 14 adapted to be implanted into the patient to assist the heart 12 with pumping blood.
- the apparatus 10 comprises one or more sensors 16 adapted to be implanted into the patient.
- the sensor(s) 16 in communication with the cardiac assist device 14 and the heart 12 which monitors the heart 12 based on admittance while the cardiac assist device 14 is in operation.
- the present invention pertains to an apparatus 10 for a heart 12 of a patient.
- the apparatus 10 comprises a cardiac assist device 14 adapted to be implanted into the patient to assist the heart 12 with pumping blood.
- the apparatus 10 comprises one or more sensors 16 adapted to be implanted into the patient.
- the sensor(s) 16 in communication with the cardiac assist device 14 and the heart 12 which monitors the heart 12 based on impedance while the cardiac assist device 14 is in operation.
- the present invention pertains to a method for treating a heart 12 of a patient.
- the method comprises the steps of pumping blood of the patient with a cardiac assist device 14 implanted into the patient. There is the step of measuring native volume of the heart with one or more sensors 16 implanted into the patient. The sensor(s) 16 in communication with the cardiac assist device 14 and the heart 12. The method can also, or alternatively, use the sensor 16 and the cardiac assist device in the various embodiments described herein.
- a temporary MCS 32 device is a catheter- mounted blood pump, typically placed for less than 7 days in patients with cardiomyopathy and cardiogenic shock, that continuously draws blood from the left ventricle through an inlet port 34 of the MCS 32 and expels the blood into the ascending aorta 36, thereby reducing some of the mechanical load on the heart 12 and promoting recovery (hemodynamic support).
- An MCS 32 is unlike other more permanently placed pumping devices, because it is placed in the patient using a standard catheterization procedure (without piercing the heart 12). This technique is preferable for use as a bridge-to-recovery, because it can be easily removed.
- CPO Cardiac Power Output
- the total CO to the body comes from two components: total CO - "native CO” + “device CO”.
- “Native CO” is the amount of blood ejected from the ventricle by the recovering heart 12
- “device CO” is the amount of blood pumped by the MCS 32 device.
- the native CO from the heart 12 naturally rises, as it recovers slowly from decreased load, signaling improvement. Removal of the MCS 32 device requires “weaning" the patient from pump support by reducing pump speeds prior to removal.
- Optimal MCS 32 use would require reducing pump speed over an extended time as the native CO reaches near-normal levels, but in practice native CO is never measured during recovery, because it is clinically impractical to continuously measure CO using echocardiograms during the entire recovery period (could be days).
- an MCS 32 device would continuously measure real-time native CO, and then automatically adjust the pump speed to modify the device CO, while maintaining an overall total CO. This method would naturally wean the patient as he/she recovers as the native CO rises. The physician could monitor the native CO measurement and remove the MCS 32 device when appropriate.
- BSM proved that accurate measurements of real-time native CO are possible using an admittance-based Impella prototype ("Impella-CO") while operating within electromechanical pump noise. This was designed and demonstrated both on the bench, and in an animal model showing excellent agreement with multiple CO standards.
- Admittance measurement is blocked by electrical insulators like the pump body (made of plastics).
- Native CO of the left ventricle can only be determined by imaging methods (directly visualizing the size of the pumping chamber, the LV), and Admittance.
- the outlet port 38 of the device is in the ascending aorta 36, outside of and downstream from the chamber of the heart 12. In this way blood from the outlet port 38 mixes with the native output of blood from the heart 12, downstream of where blood pumped solely by the heart 12 leaves the heart 12, so only the Native CO is measured by admittance.
- the blood inside the device is not measured because the pump body is made of plastic and shields the blood in the pump from being measured.
- the pump typically does not directly measure the amount of flow going through it, and can only estimate its own flow (not usually measure it directly) by using the power delivered to/consumed by the pump as a surrogate for how hard the pump is working to pump blood (assuming the inlet and outlet remain unblocked).
- Cardiomyopathy is a disease of the heart 12 muscle that can lead to cardiogenic shock, a life-threatening condition in which the heart 12 is unable to pump enough blood to support the body's vital organs.
- cardiomyopathy causes 1.8 million hospitalizations per year and carries a 30% one-year mortality rate after hospital admission (3).
- Cardiomyopathy has annual Medicare costs of approximately $20 billion (4) and is the number one cause of hospitalizations and length of stay in patients greater than 65 years old (5).
- the incidence of cardiogenic shock is increasing, with a >2x increase in the number of cardiomyopathy discharges complicated by cardiogenic shock, from 2004-2014 (6). Cardiogenic shock occurs because the weakened heart 12 suddenly cannot pump enough blood to the rest of the body to sustain it.
- a short-term mechanical circulatory support (MCS) device can be placed in the heart 12 to help maintain high forward blood flow while resting (mechanically unloading) the failing heart 12.
- MCS 32 devices are pumps that continuously draw blood from the left ventricle through an inlet port 34 and expel the blood into the ascending aorta 36.
- the MCS 32 can be inserted via a standard catheterization procedure through the femoral artery, into the ascending aorta 36, across the aortic valve, and into the left ventricle ( Figure 1). Once proper placement has been confirmed, the speed of the pump is set depending upon patient condition.
- MCS 32 devices to maintain peripheral perfusion while mechanically unloading the heart 12 has the potential to improve mortality across at least three large groups of patients (7): 1. high risk percutaneous coronary intervention (PCI), 2. acute myocardial infarction (MI) with or without cardiogenic shock, and 3. acute decompensated heart failure.
- PCI percutaneous coronary intervention
- MI acute myocardial infarction
- MCS 32 devices are implanted for up to 6 days as a bridge-to-recovery or bridge-to-decision for a more long-term ventricular assist implant. In these patients, indwelling time is longer, and bridging to recovery is not guaranteed,
- Figure 6 shows a black band located between the wiring 24 exit and the most proximal electrode that is radiopaque and used clinically to align with the aortic valve to guide proper placement. This design ensures that the surgeon will place all four electrodes 18 in the left ventricular heart 12 chamber.
- Motor 26 noise quantification Fourier frequency analysis of the motor 26 noise signal during pump operation was used to determine the optimal frequencies to use for the cardiac volume measurements. Volume calculations using admittance-based techniques allows for real-time measurement of both blood and muscle contributions by taking advantage of the differing electrical properties in the frequency range of interest. Within the frequency band of 1kHz - 100kHz blood is purely resistive, but myocardium is both resistive and capacitive. Admittance measurements are performed in the complex Fourier plane, which allows measurement and separation of both the capacitive and resistive properties of the volume, allowing a pure measurement of blood volume to be extracted from the total signal.
- the measurement can be made at any frequency in the span, it is possible to pick a frequency that is uncorrupted by a known noise source, like that of the Abiomed Impella motor.
- a known noise source like that of the Abiomed Impella motor.
- the excitation current signal used to make the Cardiac Output measurement (Figure 7, Signal) is several orders of magnitude larger than the noise floor (Figure 7, Noise floor Target).
- the pump noise can be clearly seen at 50khz, and at 100kHz at all 9 pump speeds, and does not overlap with the measurement. It is clear from task 1 that any frequency at least 5kHz away from DC, and not an integer multiple of 50kHz could be utilized for the admittance-based volume measurement.
- Task 2 Modify the operating frequency and spatial electrode configuration of an admittance unit for maximum signal to noise ratio using information from task 1.
- Admittance Unit Design An instrument to measure admittance derived blood volume was designed to generate a constant amplitude current at an operating frequency of 20kHz injected into the outer two electrodes 18 prototyped onto the Impella pump, and used to measure the resulting voltage from the inner two electrodes 18 as describe in task 1. Because the current is constant, the blood volume is proportional to the measured voltage from the inner two electrodes 18.
- SNR Signal to Noise Ratio
- DFT discrete Fourier transform
- FFT Fast-Fourier Transform
- the noise (T) can be calculated from all of the other bins of frequency in the FFT. In this way, an SNRa which varies from 0 to 1000 (1000 being a "perfect" no noise sine wave, and 0 being a lack of any discemable signal) can be calculated. Values above 900 are considered extremely low noise, and indicate a noise-free measurement in our in vivo measurements. The governing equations are shown below:
- Task 3 Measure native CO using admittance vs. standards in an animal model while simultaneously operating an MCS 32 device (Impella heart pump).
- Goals The goal for this preclinical evaluation was to measure CO using the admittance instrument connected to a prototype Abiomed Impella Mechanical Circulatory Support device and compare those measurements to standard clinical CO measurement methods. There is currently no universally accepted "gold standard” for CO measurement, and while every method has its weaknesses, our goal was to show good agreement with at least two of the current standards. Good agreement was defined as within-subject coefficient of variation (wCV) ⁇ 20%, which is the agreement level that two expert echo readers show when reading the same set of echoes. 0% would indicate perfect agreement. wCV is mathematically defined as the standard deviation divided by the mean.
- CO using 3) echocardiography with the aortic velocity time integral method, or aortic VTI at the level of the aorta are also measured.
- Admittance vs. Conductance There are three novel concepts that must be utilized to solve the problems preventing an Admittance measurement in situ with a generic noise source like a pump. 1) Traditional conductance catheters (including "dual frequency” devices) cannot determine accurate volumes because they all subtract a single value for parallel conductance. Using admittance-based technology solves these issues using a measurement of the capacitive nature of the myocardium, but both measurements are sensitive to noise from the motor 26, so frequency of operation must be redesigned.
- conductance measurements of volume are made by considering the chamber of interest and creating a custom catheter (a conductance catheter) that spans the area to make the most linear measurement of impedance possible.
- a measurement of admittance can be adapted for use on an arbitrary catheter, which is advantageous because many instruments are implanted either temporarily (like a percutaneous heart 12 pump or the cardiac assist device 14, see figure 1) or more permanently (like a cardiac implantable electronic device). These instruments often already have electrodes 18, microcontrollers, and signal processing that work in concert to achieve a goal like pacing the heart 12, or supporting a weak heart 12 by increasing forward flow.
- Electrode Material - Electrodes 18 should be made of a biocompatible material, that is low resistance, like platinum or gold. The reasoning here is that the electrode itself should contribute as little as possible to the final measurement, making calibration less complicated. [0067] Electrode Number - It is widely known that the electrode-electrolyte interface impedance that arises from putting a metal electrode in the presence of an electrolyte can change the measured total impedance. To protect against this, typically four electrodes (tetrapolar) 18 are necessary at a minimum, to reduce polarization effects.
- Electrodes 1 and 4 provide a function of current generation by injecting current, and 2 and 3 are used to measure the voltage arising from the current flowing through the electrolyte.
- Tetrapolar electrodes provide an advantage, because the design of a good constant current source does not change with electrode resistance change, ensuring that the admittance (current over voltage) does not change with fouling of electrodes I or 4.
- Fouling is a change in resistivity that occurs due to a local change in the resistance of the electrode. Typically, this is caused by scar tissue formation, oxidation, or other change in the electrode/electrolyte impedance on the voltage electrode, either by changing the effective geometry, or the affecting the resistivity. This tetrapolar technique is used often in resistance/impedance measurements in non-medical fields.
- Electrode Spacing If the outer two electrodes (1 and 4) are current generating, and the inner two electrodes (2 and 3) are voltage measuring, a naive approach would be to equally space them. However, the sensitivity of a constant-current volume measurement is largest when the location of the current and voltage electrodes 18 is close together (that is, 1 and 2 are close together, 3 and 4 are close together), and far apart from the other pair (2 and 3 are far apart).
- Ideal Electrode Geometry The ideal physically realizable electrode for an admittance measurement would be a sphere, because it would allow for current output and voltage input from all directions simultaneously. However, to be disposed on a shaft 20 like a catheter, the closest that can be achieved is a ring. Typically, single electrodes are ring shaped, and about as long as their diameter. Using a ring shape makes the measurement independent of the rotational angle of the catheter. This allows the connection to the ring to be made within the catheter body (which is usually non-conducting) and keep the wiring 24 harness from affecting the impedance measurement. Additionally, it is not generally desirable to minimize the area of the electrode, because the impedance of the electrode itself should remain low to avoid affecting the measurement.
- the ring size should be thin (the length L should be shorter than the diameter, d).
- the cross-sectional area ⁇ *d*L should be large enough that the resistance when placed in normal saline is ⁇ 10 Ohms.
- the specific dimensions relate to the material properties of the electrode, and the geometry used (thin electrodes with L « d will have high resistance. Large d electrodes require a large catheter body, but will have a lower resistance).
- the diameter should be the same as the catheter tubing diameter.
- the electrode diameter has a range of 2-Smm and the electrode width to be 1-3mm.
- the catheter body is usually made of a non-conducting material, and if there is no necessary lumen, the wire routing can be made internal to the catheter, ensuring that the electrode surface area is not affected by the wire insulation.
- the wiring 24 should be as thin as possible, bonded to the electrode in a way that uses minimal external surface area (so as not to affect the measurement).
- the wires themselves should be placed farther apart to minimize their effects on capacitance, and should not be coiled so as to minimize inductance effects.
- Another potential advantage of having thin wires is that often times catheters only have lumens because they need to remain patent for the flow of a liquid. Thin wires can more easily avoid impeding this flow of liquid either physically, or avoid being used as a scaffold for clotting. Additionally, thinner wires are more easily capable of being built into the lumen walls to completely avoid these effects.
- the wires leading to each of the four electrodes 18 create a capacitance between them.
- Wire attachment is accomplished either by directly soldering the wire to the electrodes 18 themselves (typically from the inside of the lumen through a bored hole) or by using conductive epoxy solder paste through the same hole. It is possible to attach electrodes 18 to wires on the outside, but sensitivity to changes in the area of the solder joint may be changed by the electrical properties of the wire and attachment paste/solder. Electrical properties of the wire and attachment paste/solder are different depending on geometry, material, and material interface type, and these can all be either modeled using finite elements, or empirically measured in vitro using prepared saline that has the conductivity of blood.
- the wires used to connect to the electrodes 18 will be 40 to 48 AWG to minimize any increase to the overall outer diameter of the pump.
- the wires should be insulated. Embedding the wires in the walls fixes their position with respect to one another, providing a constant resistive contribution. This will help with two factors: A) ease of calibration by keeping the effects of the wires constant, and B) it would allow keeping the outer diameter of the pump itself the same (which is an advantage surgically, because it means you do not need to increase the size of the delivery sheath or hole in the vessel).
- Having a higher N value or divider M increases the fidelity and stability of the current outputs at the cost of max SinDAC frequency, while having a lower clock speed directly reduces the maximum SinDAC frequency.
- SNR is to collect and process a buffer of data with a longer time interval. For example, if the buffer length is 2ms, then volume versus time can be measured at 500 Hz. However, if the buffer length is increased to 20ms, volume versus time is measured at 50 Hz, but SNR is greatly improved.
- FIG. 1 shows a pressure sensor 51 within the left ventricle.
- the challenge is not necessarily the size of the transducer, but the cost of routing three additional wires along the cardiac assist device 14.
- One solution to the device 14 diameter is to embed an embedded computer 53 along with the pressure sensor 51 distal to the inlet port 34 of the cardiac assist device 14.
- Figure 12 shows a flexible printed circuit board 55 wrapped around the shaft 20.
- the printed circuit board 55 has the embedded compute 53 and the pressure sensor 51.
- FIG. 13 shows the embedded computer 53 and pressure sensor 51 is interfaced to the main computer 22 with a cable 57 having 3 or more wires.
- 3 wires are necessary to implement both admittance-derived volume and left ventricular pressure.
- One wire is voltage supply, one wire is ground, and the third wire is serial output.
- the serial output encodes the raw measurements, which will then be processed in the usual way on the main computer 22.
- the admittance circuitry (sinDAC, and ADC) is included on the flexible PCB wrapped around the tip of the pump.
- MCS 32 devices are implanted for up to 6 days as a bridge-to-recovery or bridge-to-decision for a more long-term ventricular assist implant, In these patients, indwelling time is longer, and bridging to recovery is not guaranteed.
- Goals of hemodynamic support The overarching goal of hemodynamic support is to maximize function by increasing both Cardiac Output (CO, the MCS 32 control point), and Mean Arterial Pressure (MAP, optimized by medication).
- CO Cardiac Output
- MAP Mean Arterial Pressure
- the Impella device While the measurement of pressure is currently integrated into many MCS 32 devices (e g., the Impella device has an integrated pressure sensor 16, used for device placement), the only control point for an MCS 32 device is the motor 26 speed, which increases CO with increasing motor 26 speed (flow). In practice, this translates to a clinical support goal of setting the MCS 32 device flow as high as possible without the causing suction due to high pump speeds (where the motor 26 is spinning, but no blood is moving through the MCS 32).
- the positive impact of an MCS 32 device is highly dependent on the flow rate of the pump, which can be adjusted in the majority of pumps, but the initial flow rate is rarely changed during recovery.
- Total Cardiac Output (total CO), which is the summation of the pump CO (the amount of blood in Liters ejected by the pump per min), and the native CO (The amount of blood in Liters ejected by the heart per min).
- Total CO pump CO + native CO.
- Native CO is dependent on patient health, while pump CO is controlled by the operator of the MCS 32 device, and estimated using the current draw on the motor 26, or measured RPM, or in some cases, by a flow measurement integral to the pump that is either EM, acoustic, or pressure differential based.
- MCS 32 device implantation is not without risk, and longer indwelling times can lead to infectious complications in the form of local infections, bacteremia, and sepsis. Patients who suffer from these complications face a substantially longer hospital stay. Removal of the MCS 32 device requires "weaning" the patient from pump support by slowly (over hours) reducing pump speeds and closely monitoring hemodynamics to ensure that the heart 12 does not decompensate from lack of support. The decision to begin weaning the patient from the MCS 32 device relies heavily on a subjective clinical assessment of the patient (instead of an objective measurement of CPO, impossible without native CO).
- CPO is estimated directly using pressure measurement, and transthoracic echocardiography to look at native CO (Ejection Fraction) during the hours long weaning process, but this requires the resources of a surgeon, a heart failure cardiologist, and an expert cardiologist experienced in echocardiographic parameters. This is a huge amount of resources if the weaning process takes a long time, or if recovery is not actually complete.
- Native CO Ejection Fraction
- One potential clinical use of measuring Native CO using the Abiomed Impella device is that it can provide a real-time assessment of patient condition.
- Clinical Use 3 If pressure is available, then the device is capable of measuring native pressure volume loops. Pressure-volume loops provide valuable information about the hemodynamic status of the heart.
- Embodiment 1 Used in Preliminary Studies
- Electrodes 18 used The electrodes 18 used in this embodiment were purchased in two sizes, to accommodate the two different catheter body sizes, from Johnson Matthey, UK. Two were used as electrodes 1 and 2 (with a smaller diameter), and two were used as electrodes 3 and 4 (with a larger diameter). The final embodiment is the bottom electrode configuration.
- Electrode Spacing was chosen to maximize the span of the chamber of interest (the left ventricle) while ensuring that all four electrodes 18 would stay below the valve (and therefore in the chamber of interest). This was done by making sure that the most proximal electrode (electrode 4) is close to the radiopaque marker 30 that surgeons use to place the pump inlet inside the LV, and the pump outlet outside the LV (in the aorta). By co-locating electrodes 3 and 4 with the radiopaque marker 30, it is ensured that the electrodes 18 will be within theLV if the pump is functioning correctly.
- Electrode Wiring 24 Wiring 24 considerations for the preliminary studies embodiment required us to keep the wiring 24 on the outside of the lumen for the distal electrodes 1 and 2. This was done to keep the lumen free and clear for use by a guidewire to implant the catheter.
- the wiring 24 on the proximal electrodes 3 and 4 is run internal to the catheter body to avoid changing their large surface area, and the wiring 24 on the distal electrodes 1 and 2 was run outside of the catheter with minimal contact area (see Figures 3, 6, 9 and 10).
- the key consideration for the diameter (or gauge) of the wire is that they should be as thin as possible. If wiring 24 is run internal to the lumen between the pump inlet and outlet, the requirement to be thin is to reduce impediment of blood flow or required guidewires for implant. If wiring 24 is run external to the pump, then the wiring 24 is required to be thin to reduce the size of the sheath necessary to implant (allowing for an easier surgical technique).
- the wiring 24 runs internal to the plastic body (but not in the lumen space). This will be similar in function to the way that nitinol is embedded in the catheter body itself for the purpose of making the Impella catheter stiffer. A tradeoff in volume sensitivity to allow the electrodes 18 to be placed closer together will also be exploited,
- Motor 26 noise quantification Fourier frequency analysis of the motor 26 noise signal during pump operation was used to determine the optimal frequencies to use for the cardiac volume measurements. It was determined that the pump noise was at 50khz, and at 100kHz at all 9 pump speeds for an Abiomed Impella device (Danvers, MA), and did not overlap with the measurement. It was found from Figure 7 that any frequency at least 5kHz away from DC, and not an integer multiple of 50kHz could be utilized for the admittance- based volume measurement. 20kHz was chosen. In a fictitious example where 30kHz was where motor 26 noise was detected, any frequency from 10kHz to 25kHz, or from 35kHz to 100kHz, for example, can be chosen.
- Figure 7 is a Fourier analysis of motor 26 electromagnetic noise vs. admittance signal for all 9 motor 26 speeds (P1-P9). Note that the signal is 40dB higher than the surrounding noise floor (60dB), meeting our success.
- Motor 26 noise Quantification. Signal is at 20kHz, note peaks at 50 and 100kHz representing motor 26 noise. Each color is a different pump speed,
Landscapes
- Health & Medical Sciences (AREA)
- Engineering & Computer Science (AREA)
- Life Sciences & Earth Sciences (AREA)
- Heart & Thoracic Surgery (AREA)
- Animal Behavior & Ethology (AREA)
- Veterinary Medicine (AREA)
- Biomedical Technology (AREA)
- Cardiology (AREA)
- Public Health (AREA)
- General Health & Medical Sciences (AREA)
- Hematology (AREA)
- Anesthesiology (AREA)
- Mechanical Engineering (AREA)
- Medical Informatics (AREA)
- Molecular Biology (AREA)
- Surgery (AREA)
- Physics & Mathematics (AREA)
- Pathology (AREA)
- Biophysics (AREA)
- Vascular Medicine (AREA)
- Physiology (AREA)
- External Artificial Organs (AREA)
Abstract
Description
Claims
Applications Claiming Priority (4)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US17/238,181 US11911602B2 (en) | 2021-04-22 | 2021-04-22 | Method and apparatus for assisting a heart |
| US17/238,167 US11918799B2 (en) | 2021-04-22 | 2021-04-22 | Method and apparatus for assisting a heart |
| US17/238,191 US11931563B2 (en) | 2021-04-22 | 2021-04-22 | Method and apparatus for assisting a heart |
| PCT/US2022/025374 WO2022225950A1 (en) | 2021-04-22 | 2022-04-19 | Method and apparatus for assisting a heart |
Publications (2)
| Publication Number | Publication Date |
|---|---|
| EP4326385A1 true EP4326385A1 (en) | 2024-02-28 |
| EP4326385A4 EP4326385A4 (en) | 2025-05-28 |
Family
ID=83723311
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP22792326.5A Pending EP4326385A4 (en) | 2021-04-22 | 2022-04-19 | METHOD AND APPARATUS FOR ASSISTING A HEART |
Country Status (2)
| Country | Link |
|---|---|
| EP (1) | EP4326385A4 (en) |
| WO (1) | WO2022225950A1 (en) |
Family Cites Families (7)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| EP1889634A1 (en) * | 2006-08-18 | 2008-02-20 | NewCorTec S.p.A. | A ventricular assist device and related computer program product |
| ES2449221T3 (en) * | 2008-06-23 | 2014-03-18 | Cardiobridge Gmbh | Catheter pump for circulatory support |
| WO2014085806A1 (en) * | 2012-11-30 | 2014-06-05 | The Penn State Research Foundation | Smart tip lvad inlet cannula |
| EP2796156A1 (en) * | 2013-04-24 | 2014-10-29 | ETH Zurich | Biomedical apparatus for pumping blood of a human or an animal patient through a secondary intra- or extracorporeal blood circuit |
| US11872361B2 (en) * | 2015-08-17 | 2024-01-16 | Tufts Medical Center, Inc. | Systems and methods for selectively occluding the superior vena cava for treating heart conditions |
| DE102018208913A1 (en) * | 2018-06-06 | 2019-12-12 | Kardion Gmbh | A method of operating an implanted ventricular assist device |
| US12318601B2 (en) * | 2020-10-07 | 2025-06-03 | Abiomed Europe Gmbh | Electrode assembly patch for conductance and admittance measurements |
-
2022
- 2022-04-19 EP EP22792326.5A patent/EP4326385A4/en active Pending
- 2022-04-19 WO PCT/US2022/025374 patent/WO2022225950A1/en not_active Ceased
Also Published As
| Publication number | Publication date |
|---|---|
| EP4326385A4 (en) | 2025-05-28 |
| WO2022225950A1 (en) | 2022-10-27 |
Similar Documents
| Publication | Publication Date | Title |
|---|---|---|
| US20240198082A1 (en) | Method and Apparatus for Assisting a Heart | |
| US20250262426A1 (en) | Method and Apparatus for Assisting a Heart | |
| US6473640B1 (en) | Implantable device and method for long-term detection and monitoring of congestive heart failure | |
| EP1565108B1 (en) | Impedance monitoring for detecting pulmonary edema and thoracic congestion | |
| CN100584270C (en) | Pathological assessment using convergent bioelectric lead fields for impedance measurements | |
| US8060196B2 (en) | Device for determining thoracic impedance | |
| US20240216672A1 (en) | Method and Apparatus for Assisting a Heart | |
| US20240198081A1 (en) | Method and Apparatus for Assisting a Heart | |
| US8632470B2 (en) | Assessment of pulmonary vascular resistance via pulmonary artery pressure | |
| US20120095355A1 (en) | Volume Sensing | |
| US8690787B2 (en) | Implantable coronary perfusion monitoring device | |
| KR20090057094A (en) | Methods and systems for non-invasive measurement of cardiac indicators | |
| BRPI1010773B1 (en) | ADAPTER FOR ENDOVASCULAR ELECTROCARDIOGRAPHY CROSS REFERENCE FOR RELATED ORDER | |
| US9247885B2 (en) | Heart monitor | |
| JP2008503277A (en) | Heart monitor system | |
| WO2001089377A2 (en) | Internal cardiac output monitor | |
| WO2023022923A1 (en) | Method and apparatus for assisting a heart | |
| EP4326385A1 (en) | Method and apparatus for assisting a heart | |
| Hettrick et al. | Human feasibility study of hemodynamic monitoring via continuous intrathoracic impedance monitoring | |
| Järverud | Studies of changes in volume in right ventricle with electrical bio impedance | |
| HK1119550B (en) | Pathology assessment with impedance measurements using convergent bioelectric lead fields |
Legal Events
| Date | Code | Title | Description |
|---|---|---|---|
| STAA | Information on the status of an ep patent application or granted ep patent |
Free format text: STATUS: THE INTERNATIONAL PUBLICATION HAS BEEN MADE |
|
| PUAI | Public reference made under article 153(3) epc to a published international application that has entered the european phase |
Free format text: ORIGINAL CODE: 0009012 |
|
| STAA | Information on the status of an ep patent application or granted ep patent |
Free format text: STATUS: REQUEST FOR EXAMINATION WAS MADE |
|
| 17P | Request for examination filed |
Effective date: 20231020 |
|
| AK | Designated contracting states |
Kind code of ref document: A1 Designated state(s): AL AT BE BG CH CY CZ DE DK EE ES FI FR GB GR HR HU IE IS IT LI LT LU LV MC MK MT NL NO PL PT RO RS SE SI SK SM TR |
|
| DAV | Request for validation of the european patent (deleted) | ||
| DAX | Request for extension of the european patent (deleted) | ||
| REG | Reference to a national code |
Ref country code: DE Ref legal event code: R079 Free format text: PREVIOUS MAIN CLASS: A61M0060178000 Ipc: A61M0060130000 |
|
| RIC1 | Information provided on ipc code assigned before grant |
Ipc: A61M 60/816 20210101ALI20250128BHEP Ipc: A61M 60/523 20210101ALI20250128BHEP Ipc: A61M 60/515 20210101ALI20250128BHEP Ipc: A61M 60/237 20210101ALI20250128BHEP Ipc: A61M 60/13 20210101AFI20250128BHEP |
|
| A4 | Supplementary search report drawn up and despatched |
Effective date: 20250428 |
|
| RIC1 | Information provided on ipc code assigned before grant |
Ipc: A61M 60/816 20210101ALI20250422BHEP Ipc: A61M 60/523 20210101ALI20250422BHEP Ipc: A61M 60/515 20210101ALI20250422BHEP Ipc: A61M 60/237 20210101ALI20250422BHEP Ipc: A61M 60/13 20210101AFI20250422BHEP |