WO2018213324A1 - Semi-automatic biopsy needle device and methods of use - Google Patents

Semi-automatic biopsy needle device and methods of use Download PDF

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Publication number
WO2018213324A1
WO2018213324A1 PCT/US2018/032789 US2018032789W WO2018213324A1 WO 2018213324 A1 WO2018213324 A1 WO 2018213324A1 US 2018032789 W US2018032789 W US 2018032789W WO 2018213324 A1 WO2018213324 A1 WO 2018213324A1
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WO
WIPO (PCT)
Prior art keywords
cannula
actuator
torque converter
biopsy needle
needle device
Prior art date
Application number
PCT/US2018/032789
Other languages
French (fr)
Inventor
Jeremy Snow
Original Assignee
Merit Medical Systems, 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 Merit Medical Systems, Inc. filed Critical Merit Medical Systems, Inc.
Priority to EP18801940.0A priority Critical patent/EP3624698A4/en
Publication of WO2018213324A1 publication Critical patent/WO2018213324A1/en

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Classifications

    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B10/00Other methods or instruments for diagnosis, e.g. instruments for taking a cell sample, for biopsy, for vaccination diagnosis; Sex determination; Ovulation-period determination; Throat striking implements
    • A61B10/02Instruments for taking cell samples or for biopsy
    • A61B10/0233Pointed or sharp biopsy instruments
    • A61B10/0266Pointed or sharp biopsy instruments means for severing sample
    • A61B10/0275Pointed or sharp biopsy instruments means for severing sample with sample notch, e.g. on the side of inner stylet
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B10/00Other methods or instruments for diagnosis, e.g. instruments for taking a cell sample, for biopsy, for vaccination diagnosis; Sex determination; Ovulation-period determination; Throat striking implements
    • A61B10/02Instruments for taking cell samples or for biopsy
    • A61B2010/0208Biopsy devices with actuators, e.g. with triggered spring mechanisms
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B90/00Instruments, implements or accessories specially adapted for surgery or diagnosis and not covered by any of the groups A61B1/00 - A61B50/00, e.g. for luxation treatment or for protecting wound edges
    • A61B90/03Automatic limiting or abutting means, e.g. for safety
    • A61B2090/031Automatic limiting or abutting means, e.g. for safety torque limiting

Definitions

  • the present disclosure relates generally to medical devices. More specifically, the present disclosure relates to biopsy needle assemblies configured for use with tissue biopsy devices, including needle assemblies configured to decrease, minimize, or eliminate axial translation of the needle assemblies at a tissue sample collection site.
  • FIG. 1 is a perspective view of a biopsy needle device.
  • FIG. 2 is a perspective view of a cannula of the biopsy needle device of FIG. 1.
  • FIG. 2A is a detail view of a distal end portion of the cannula of FIG. 2 taken from detail line 2A.
  • FIG. 3 is a perspective view of a trocar of the biopsy needle device of FIG. 1.
  • FIG. 3A is a detail view of a distal end portion of the trocar of FIG. 3 taken from detail line 3A.
  • FIG. 4 is a perspective view of an actuator of the biopsy needle device of FIG. 1 , shown with a housing lid removed.
  • FIG. 5 is a perspective view of an actuator of the biopsy needle device of FIG. 1 , shown with the housing base removed.
  • FIG. 6 is a schematic representation of portions of the biopsy needle device actuator of FIG. 1 in a first configuration.
  • FIG. 6A is a schematic representation of portions of the cannula and trocar of the biopsy needle device of FIG. 1 in the first configuration correlating to FIG. 6.
  • FIG. 7 is a schematic representation of portions of the biopsy needle device actuator of FIG. 1 in a second configuration.
  • FIG. 7A is a schematic representation of portions of the cannula and trocar of the biopsy needle device of FIG. 1 in the second configuration correlating to FIG. 7.
  • FIG. 8 is a schematic representation of portions of the biopsy needle device actuator of FIG. 1 in a third configuration.
  • FIG. 8A is a schematic representation of portions of the cannula and trocar of the biopsy needle device of FIG. 1 in the third configuration correlating to FIG. 8.
  • FIG. 9 is a schematic representation of portions of the biopsy needle device actuator of FIG. 1 in a fourth configuration.
  • FIG. 9A is a schematic representation of portions of the cannula and trocar of the biopsy needle device of FIG. 1 in the fourth configuration correlating to FIG. 9.
  • FIG. 10 is a schematic representation of portions of the biopsy needle device actuator of FIG. 1 in a fifth configuration.
  • FIG. 10A is a schematic representation of portions of the cannula and trocar of the biopsy needle device of FIG. 1 in the fifth configuration correlating to FIG. 10.
  • FIG. 11 is a schematic representation of portions of the biopsy needle device actuator of FIG. 1 in a sixth configuration.
  • FIG. 1 1A is a schematic representation of portions of the cannula and trocar of the biopsy needle device of FIG. 1 in the sixth configuration correlating to FIG. 1 1.
  • FIG. 12 is a perspective view of a second embodiment of the biopsy needle device.
  • FIG. 13 is a perspective view of an actuator of the biopsy needle device of FIG. 12, shown with a housing lid removed.
  • FIG. 14 is another perspective view of the actuator of the biopsy needle device of FIG. 12, shown with the housing lid removed.
  • FIG. 15 is a cross-sectional view of the actuator of the biopsy needle device of FIG. 12 with the housing lid removed.
  • FIG. 16 is a schematic representation of portions of the biopsy needle device actuator of FIG. 12 in a first configuration.
  • FIG. 16A is a schematic representation of portions of the cannula and trocar of the biopsy needle device of FIG. 12 in the first configuration correlating to FIG. 16.
  • FIG. 17 is a schematic representation of portions of the biopsy needle device actuator of FIG. 12 in a second configuration.
  • FIG. 17A is a schematic representation of portions of the cannula and trocar of the biopsy needle device of FIG. 12 in the second configuration correlating to FIG. 17.
  • FIG. 18 is a schematic representation of portions of the biopsy needle device actuator of FIG. 12 in a third configuration.
  • FIG. 18A is a schematic representation of portions of the cannula and trocar of the biopsy needle device of FIG. 12 in the third configuration correlating to FIG. 18.
  • FIG. 19 is a schematic representation of portions of the biopsy needle device actuator of FIG. 12 in a fourth configuration.
  • FIG. 19A is a schematic representation of portions of the cannula and trocar of the biopsy needle device of FIG. 12 in the fourth configuration correlating to FIG. 19.
  • FIG. 20 is a schematic representation of portions of the biopsy needle device actuator of FIG. 12 in a fifth configuration.
  • FIG. 20A is a schematic representation of portions of the cannula and trocar of the biopsy needle device of FIG. 12 in the fifth configuration correlating to FIG. 20.
  • FIG. 21 is a schematic representation of portions of the biopsy needle device actuator of FIG. 12 in a sixth configuration.
  • FIG. 21A is a schematic representation of portions of the cannula and trocar of the biopsy needle device of FIG. 12 in the sixth configuration correlating to FIG. 21.
  • FIG. 22 is a schematic representation of portions of the biopsy needle device actuator of FIG. 12 in a seventh configuration.
  • FIG. 22A is a schematic representation of portions of the cannula and trocar of the biopsy needle device of FIG. 12 in the seventh configuration correlating to FIG. 22.
  • Tissue biopsy devices may be configured to retrieve tissue samples from various locations within a patient's body.
  • a biopsy device may comprise a biopsy needle device, or needle assembly, including tubular members, needles, trocars, cutting styli, styli, cannula, and/or other components configured to access and sever a tissue sample in a medical procedure commonly referred to as Core Needle Biopsy.
  • the biopsy needle device may be advanced to a location within the body through the skin of the patient (percutaneous access), through an open incision, or may be advanced through a body lumen or other structure. A portion of the biopsy needle device may be advanced into a lesion or target tissue.
  • a biopsy needle device may then be advanced into the lesion or target tissue to sever a tissue sample from the lesion or target tissue.
  • the biopsy needle device may then be withdrawn from the patient, and the tissue sample extracted from the needle device for analysis.
  • a biopsy needle device may comprise a handle or actuator configured to axially displace or deflect at least a portion of the biopsy needle device such that the biopsy needle device cuts or severs the targeted tissue sample.
  • Coupled to and “in communication with” refer to any form of interaction between two or more entities, including mechanical, electrical, magnetic, electromagnetic, fluid, and thermal interaction.
  • Two components may be coupled to or in communication with each other even though they are not in direct contact with each other.
  • two components may be coupled to or in communication with each other through an intermediate component.
  • distal and proximal are given their ordinary meaning in the art. That is, the distal end of a medical device means the end of the device furthest from the practitioner during use.
  • the proximal end refers to the opposite end, or the end nearest the practitioner during use.
  • the proximal end of the needle refers to the end nearest the handle or actuator, and the distal end refers to the opposite end: the end that may be inserted into a patient.
  • tissue is used in its broadest sense, to refer to any tissue or substance within a human body.
  • FIGS. 1-22A illustrate different views of a biopsy needle device and related components.
  • each device may be coupled to, or shown with, additional components not included in every view.
  • additional components not included in every view.
  • additional components are illustrated, to provide detail into the relationship of the components.
  • Some components may be shown in multiple views, but not discussed in connection with every view. Disclosure provided in connection with any figure is relevant and applicable to disclosure provided in connection with any other figure or embodiment.
  • FIG. 1 is a perspective view of a biopsy needle device 100.
  • the biopsy needle device 100 may comprise an outer member or cannula 120, an inner member or trocar 140, and an actuator 160.
  • FIG. 2 is a perspective view of the cannula 120 of FIG. 1
  • FIG. 2A is a detail view of a distal end portion 122 of the cannula 120 of FIG. 2 taken through detail line 2A.
  • the cannula 120 may comprise an elongate tube having the distal end portion 122, a proximal end portion 123 and a lumen 124.
  • the cannula 120 may range in diameter from 22 gauge to 8 gauge and including from 20 gauge to 14 gauge.
  • the lumen 124 of the cannula 120 may be sized to accommodate the positioning of the trocar 140 within the lumen 124.
  • the length of the cannula 120 may range from 5 cm to 100 cm and including from 10 cm to 25 cm.
  • the cannula 120 may be manufactured from a medical- grade stainless steel material.
  • the proximal end portion 123 of the cannula 120 may be configured to be fixedly coupled to a cannula hub 121 of the actuator (160 of FIG. 1) such that the proximal end of the lumen 124 is open to allow for passage of the trocar 140 into the lumen 124.
  • the cannula 120 may be fixedly coupled to the cannula hub 121 using any suitable techniques including bonding, welding, overmolding, press fit, etc.
  • the outside surface of the proximal end portion 123 of the cannula 120 may be modified to enhance the coupling of the cannula 120 to the cannula hub 121.
  • the surface may be chemically or mechanically etched or textured to roughen the surface in order to enhance the adhesion of an adhesive or plastic.
  • the surface may be chemically modified to enhance the adhesion of the adhesive or plastic.
  • the distal end portion 122 of the cannula 120 may comprise a bevel 125.
  • the bevel 125 may be configured to cut or sever tissue as the cannula 120 slides along the longitudinal axis of the trocar 140.
  • the bevel 125 may have an angle of from 5 degrees to 180 degrees and including from 25 degrees to 30 degrees.
  • the bevel may be configured to have other undulating surfaces configured to be sharp to cut or sever tissue.
  • the edges of the bevel 125 may be sharp and may be configured to cut or sever tissue.
  • the cannula 120 may comprise a plurality of indicia 135 configured to indicate to the practitioner a distance that the cannula 120 and the trocar 140 have advanced into a body tissue (for clarity, not all indicia 135 are labeled).
  • each indicium 135 may be positioned 1 cm apart; thus, if the practitioner displaces the cannula 120 and the trocar 140 into a body tissue up to the third indicium 135 from a distal end portion 142 of the trocar 140, it may indicate to the practitioner that approximately 3 cm of the trocar 140 and cannula 120 has been displaced into the body tissue.
  • the indicia 135 may comprise a plurality of substantially evenly spaced annular lines, marks, or grooves on an outside surface of the cannula 120. In certain embodiments, the indicia 135 may comprise a plurality of tick marks, or the indicia 135 may not be evenly spaced.
  • a portion or portions of at least one of the components of the biopsy needle device 100 may comprise a radiopaque material and/or an echogenic material.
  • a radiopaque material (for example, in combination with computed tomography or x-ray) may aid the practitioner in directing or displacing the biopsy needle device 100 to a desired or predetermined position within the body tissue of the patient. Bismuth, gold, or other radiopaque materials, alone or in combination, may be used.
  • FIG. 3 is a perspective view of the trocar 140 of FIG. 1
  • FIG. 3A is a detail view of the distal end portion 142 of the trocar 140 of FIG. 3 taken from detail line 4A.
  • the trocar 140 may comprise an elongate rod having the distal end portion 142 and a proximal end portion 143.
  • the trocar 140 may comprise an elongate tube having a lumen.
  • the trocar 140 outer diameter may be configured such that the trocar 140 may be slidingly disposed within the lumen 124 of the cannula 120.
  • the trocar 140 may range in diameters and lengths to match the cannula for optimized tissue cutting.
  • the trocar 140 may be manufactured from a medical-grade stainless steel material.
  • the distal end portion 142 of the trocar 140 may comprise a bevel 156 and a notch 157.
  • the bevel 156 may be configured to penetrate tissue.
  • the bevel 156 may be configured as any type of tissue-penetrating bevel utilized in medical devices comprising a needle or trocar.
  • the bevel 156 may be of a type such as Tri-cut, Whitacre, pencil point, Seldinger, Sprotte, etc.
  • the notch 157 may be located proximal of the bevel 156.
  • the length of the notch 157 may range from 5 millimeters to 35 millimeters and including embodiments where it is 20 millimeters.
  • the depth of the notch 157 may be approximately 50% of the outer diameter of the trocar 140.
  • a base 144 of the notch 157 may be planar.
  • the notch 157 may comprise a trough having side walls and a concave base such as would be created by removing a portion of a wall of a hollow trocar.
  • the notch 157 may be configured to capture and retain the tissue sample cut or severed by the cannula (120 of FIG. 2).
  • the trocar 140 may be inserted into the target tissue or lesion. A portion of the target tissue or lesion may collapse into the notch 157.
  • the cannula 120 of FIG. 2 may then be advanced over the trocar 140, cutting or severing the portion of the target tissue or the lesion from the surrounding tissue. The cut or severed tissue sample may be captured and retained within the notch 157 and the cannula lumen (124 of FIG. 4).
  • the proximal end portion 143 of the trocar 140 may be configured to be fixedly coupled to the actuator 160.
  • the trocar 140 may be fixedly coupled to the actuator 160 using any suitable technique including bonding, welding, overmolding, press fit, etc.
  • the outside surface of the proximal end portion 143 of the trocar 140 may be modified to enhance the coupling of the trocar 140 to the actuator 160.
  • the surface may be chemically or mechanically etched or textured to roughen the surface in order to enhance the adhesion of an adhesive or plastic.
  • the surface may be chemically modified to enhance the adhesion of the adhesive or plastic.
  • the cannula 120 and trocar 140 are configured such that when the biopsy needle device 100 is activated, the cannula 120 has motion relative to the trocar 140 exposing the notch 157 for tissue to prolapse into and returning to the initial position, thereby cutting or severing the tissue in the notch 157.
  • the actuator 160 may comprise a housing base 180, the housing lid 181 , a trigger 161 , the cannula hub 121 , a spring 162 and a linear displacement mechanism 163.
  • the housing base 180 and the housing lid 181 may be configured to be coupled together utilizing various techniques, such as, snap fit, bonding, welding, etc., to enclose the components of the actuator 160.
  • the actuator 160 may be configured to be held in the hand of a practitioner such that the biopsy needle device 100 may be manipulated during a medical procedure such as the Core Needle Biopsy procedure.
  • the external surface of the housing base 180 and the housing lid 181 may comprise grip-enhancing features such as finger grips 177, bumps, dimples, grooves, ribs, other textures, overmolded soft material, etc.
  • the housing base 180 and the housing lid 181 may be formed from a rigid plastic material and may be opaque or translucent.
  • the linear displacement mechanism 163 may comprise a linear gear 164, a circular gear 165 and a linkage member 166.
  • the linear gear 164 may comprise a side wall 168, a gear wall 170 and a cavity 171.
  • the gear wall 170 may comprise gear teeth 172 configured to engage gear teeth 182 of the circular gear 165.
  • the gear teeth 172 spacing and circular gear 165 diameter may be configured to adjust the force and speed of the movement of the mechanism 163.
  • the gear teeth 172 of the linear gear 164 may be spaced along a longitudinal axis of the linear gear 164 from a distal end to a proximal end of the gear wall 170.
  • the side wall 168 of the linear gear 164 may comprise a distal slot 173, a middle slot 174 and a proximal slot 175.
  • the distal slot 173 may be configured to be engaged by the trigger 161 to move the linear gear 164 from a distal location to a proximal location when cocking the actuator 160.
  • the middle slot 174 may be configured to engage a locking hook 153 of the housing base 180 when the linear gear 164 is in the proximal position and the actuator 160 cocked.
  • the proximal slot 175 may be configured to engage the locking hook 153 when the linear gear 164 is in the distal position.
  • the cavity 171 may be open at a proximal end and closed at a distal end.
  • the spring (not shown) may be partially disposed within the cavity 171.
  • the circular gear 165 may comprise the gear teeth 182 and a torque converter 183.
  • the circular gear 165 may be circular in shape with the gear teeth 182 spaced around a periphery.
  • the gear teeth 182 may be configured to engage the gear teeth 172 of the linear gear 164 such that linear displacement of the linear gear 164 may be translated into rotational motion of the circular gear 165.
  • the linear gear 164 may be displaced by the force of the spring 162 from a proximal position to a distal position following activation of the actuator 160.
  • the linear displacement of the linear gear 164 may result in rotational movement of the circular gear 165 when the gear teeth 172 of the linear gear 164 engage the gear teeth 182 of the circular gear 165.
  • the circular gear 165 may be positioned within a circular pocket 184 comprising a wall 186.
  • the circular pocket 184 may be partially open such that a portion of the wall 186 of the circular pocket 184 may be removed.
  • Such an opening 185 in the circular pocket 184 may be configured to permit the engagement of the linear gear teeth 172 with the circular gear teeth 182.
  • the torque converter 183 may be generally wedge shaped and comprise a circular passage 189 within the wide portion of the torque converter 183 and a mushroom shaped stud 190 near the narrow end of the torque converter 183.
  • the torque converter 183 may be fixedly coupled to the circular gear 165.
  • the coupling may be accomplished utilizing a pin 187 frictionally positioned within a bore 188 of the circular gear 165 and the circular passage 189 of the torque converter 183.
  • the torque converter 183 and the circular gear 165 may be coupled utilizing any suitable technique, such as bonding, welding, etc.
  • the distance between the center of the passage 189 and the center of the stud 190 may be approximately equivalent to one-half the length of the notch 157.
  • the distal end of the cannula 120 may move from a position distal to the notch 157 to a position proximal to the notch 157 and back to a position distal to the notch 157 as the torque converter 183 may rotate 360 degrees.
  • the desired distance of proximal and distal movement of the distal end of the cannula 120 may be approximately the length of the notch 157.
  • the torque converter 183 may rotate 180 degrees to move the distal end of the cannula 120 the desired proximal distance.
  • the length of the torque converter 183 may be adjusted to accommodate different cannula 120 travel distances.
  • the torque converter 183 may be rotatably coupled to the linkage member 166.
  • the linkage member 166 may comprise a proximal circular passage 191 and a distal circular passage 192.
  • the proximal passage 191 may be configured to couple with the stud 190 of the torque converter 183 such that the linkage member 166 is permitted to rotate around the stud 190.
  • the stud 190 may be split longitudinally such that the diameter of the stud 190 may decrease to permit passage of the mushroom shaped top of the stud 190 to pass through the proximal passage 191.
  • the distal passage 192 may be configured to rotatably couple with a mushroom shaped stud (or snap) 126 of the cannula hub 121.
  • the cannula hub 121 may comprise a body 127, a bore 128, the stud 126 and a rail 129.
  • the stud 126 may project radially outward from the body 127 and be configured with a mushroom shaped end.
  • the stud 126 may be split longitudinally such that the diameter of the stud 126 may decrease as the mushroom shaped end passes through the passage 192 of the linkage member 166.
  • the rail 129 may extend radially outward from the body 127 opposite from the stud 126.
  • the rail 129 may be slidingly coupled to guide rails 176 of the housing base 180.
  • the bore 128 may be configured for positioning and coupling of the proximal end of the cannula 120 such that the trocar 140 may be disposed within the lumen 124 of the cannula 120.
  • the coupling of the cannula hub 121 to the torque converter 183 may translate the rotational movement of the torque converter 183 into linear movement of the cannula hub 121 and cannula 120.
  • the torque converter 183 may rotate 180 degrees in one direction as the actuator 160 may be cocked.
  • the linkage between the torque converter 183 and the cannula hub 121 may be configured to move the cannula hub 121 from a distal position to a proximal position and then back to the distal position.
  • the actuator 160 is activated, the torque converter 183 may rotate 360 degrees in an opposite direction resulting in the cannula hub 121 moving from the distal position to a proximal position and back to a distal position.
  • the trigger 161 comprises an activation flange 150, a cocking hook 151 and an activation hook 152.
  • the trigger 161 may be partially disposed within the housing base 180.
  • the activation flange 150 may be configured to permit the practitioner to grip the activation flange 150 and displace the trigger 161 proximally to cock the actuator 160.
  • the activation flange 150 may also be configured to permit the practitioner to displace the trigger 161 distally to activate the actuator 160.
  • a proximal face of the activation flange 150 may comprise grip-enhancing features, such as ribs, bumps, dimples, etc.
  • the cocking hook 151 may be configured to engage the distal slot 173 of the linear gear 164 such that the cocking hook 151 may engage the distal slot 173 when the trigger 161 is displaced proximally, and the cocking hook 151 may disengage the distal slot 173 when the trigger 161 is displaced distally.
  • the activation hook 152 may engage a post 154 coupled to the locking hook 153 of the housing base 180.
  • the locking hook 153 may engage the middle slot 174 of the linear gear 164 such that the linear gear 164 may be locked in a cocked or proximal position.
  • Distal displacement of the trigger 161 may result in engagement of the activation hook 152 with the post 154 such that the activation hook 152 may displace the post 154 and the locking hook 153 away from the linear gear 164.
  • the locking hook 153 may be disengaged from the middle slot 174, and the linear gear 164 may be displaced distally.
  • an introducer cannula (not shown) may be used with the biopsy needle device 100 disclosed herein.
  • the introducer cannula may comprise an outer cannula sized to permit passage of the biopsy needle, a trocar slidingly positioned within the cannula and extending beyond the distal end of the cannula, and a depth stop to facilitate positioning of the introducer at the desired insertion depth.
  • the introducer cannula assembly may be inserted into a patient's tissue, with the distal end of the introducer cannula positioned adjacent to the targeted tissue.
  • the depth stop may be used to restrict insertion depth to a predetermined depth.
  • the trocar may be removed.
  • a portion of the biopsy needle device 100 may be inserted through the introducer cannula and into the targeted tissue.
  • a tissue sample may be severed from the targeted tissue and retained within the biopsy needle device 100.
  • the biopsy needle device 100 may be withdrawn from the targeted tissue and the introducer cannula.
  • the tissue sample may be extracted from the biopsy needle device 100. If additional tissue samples are desired from the same target tissue, the process may be repeated.
  • the introducer cannula is removed from the patient when all desired tissue samples have been collected.
  • FIGS. 6-11 A are schematic in nature.
  • the figures show the functional and operational relationships of portions of the biopsy needle device 100 upon use in a patient, but the figures are not intended to indicate any particular structure or spatial disposition of any tissue, organ, body component, or group of body components in the patient.
  • the schematic representations herein may be drawn to show internal tissues and/or organs of the patient without explicitly designating cross-sections or cutaways of the tissues and/or organs.
  • a body tissue may be schematically shown with the biopsy needle device 100 disposed therein without indicating a cross-section portion or cutaway of a portion of the body tissue.
  • FIGS. 6 and 6A are schematic representations of a side view of portions of the biopsy needle device 100 of FIG.
  • FIG. 6A represents the relative positions of distal portions of the needle and cannula correlated with the actuator configuration of FIG. 6.
  • FIGS. 7 and 7A are schematic representations of a side view of portions of the biopsy needle device 100 of FIG. 1 in a second configuration.
  • FIG. 7A represents the relative positions of distal portions of the needle and cannula correlated with the actuator configuration of FIG. 7.
  • FIGS. 8 and 8A are schematic representations of a side view of portions of the biopsy needle device 100 of FIG. 1 in a third configuration.
  • FIG. 8A represents the relative positions of distal portions of the needle and cannula correlated with the actuator configuration of FIG. 8.
  • FIGS. 8A represents the relative positions of distal portions of the needle and cannula correlated with the actuator configuration of FIG. 8.
  • FIGS. 9 and 9A are schematic representations of a side view of portions of the biopsy needle device 100 of FIG. 1 in a fourth configuration.
  • FIG. 9A represents the relative positions of distal portions of the needle and cannula correlated with the actuator configuration of FIG. 9.
  • FIGS. 9A represents the relative positions of distal portions of the needle and cannula correlated with the actuator configuration of FIG. 9.
  • FIGS. 10 and 10A are schematic representations of a side view of portions of the biopsy needle device 100 of FIG. 1 in a fifth configuration.
  • FIG. 10A represents the relative positions of distal portions of the needle and cannula correlated with the actuator configuration of FIG. 10.
  • FIGS. 10A represents the relative positions of distal portions of the needle and cannula correlated with the actuator configuration of FIG. 10.
  • FIG. 1 1 and 11A are schematic representations of a side view of portions of the biopsy needle device 100 of FIG. 1 in a sixth configuration.
  • FIG. 1 1A represents the relative positions of distal portions of the needle and cannula correlated with the actuator configuration of FIG. 1 1.
  • FIG. 6 illustrates the relative locations of the linear gear 164, the torque converter 183, the cannula hub 121 and the trigger 161 within the actuator 160 in the first configuration.
  • the first configuration may be prior to cocking of the actuator 160 by the practitioner.
  • the cannula hub 121 may be positioned at the distal end portion of the housing base 180.
  • the linear gear 164 may be positioned at a distal position.
  • the torque converter 183 may be oriented such that the narrow portion may be directed distally.
  • the trigger 161 may be positioned in a distal position such that the cocking hook 151 engages the distal slot 173 of the linear gear 164.
  • FIG. 6A illustrates distal portions of the cannula 120 and the trocar 140 of the needle device 100 in the first configuration.
  • the trocar bevel 156 may extend beyond the distal end of the cannula 120.
  • the cannula bevel 125 may be located proximal to and adjacent to the trocar bevel 156.
  • FIG. 7 illustrates the relative locations of the linear gear 164, the torque converter 183, the cannula hub 121 and the trigger 161 within the actuator 160 in the second configuration.
  • the second configuration may be approximately halfway through cocking of the actuator 160 by the practitioner.
  • An intermediate latch (not shown) may be configured into the linear gear 164 as to be able to hold this position.
  • the cannula hub 121 may be displaced proximally and may be positioned at a proximal position.
  • the linear gear 164 may be displaced proximally and positioned at an intermediate position.
  • the torque converter 183 may be rotated in the direction of the arrow and oriented such that the narrow portion may be directed proximally.
  • the trigger 161 may be displaced proximally and may be positioned in an intermediate position.
  • the actuator 160 may be reset to the second configuration to retrieve the tissue sample 159 from the notch 157.
  • FIG. 7A illustrates distal portions of the cannula 120 and the trocar 140 of the needle device 100 in the second configuration.
  • the cannula bevel 125 may be displaced proximally and may be positioned proximal to the notch 157 such that the cannula 120 does not cover the notch 157.
  • FIG. 8 illustrates the relative locations of the linear gear 164, the torque converter 183, the cannula hub 121 and the trigger 161 within the actuator 160 in the third configuration.
  • the third configuration may be subsequent to cocking of the actuator 160 and insertion of the trocar 140 and cannula 120 into the lesion 158 by the practitioner.
  • the cannula hub 121 may be displaced distally and may be positioned at the distal end portion of the housing base 180.
  • the linear gear 164 may be further displaced proximally and may be positioned at a proximal position.
  • the torque converter 183 may be further rotated in the direction of the arrow and may be oriented such that the narrow portion may be directed distally.
  • the trigger 161 may be further displaced proximally and may be positioned in a proximal position.
  • FIG. 8A illustrates distal portions of the cannula 120 and the trocar 140 of the needle device 100 in the third configuration.
  • the trocar bevel 156 may extend beyond the cannula bevel 125 and the notch 157 may be covered by the cannula 120.
  • the distal end of the cannula 120 may be displaced distally and may be positioned proximal to and adjacent to the trocar bevel 156.
  • FIG. 9 illustrates the relative locations of the linear gear 164, the torque converter 183, the cannula hub 121 and the trigger 161 within the actuator 160 in the fourth configuration.
  • the fourth configuration may occur as the actuator 160 is activated by the practitioner.
  • the cannula hub 121 may be positioned at the distal end portion of the housing base 180.
  • the linear gear 164 may be positioned at a proximal position.
  • the torque converter 183 may be oriented such that the narrow portion may be directed distally.
  • the trigger 161 may be displaced distally and may be positioned in an intermediate position such that the activation hook 152 may displace the post 154, and the locking hook 153 may disengage from the slot 174 of the linear gear 164.
  • FIG. 9A illustrates distal portions of the cannula 120 and the trocar 140 of the needle device 100 in the fourth configuration.
  • the trocar bevel 156 may extend beyond the distal end of the cannula 120.
  • the cannula bevel 125 may be located proximal to and adjacent to the trocar bevel 156.
  • FIG. 10 illustrates the relative locations of the linear gear 164, the torque converter 183, the cannula hub 121 and the trigger 161 within the actuator 160 in the fifth configuration.
  • the fifth configuration may be approximately halfway through activation of the actuator 160.
  • the cannula hub 121 may be displaced proximally and may be positioned at a proximal position.
  • the linear gear 164 may be displaced distally and may be positioned at an intermediate position.
  • the torque converter 183 may be rotated in the direction of the arrow and may be oriented such that the narrow portion may be directed proximally. It is to be understood that the rotation of the torque converter 183 is a continuous motion for approximately 360 degrees.
  • the fifth configuration represents an instant of time as the torque converter 183 continuously rotates.
  • the trigger 161 may be positioned in an intermediate position.
  • FIG. 10A illustrates distal portions of the cannula 120 and the trocar 140 of the needle device 100 in the fifth configuration.
  • the cannula bevel 125 may be displaced proximally and may be positioned proximal to the notch 157 such that the cannula 120 does not cover the notch 157.
  • the tissue sample 159 may collapse or prolapse into the notch 157 and may at least partially fill the notch 157.
  • FIG. 1 1 illustrates the relative locations of the linear gear 164, the torque converter 183, the cannula hub 121 and the trigger 161 within the actuator 160 in the sixth configuration.
  • the sixth configuration may be subsequent to activation of the actuator 160 and severing of the tissue sample 159.
  • the cannula hub 121 may be displaced distally and may be positioned at a distal position.
  • the linear gear 164 may be displaced distally and may be positioned at a distal position.
  • the torque converter 183 may be rotated in the direction of the arrow and may be oriented such that the narrow portion may be directed distally.
  • the trigger 161 may be positioned in a distal position.
  • FIG. 1 1A illustrates distal portions of the cannula 120 and the trocar 140 of the needle device 100 in the sixth configuration.
  • the trocar bevel 156 may extend beyond the distal end of the cannula 120.
  • the cannula bevel 125 may be displaced distally such that the bevel 125 may cut or sever the tissue sample 159 from the lesion 158, and the cannula 120 may cover the notch 157 such that the tissue sample 159 may be retained in the notch 157.
  • the distal end of the cannula 120 may be positioned proximal to and adjacent to the trocar bevel 156.
  • the biopsy needle device 100 may permit the practitioner to perform the Core Needle Biopsy procedure.
  • the location of the tissue or lesion to be biopsied within the patient may be identified utilizing known diagnosis techniques such as computed tomography, magnetic resonance imaging, x-ray, fluoroscopy, ultrasound, etc.
  • the patient may be positioned and prepped for the Core Needle Biopsy procedure.
  • the practitioner may obtain the sterilized biopsy needle device 100 configured with the desired trocar and cannula length and diameter and the desired length of notch 157 such that a desired sample length may be collected.
  • the practitioner may prep the biopsy needle device 100 by cocking the actuator 160.
  • the actuator 160 may be cocked by displacing the activation flange 150 proximally.
  • the cocking hook 151 may engage the distal slot 173 of the linear gear 164 displacing the linear gear 164 proximally until the locking hook 153 engages the middle slot 174, and the spring 162 may be at least partially compressed.
  • the practitioner may insert the cannula 120 and the trocar 140 through the skin and into the lesion of the patient while holding the actuator 160 in a hand.
  • the cannula 120 and the trocar 140 may be inserted into the lesion of a patient utilizing an introducer cannula that was previously inserted into the patient.
  • the practitioner may confirm the position of the distal end portions 122, 142 of the cannula 120 and trocar 140 utilizing known techniques such as ultrasound, fluoroscopy, computed tomography, etc.
  • the practitioner may activate the actuator 160 by applying a force to the activation flange 150 resulting in the activation hook 152 engaging the post 154 and disengaging the locking hook 153 from the middle slot 174 of the linear gear 164.
  • the spring 162 may decompress and the linear gear 164 may be displaced distally.
  • the gear teeth 172 of the linear gear 164 may engage the gear teeth 182 of the circular gear 165, causing the circular gear 165 to rotate.
  • the torque converter 183 coupled to the circular gear 165 may rotate approximately 360 degrees in a continuous motion. The rotational movement of the torque converter 183 may be translated into an initial proximal and then distal linear movement of the cannula hub 121 and cannula 120 through the linkage member 166.
  • the torque converter 183 may rotate 180 degrees and the cannula hub 121 and cannula 120 may be displaced proximally to a maximum proximal position.
  • the distal end of the cannula 120 may be located proximally of the notch 157 of the trocar 140.
  • the notch 157 may be exposed to lesion tissue. A portion of the lesion tissue may collapse into the notch 157.
  • the torque converter 183 may complete the 360 degree rotation, and the cannula hub 121 and the cannula 120 may be displaced to a distal position.
  • the distal end of the cannula 120 may slide over the notch 157 and cut or sever the portion of the lesion or tissue sample 159 within the notch 157 from the surrounding lesion tissue.
  • the tissue sample 159 may be captured and retained within the notch 157 by the cannula 120.
  • the cannula 120 and the trocar 140 may be removed from the patient's tissue.
  • the tissue sample 159 may be extracted from the biopsy needle device 100 and analyzed using known techniques.
  • FIGS. 12-15 an embodiment of the actuator 260 of a biopsy needle device 200 is shown.
  • Like numbers for like components of the biopsy needle device 100 as described above will be utilized to describe the biopsy needle device 200.
  • a trocar 240 and a cannula 220 are identical to the trocar 140 and the cannula 120 described above and illustrated in FIGS. 2-3A are thus not described in detail with the other components of the biopsy needle device 200, though disclosure relating to the structure, function, and other aspects of these components recited in connection with the biopsy needle device 100 may be analogously applied to the components of the biopsy needle device 200.
  • the actuator 260 may comprise a housing base 280, a housing lid 281 , a trigger 261 , a cannula hub 221 , and a torsional spring mechanism 263.
  • the housing base 280 and the housing lid 281 may be configured to be coupled together utilizing various techniques, such as pins and sockets, snap fit, bonding, welding, etc., to enclose the components of the actuator 260.
  • the actuator 260 may be configured to be held in the hand of a practitioner such that the biopsy needle device 200 may be manipulated during a medical procedure such as the Core Needle Biopsy procedure.
  • the external surface of the housing base 280 and the housing lid 281 may comprise grip-enhancing features such as finger grips 277, bumps, dimples, grooves, ribs, other textures, overmolded soft material, etc.
  • the housing base 280 and the housing lid 281 may be formed from a rigid plastic material and may be opaque or translucent.
  • the torsional spring mechanism 263 may comprise a torsional spring 264, a torque converter 283, a flexible member 293 and a linkage member 266.
  • the torsional spring 264 may comprise a coil portion 294, a first end 295, and a second end 296.
  • the coil portion 294 may be disposed within an annular pocket 284 of the base 280.
  • the first end 295 may extend away from the annular pocket 284 and be coupled to the base 280 at an "L" shaped protrusion 297.
  • the first end 295 is configured to remain in a fixed position relative to the base 280.
  • the second end 296 may also extend away from the annular pocket 284 and be coupled to the torque converter 283 at a slot 298.
  • the second end 296 is configured to rotate with the torque converter 283 such that the torsional spring 264 may be wound and unwound.
  • the torsional spring 264 may be made from any suitable spring type material, such as brasses, bronzes, carbon steels, Inconel alloys, stainless steels, titanium alloys, etc.
  • the torque converter 283 may comprise a first arm 245 and a second arm 246.
  • the arms 245, 246 may extend from a central portion 247.
  • the arms 245, 246 may be configured at 180° from one another.
  • a "C" shaped catch 239 may be located at the end of arms 245, 246.
  • the catch 239 may be configured to releasably couple with a post 255 of the base 280.
  • the central portion 247 may comprise a bore 289 configured to fixedly couple with a pin 287.
  • the pin 287 is configured to rotationally couple with a recess 248 at the core of the annular pocket 284.
  • the torque converter 283 may further comprise a third arm 249 extending from the central portion 247 between the first arm 245 and the second arm 246.
  • the third arm 249 may comprise a mushroom shaped stud 290 configured to couple with the linkage member 266.
  • the torque converter 283 may be rotatably coupled to the linkage member 266.
  • the linkage member 266 may comprise a proximal circular passage 291 and a distal circular passage 292.
  • the proximal passage 291 may be configured to couple with the stud 290 of the torque converter 283 such that the linkage member 266 is permitted to rotate around the stud 290.
  • the stud 290 may be split longitudinally such that the diameter of the stud 290 may decrease to permit passage of the mushroom shaped top of the stud 290 to pass through the proximal passage 291.
  • the distal passage 292 may be configured to rotatably couple with a mushroom shaped stud 226 of the cannula hub 221.
  • the cannula hub 221 may comprise a body 227, a bore 228, the stud 226 and a rail 229.
  • the stud 226 may project radially outward from the body 227 and be configured with a mushroom shaped end.
  • the stud 226 may be split longitudinally such that the diameter of the stud 226 may decrease as the mushroom shaped end passes through the distal passage 292 of the linkage member 266.
  • the rail 229 may extend radially outward from the body 227 opposite from the stud 226.
  • the rail 229 may be slidingly coupled to guide rails 276 of the housing base 280.
  • the bore 228 may be configured for positioning and coupling of the proximal end of the cannula 220 such that the trocar 240 may be disposed within a lumen 224 of the cannula 220.
  • the coupling of the cannula hub 221 to the torque converter 283 is configured to translate the rotational movement of the torque converter 283 into linear movement of the cannula hub 221 and cannula 220.
  • the torque converter 283 may rotate 360 degrees in one direction as the actuator 260 is cocked.
  • the linkage between the torque converter 283 and the cannula hub 221 is configured to move the cannula hub 221 from a distal position to a proximal position and then back to the distal position.
  • the torque converter 283 may rotate 360 degrees in an opposite direction resulting in the cannula hub 221 moving from the distal position to a proximal position and back to a distal position resulting in the cannula 220 moving proximally over the trocar 240 to expose a notch 257 to collect a tissue sample and then moving distally to cover the notch 257 and retain the tissue sample.
  • the trigger 261 comprises an activation flange 250, a first arm 236, and a second arm 237. The trigger 261 may extend proximally from the base 280 and the arms 236, 237 may be partially disposed within the base 180.
  • the activation flange 250 may be configured to permit the practitioner to grip the activation flange 250 and displace the trigger 261 proximally to cock the actuator 260.
  • the activation flange 250 may also be configured to permit the practitioner to displace the trigger 261 distally to activate the actuator 260.
  • a proximal face of the activation flange 250 may comprise grip-enhancing features, such as ribs, bumps, dimples, etc.
  • a distal face of the activation flange 250 may comprise a loop 238 configured to fixedly couple with the flexible member 293.
  • the first arm 236 may be configured to engage a flange 230 that extends from the post 255 of the base 280.
  • a cantilever beam 231 may couple the post 255 to the base 280 such that the post 255 is movable distally and/or proximally.
  • the post 255 is configured to be deflected when the first arm 236 moves distally and engages the flange 230.
  • the post 255 is also configured to return to a non-deflected position when the first arm 236 no longer engages the flange 230 due to the elasticity of the material of the cantilever beam 231.
  • the second arm 237 may be configured to guide the trigger 261 as it is moved proximally and distally.
  • the flexible member 293 may be coupled to the torque converter 283 at one end and the trigger 261 at another end.
  • the flexible member 293 may be coiled around a portion of the torque converter 283 such that when tension is applied to the flexible member 293 the flexible member uncoils, the torque converter 283 rotates, and the torsional spring 264 winds.
  • the torsional spring 264 unwinds, causing the torque converter 283 to rotate in the opposite direction, and the flexible member 293 winds around a portion of the torque converter 283.
  • the flexible member 293 may be fixedly coupled to the loop 238 of the trigger 261 such that when the trigger 261 is moved proximally to cock the actuator 260, tension is applied to the flexible member 293 resulting in rotation of the torque converter 283.
  • the flexible member 293 may be coupled to the loop 238 utilizing techniques known in the art, such as tying, boding, welding, etc.
  • the flexible member 293 may be formed from flexible materials such as braided threads, monofilament plastics, metals wires, etc.
  • FIGS. 16-22A are schematic in nature.
  • the figures show the functional and operational relationships of portions of the biopsy needle device 200 upon use in a patient, but the figures are not intended to indicate any particular structure or spatial disposition of any tissue, organ, body component, or group of body components in the patient.
  • the schematic representations herein may be drawn to show internal tissues and/or organs of the patient without explicitly designating cross-sections or cutaways of the tissues and/or organs.
  • a body tissue may be schematically shown with the biopsy needle device 200 disposed therein without indicating a cross-section portion or cutaway of a portion of the body tissue.
  • FIG. 16 is a schematic representation of a side view of portions of the actuator 260 of FIGS.
  • FIG. 16A represents the relative positions of the distal portions of the trocar 240 and cannula 220 correlated with the actuator configuration of FIG. 16.
  • FIG. 17 is a schematic representation of a side view of portions of the actuator 260 of FIGS. 13-15 in a second configuration.
  • FIG. 17A represents the relative positions of the proximal portions of the trocar 240 and cannula 220 correlated with the actuator 260 configuration of FIG. 17.
  • FIG. 18 is a schematic representation of a side view of portions of the actuator 260 of FIGS. 13-15 in a third configuration.
  • FIG. 18A represents the relative positions of the distal portions of the trocar 240 and cannula 220 correlated with the actuator configuration of FIG. 18.
  • FIG. 19 is a schematic representation of a side view of portions of the actuator 260 of FIGS. 13-15 in a fourth configuration.
  • FIG. 19A represents the relative positions of the distal portions of the trocar 240 and cannula 220 correlated with the actuator configuration of FIG. 19.
  • FIG. 20 is a schematic representation of a side view of portions of the actuator 260 of FIGS. 13-15 in a fifth configuration.
  • FIG. 20A represents the relative positions of the distal portions of the trocar 240 and cannula 220 correlated with the actuator configuration of FIG. 20.
  • FIG. 21 is a schematic representation of a side view of portions of the actuator 260 of FIGS. 13-15 in a sixth configuration.
  • FIG. 19A represents the relative positions of the distal portions of the trocar 240 and cannula 220 correlated with the actuator configuration of FIG. 19.
  • FIG. 20 is a schematic representation of a side view of portions of the actuator 260 of FIGS. 13-15 in a sixth configuration.
  • FIG. 21A represents the relative positions of the distal portions of the trocar 240 and cannula 220 correlated with the actuator configuration of FIG. 21.
  • FIG. 22 is a schematic representation of a side view of portions of the actuator 260 of FIGS. 13-15 in a seventh configuration.
  • FIG. 22A represents the relative positions of the distal portions of the trocar 240 and cannula 220 correlated with the actuator configuration of FIG. 22.
  • FIG. 16 illustrates the relative locations of the torsional spring 264, the torque converter 283, the cannula hub 221 and the trigger 261 within the actuator 260 in the first configuration.
  • the first configuration may be prior to cocking of the actuator 260 by the practitioner.
  • the cannula hub 221 may be positioned at the distal end portion of the housing base 280.
  • the torsional spring 264 may be in an unwound configuration.
  • the torque converter 283 may be oriented such that the third arm 249 may be directed distally and the catch 239 of the first arm 245 is coupled with the post 255.
  • the trigger 261 may be positioned in an intermediate position such that the distal end of the trigger first arm 236 is adjacent to a ramp 234.
  • FIG. 16A illustrates distal portions of the cannula 220 and the trocar 240 of the biopsy needle device 200 in the first configuration.
  • a trocar bevel 256 may extend beyond the distal end of the cannula 220.
  • a cannula bevel 225 may be located proximal to and adjacent to the trocar bevel 256.
  • FIG. 17 illustrates the relative locations of the torsional spring 264, the torque converter 283, the cannula hub 221 , the trigger 261 and the flexible member 293 within the actuator 260 in the second configuration.
  • the second configuration may be approximately halfway through cocking of the actuator 260 by the practitioner.
  • the cannula hub 221 may be positioned at a proximal position.
  • the torsional spring 264 may be in a partly wound configuration.
  • the flexible member 293 may be partly uncoiled causing the torque converter 283 to rotate in the direction of the arrow.
  • the torque converter 283 may be oriented such that the third arm 249 may be directed proximally and the catch 239 of the second arm 246 may be deflecting the post 255.
  • the practitioner may feel slight resistance and/or hear a clicking sound as the second arm 246 passes and deflects the post 255.
  • the trigger 261 may be positioned in an intermediate position.
  • FIG. 17A illustrates distal portions of the cannula 220 and the trocar 240 of the biopsy needle device 200 in the second configuration.
  • the cannula bevel 225 may be displaced proximally and may be positioned proximal to the notch 257 such that the cannula 220 does not cover the notch 257.
  • FIG. 18 illustrates the relative locations of the torsional spring 264, the torque converter 283, the cannula hub 221 and the trigger 261 within the actuator 260 in the third configuration.
  • the third configuration may be subsequent to cocking of the actuator 260.
  • the cannula hub 221 may be positioned at a distal position.
  • the torsional spring 264 may be in a fully wound configuration.
  • the flexible member 293 may be fully uncoiled, causing the torque converter 283 to rotate in the direction of the arrow.
  • the torque converter 283 may be oriented such that the third arm 249 may be directed distally and the catch 239 of the first arm 245 may be coupled with the post 255.
  • the trigger 261 may be positioned in a proximal position.
  • FIG. 18A illustrates portions of the cannula 220 and the trocar 240 of the biopsy needle device 200 in the third configuration.
  • the trocar bevel 256 may extend beyond the cannula bevel 225.
  • the cannula bevel 225 may be displaced distally and may be positioned proximal to and adjacent to the trocar bevel 256.
  • FIG. 19 illustrates the relative locations of the torsional spring 264, the torque converter 283, the cannula hub 221 , the trigger 261 , and the flexible member 293 within the actuator 260 in the fourth configuration.
  • the fourth configuration may occur as the actuator 260 is activated by the practitioner.
  • the cannula hub 221 may be positioned at a distal position.
  • the torsional spring 264 may be in a fully wound configuration.
  • the flexible member 293 may be fully uncoiled.
  • the torque converter 283 may be oriented such that the third arm 249 may be directed distally.
  • the trigger 261 may be positioned in an fully distal position such that the distal end of the first arm 236 of the trigger 261 has engaged the ramp 234 and the flange 230 to deflect the post 255.
  • the catch 239 of the first arm 245 of the torque converter 283 may decouple from the post 255, allowing the torque converter 283 to rotate, in the direction of the arrow, due to the spring force of the torsional spring 264.
  • FIG. 19A illustrates portions of the cannula 220 and the trocar 240 of the biopsy needle device 200 in the fourth configuration.
  • the trocar bevel 256 may extend beyond the distal end of the cannula 220.
  • the cannula bevel 225 may be located proximal to and adjacent to the trocar bevel 256.
  • FIG. 20 illustrates the relative locations of the torsional spring 264, the torque converter 283, the cannula hub 221 , the trigger 261 and the flexible member 293 within the actuator 260 in the fifth configuration.
  • the fifth configuration may be approximately halfway through activation of the actuator 260.
  • the cannula hub 221 may be positioned at a proximal position.
  • the torsional spring 264 may be in a partly unwound configuration.
  • the flexible member 293 may be partly coiled around a portion of the torque converter 283.
  • the torque converter 283 may be oriented such that the third arm 249 may be directed proximally and the catch 239 of the second arm 246 may rotate by the deflected post 255.
  • the rotation of the torque converter 183 is a continuous motion for approximately 360 degrees. That is, the rotational motion of the torque converter 183 does not stop after rotating 180 degrees. Rather, the torque converter 183 has continuous rotational movement for approximately 360 degrees.
  • the fifth configuration represents an instant of time as the torque converter 283 continuously rotates.
  • the trigger 261 may be positioned in the distal position.
  • FIG. 20A illustrates distal portions of the cannula 220 and the trocar 240 of the biopsy needle device 200 in the fifth configuration.
  • the cannula bevel 225 may be displaced proximally and may be positioned proximal to the notch 257 such that the cannula 220 does not cover the notch 257.
  • a tissue sample 259 may collapse or prolapse into the notch 257 and may at least partially fill the notch 257.
  • FIG. 21 illustrates the relative locations of the torsional spring 264, the torque converter 283, the cannula hub 221 , the trigger 261 , and the flexible member 293 within the actuator 260 in the sixth configuration.
  • the sixth configuration may be subsequent to activation of the actuator 260 and severing of the tissue sample 259.
  • the cannula hub 221 may be positioned at a distal position.
  • the torsional spring 264 may be in a fully unwound configuration.
  • the flexible member 293 may be fully coiled around a portion of the torque converter 283.
  • the torque converter 283 may be oriented such that the third arm 249 may be directed distally and the catch 239 of the first arm 245 may be coupled with the post 255.
  • the trigger 261 may be positioned in an intermediate position such that the distal end of the first arm 236 does not deflect the post 255.
  • FIG. 21A illustrates distal portions of the cannula 220 and the trocar 240 of the biopsy needle device 200 in the sixth configuration.
  • the trocar bevel 256 may extend beyond the distal end of the cannula 220.
  • the cannula bevel 225 may be displaced distally such that the cannula bevel 225 may cut or sever the tissue sample 259 from the lesion 258, and the cannula 220 may cover the notch 257 such that the tissue sample 259 may be retained within the notch 257.
  • the distal end of the cannula 220 may be positioned proximal to and adjacent to the trocar bevel 256.
  • FIGS. 22 and 22A illustrates the relative locations of the torsional spring 264, the torque converter 283, the cannula hub 221 , the trigger 261 , and the flexible member 293 within the actuator 260 in the seventh configuration.
  • the seventh configuration may allow the practitioner to extract the tissue sample 259 from the notch 257.
  • the cannula hub 221 may be positioned at a proximal position.
  • the torsional spring 264 may be in a partly wound configuration.
  • the flexible member 293 may be partly uncoiled from a portion of the torque converter 283.
  • the torque converter 283 may be oriented such that the third arm 249 may be directed proximally and the catch 239 of the second arm 246 may be coupled with the post 255.
  • the trigger 261 may be positioned in an intermediate proximal position.
  • FIG. 22A illustrates distal portions of the cannula 220 and the trocar 240 of the biopsy needle device 200 in the seventh configuration.
  • the cannula bevel 225 may be displaced proximally and may be positioned proximal to the notch 257 such that the cannula 220 does not cover the notch 257.
  • the tissue sample 259 may be exposed such that it may be extracted from the notch 257 by the practitioner.
  • the biopsy needle device 200 may permit the practitioner to perform the Core Needle Biopsy procedure.
  • the location of the tissue or lesion to be biopsied within the patient may be identified utilizing known diagnosis techniques such as computed tomography, magnetic resonance imaging, x-ray, fluoroscopy, ultrasound, etc.
  • the patient may be positioned and prepped for the Core Needle Biopsy procedure.
  • the practitioner may obtain the sterilized biopsy needle device 200 configured with the desired trocar and cannula length and diameter and the desired length of notch 257 such that a desired sample length may be collected.
  • the practitioner may prep the biopsy needle device 200 by cocking the actuator 260.
  • the actuator 260 may be cocked by displacing the activation flange 250 and trigger 261 proximally.
  • Proximal displacement of the trigger 261 pulls the flexible member 293, proximally resulting in uncoiling of the flexible member 293 from a portion of the torque converter 283.
  • the torque converter 283 is rotated and the torsional spring 264 is wound in a compressed configuration.
  • the catch 239 of the first arm 245 of the torque converter 283 couples with the post 255 to hold the actuator 260 in a cocked configuration.
  • the practitioner may insert the cannula 220 and the trocar 240 through the skin and into the lesion of the patient while holding the actuator 260 in a hand.
  • the cannula 220 and the trocar 240 may be inserted into the lesion 258 of a patient utilizing an introducer cannula that was previously inserted into the patient.
  • the practitioner may confirm the position of the cannula 220 and trocar 240 utilizing known techniques such as ultrasound, fluoroscopy, computed tomography, etc.
  • the practitioner may activate the actuator 260 by applying a force to the activation flange 250, resulting in the first arm 236 of the trigger 261 deflecting the post 255 such that the catch 239 of the first arm 245 decouples from the post 255.
  • the torsional spring 264 may unwind or decompress such that the torque converter 283 is rotated approximately 360 degrees in a continuous motion.
  • the rotational movement of the torque converter 283 may be translated into initial proximal and then distal linear movement of the cannula hub 221 and cannula 220 through the linkage member 266.
  • the torque converter 283 may rotate 180 degrees and the cannula hub 221 and cannula 220 may be displaced proximally to a maximum proximal position.
  • the distal end of the cannula 220 may be positioned proximally of the notch 257 of the trocar 240.
  • the notch 257 may be exposed to lesion tissue. A portion of the lesion tissue may collapse or prolapse into the notch 257.
  • the torque converter 283 may complete the 360 degree rotation in a continuous motion, and the cannula hub 221 and the cannula 220 may be displaced to a distal position.
  • the distal end of the cannula 220 may slide over the notch 257 and cut or sever the portion of the lesion or tissue sample 259 within the notch 257 from the surrounding lesion tissue.
  • the tissue sample 259 may be captured and retained within the notch 257 by the cannula 220.
  • the cannula 220 and the trocar 240 may be removed from the patient's tissue.
  • the practitioner may extract the tissue sample 259 from the biopsy needle device 200 by displacing the trigger 261 proximally until the cannula 220 is positioned proximal of the notch 257 and the tissue sample 259 is exposed.
  • the tissue sample 259 may be extracted from the biopsy needle device 200 and analyzed using known techniques.
  • the continuous motion of a portion of the actuator may be configured to displace one or more portions of a biopsy needle device (such as devices 100 and 200) in a first direction, then in a second direction.
  • continuous rotation of a the torque converter (183, 283) in one rotational direction may be configured to displace the cannula (120, 220) from a proximal position, to a distal position, and back to a proximal position though continuous rotation of the torque converter (183, 283) in one direction of rotation.
  • Any methods disclosed herein comprise one or more steps or actions for performing the described method.
  • the method steps and/or actions may be interchanged with one another.
  • the order and/or use of specific steps and/or actions may be modified.

Abstract

A biopsy needle device is disclosed. The biopsy needle device may be configured to be advanced to a predetermined tissue sample, collect and sever the tissue sample utilizing an actuator comprising a linear displacement mechanism, and extract the tissue sample from a body tissue of a patient.

Description

SEMI-AUTOMATIC BIOPSY NEEDLE DEVICE AND METHODS OF USE
RELATED APPLICATIONS
[0001] This application claims priority to United States Provisional Application No. 62/508,844, filed on May 19, 2017 and titled, "Semi-Automatic Biopsy Needle and Methods of Use," and United States Provisional Application No. 62/536,687, filed on July 25, 2017 and titled, "Semi- Automatic Biopsy Needle and Methods of Use," both of which are hereby incorporated by reference in their entireties.
TECHNICAL FIELD
[0002] The present disclosure relates generally to medical devices. More specifically, the present disclosure relates to biopsy needle assemblies configured for use with tissue biopsy devices, including needle assemblies configured to decrease, minimize, or eliminate axial translation of the needle assemblies at a tissue sample collection site.
BRIEF DESCRIPTION OF THE DRAWINGS
[0003] The embodiments disclosed herein will become more fully apparent from the following description and appended claims, taken in conjunction with the accompanying drawings. The drawings depict only typical embodiments, which embodiments will be described with additional specificity and detail in connection with the drawings in which:
[0004] FIG. 1 is a perspective view of a biopsy needle device.
[0005] FIG. 2 is a perspective view of a cannula of the biopsy needle device of FIG. 1.
[0006] FIG. 2A is a detail view of a distal end portion of the cannula of FIG. 2 taken from detail line 2A.
[0007] FIG. 3 is a perspective view of a trocar of the biopsy needle device of FIG. 1.
[0008] FIG. 3A is a detail view of a distal end portion of the trocar of FIG. 3 taken from detail line 3A.
[0009] FIG. 4 is a perspective view of an actuator of the biopsy needle device of FIG. 1 , shown with a housing lid removed.
[0010] FIG. 5 is a perspective view of an actuator of the biopsy needle device of FIG. 1 , shown with the housing base removed.
[0011] FIG. 6 is a schematic representation of portions of the biopsy needle device actuator of FIG. 1 in a first configuration.
[0012] FIG. 6A is a schematic representation of portions of the cannula and trocar of the biopsy needle device of FIG. 1 in the first configuration correlating to FIG. 6.
[0013] FIG. 7 is a schematic representation of portions of the biopsy needle device actuator of FIG. 1 in a second configuration.
[0014] FIG. 7A is a schematic representation of portions of the cannula and trocar of the biopsy needle device of FIG. 1 in the second configuration correlating to FIG. 7. [0015] FIG. 8 is a schematic representation of portions of the biopsy needle device actuator of FIG. 1 in a third configuration.
[0016] FIG. 8A is a schematic representation of portions of the cannula and trocar of the biopsy needle device of FIG. 1 in the third configuration correlating to FIG. 8.
[0017] FIG. 9 is a schematic representation of portions of the biopsy needle device actuator of FIG. 1 in a fourth configuration.
[0018] FIG. 9A is a schematic representation of portions of the cannula and trocar of the biopsy needle device of FIG. 1 in the fourth configuration correlating to FIG. 9.
[0019] FIG. 10 is a schematic representation of portions of the biopsy needle device actuator of FIG. 1 in a fifth configuration.
[0020] FIG. 10A is a schematic representation of portions of the cannula and trocar of the biopsy needle device of FIG. 1 in the fifth configuration correlating to FIG. 10.
[0021] FIG. 11 is a schematic representation of portions of the biopsy needle device actuator of FIG. 1 in a sixth configuration.
[0022] FIG. 1 1A is a schematic representation of portions of the cannula and trocar of the biopsy needle device of FIG. 1 in the sixth configuration correlating to FIG. 1 1.
[0023] FIG. 12 is a perspective view of a second embodiment of the biopsy needle device.
[0024] FIG. 13 is a perspective view of an actuator of the biopsy needle device of FIG. 12, shown with a housing lid removed.
[0025] FIG. 14 is another perspective view of the actuator of the biopsy needle device of FIG. 12, shown with the housing lid removed.
[0026] FIG. 15 is a cross-sectional view of the actuator of the biopsy needle device of FIG. 12 with the housing lid removed.
[0027] FIG. 16 is a schematic representation of portions of the biopsy needle device actuator of FIG. 12 in a first configuration.
[0028] FIG. 16A is a schematic representation of portions of the cannula and trocar of the biopsy needle device of FIG. 12 in the first configuration correlating to FIG. 16.
[0029] FIG. 17 is a schematic representation of portions of the biopsy needle device actuator of FIG. 12 in a second configuration.
[0030] FIG. 17A is a schematic representation of portions of the cannula and trocar of the biopsy needle device of FIG. 12 in the second configuration correlating to FIG. 17.
[0031] FIG. 18 is a schematic representation of portions of the biopsy needle device actuator of FIG. 12 in a third configuration.
[0032] FIG. 18A is a schematic representation of portions of the cannula and trocar of the biopsy needle device of FIG. 12 in the third configuration correlating to FIG. 18.
[0033] FIG. 19 is a schematic representation of portions of the biopsy needle device actuator of FIG. 12 in a fourth configuration. [0034] FIG. 19A is a schematic representation of portions of the cannula and trocar of the biopsy needle device of FIG. 12 in the fourth configuration correlating to FIG. 19.
[0035] FIG. 20 is a schematic representation of portions of the biopsy needle device actuator of FIG. 12 in a fifth configuration.
[0036] FIG. 20A is a schematic representation of portions of the cannula and trocar of the biopsy needle device of FIG. 12 in the fifth configuration correlating to FIG. 20.
[0037] FIG. 21 is a schematic representation of portions of the biopsy needle device actuator of FIG. 12 in a sixth configuration.
[0038] FIG. 21A is a schematic representation of portions of the cannula and trocar of the biopsy needle device of FIG. 12 in the sixth configuration correlating to FIG. 21.
[0039] FIG. 22 is a schematic representation of portions of the biopsy needle device actuator of FIG. 12 in a seventh configuration.
[0040] FIG. 22A is a schematic representation of portions of the cannula and trocar of the biopsy needle device of FIG. 12 in the seventh configuration correlating to FIG. 22.
DETAILED DESCRIPTION
[0041] Tissue biopsy devices may be configured to retrieve tissue samples from various locations within a patient's body. For example, a biopsy device may comprise a biopsy needle device, or needle assembly, including tubular members, needles, trocars, cutting styli, styli, cannula, and/or other components configured to access and sever a tissue sample in a medical procedure commonly referred to as Core Needle Biopsy. The biopsy needle device may be advanced to a location within the body through the skin of the patient (percutaneous access), through an open incision, or may be advanced through a body lumen or other structure. A portion of the biopsy needle device may be advanced into a lesion or target tissue. Another portion of the biopsy needle device may then be advanced into the lesion or target tissue to sever a tissue sample from the lesion or target tissue. The biopsy needle device may then be withdrawn from the patient, and the tissue sample extracted from the needle device for analysis. Furthermore, a biopsy needle device may comprise a handle or actuator configured to axially displace or deflect at least a portion of the biopsy needle device such that the biopsy needle device cuts or severs the targeted tissue sample.
[0042] Embodiments may be understood by reference to the drawings, wherein like parts are designated by like numerals throughout. It will be readily understood by one of ordinary skill in the art having the benefit of this disclosure that the components of the embodiments, as generally described and illustrated in the figures herein, could be arranged and designed in a wide variety of different configurations. Thus, the following more detailed description of various embodiments, as represented in the figures, is not intended to limit the scope of the disclosure, but is merely representative of various embodiments. While the various aspects of the embodiments are presented in drawings, the drawings are not necessarily drawn to scale unless specifically indicated.
[0043] It will be appreciated that various features are sometimes grouped together in a single embodiment, figure, or description thereof for the purpose of streamlining the disclosure. Many of these features may be used alone and/or in combination with one another.
[0044] The phrases "coupled to" and "in communication with" refer to any form of interaction between two or more entities, including mechanical, electrical, magnetic, electromagnetic, fluid, and thermal interaction. Two components may be coupled to or in communication with each other even though they are not in direct contact with each other. For example, two components may be coupled to or in communication with each other through an intermediate component.
[0045] The directional terms "distal" and "proximal" are given their ordinary meaning in the art. That is, the distal end of a medical device means the end of the device furthest from the practitioner during use. The proximal end refers to the opposite end, or the end nearest the practitioner during use. For example, as specifically applied to the needle portion of the biopsy needle device, the proximal end of the needle refers to the end nearest the handle or actuator, and the distal end refers to the opposite end: the end that may be inserted into a patient.
[0046] "Tissue" is used in its broadest sense, to refer to any tissue or substance within a human body.
[0047] FIGS. 1-22A illustrate different views of a biopsy needle device and related components. In certain views each device may be coupled to, or shown with, additional components not included in every view. Further, in some views only selected components are illustrated, to provide detail into the relationship of the components. Some components may be shown in multiple views, but not discussed in connection with every view. Disclosure provided in connection with any figure is relevant and applicable to disclosure provided in connection with any other figure or embodiment.
[0048] FIG. 1 is a perspective view of a biopsy needle device 100. As illustrated, the biopsy needle device 100 may comprise an outer member or cannula 120, an inner member or trocar 140, and an actuator 160.
[0049] FIG. 2 is a perspective view of the cannula 120 of FIG. 1 , and FIG. 2A is a detail view of a distal end portion 122 of the cannula 120 of FIG. 2 taken through detail line 2A. Referring now to FIGS. 2-2A, in some embodiments the cannula 120 may comprise an elongate tube having the distal end portion 122, a proximal end portion 123 and a lumen 124. The cannula 120 may range in diameter from 22 gauge to 8 gauge and including from 20 gauge to 14 gauge. The lumen 124 of the cannula 120 may be sized to accommodate the positioning of the trocar 140 within the lumen 124. The length of the cannula 120 may range from 5 cm to 100 cm and including from 10 cm to 25 cm. The cannula 120 may be manufactured from a medical- grade stainless steel material. [0050] In some embodiments the proximal end portion 123 of the cannula 120 may be configured to be fixedly coupled to a cannula hub 121 of the actuator (160 of FIG. 1) such that the proximal end of the lumen 124 is open to allow for passage of the trocar 140 into the lumen 124. The cannula 120 may be fixedly coupled to the cannula hub 121 using any suitable techniques including bonding, welding, overmolding, press fit, etc. The outside surface of the proximal end portion 123 of the cannula 120 may be modified to enhance the coupling of the cannula 120 to the cannula hub 121. For example, the surface may be chemically or mechanically etched or textured to roughen the surface in order to enhance the adhesion of an adhesive or plastic. Alternatively, the surface may be chemically modified to enhance the adhesion of the adhesive or plastic.
[0051] The distal end portion 122 of the cannula 120 may comprise a bevel 125. The bevel 125 may be configured to cut or sever tissue as the cannula 120 slides along the longitudinal axis of the trocar 140. The bevel 125 may have an angle of from 5 degrees to 180 degrees and including from 25 degrees to 30 degrees. The bevel may be configured to have other undulating surfaces configured to be sharp to cut or sever tissue. The edges of the bevel 125 may be sharp and may be configured to cut or sever tissue.
[0052] In certain embodiments the cannula 120 may comprise a plurality of indicia 135 configured to indicate to the practitioner a distance that the cannula 120 and the trocar 140 have advanced into a body tissue (for clarity, not all indicia 135 are labeled). For example, each indicium 135 may be positioned 1 cm apart; thus, if the practitioner displaces the cannula 120 and the trocar 140 into a body tissue up to the third indicium 135 from a distal end portion 142 of the trocar 140, it may indicate to the practitioner that approximately 3 cm of the trocar 140 and cannula 120 has been displaced into the body tissue. In some embodiments, the indicia 135 may comprise a plurality of substantially evenly spaced annular lines, marks, or grooves on an outside surface of the cannula 120. In certain embodiments, the indicia 135 may comprise a plurality of tick marks, or the indicia 135 may not be evenly spaced.
[0053] In certain embodiments, a portion or portions of at least one of the components of the biopsy needle device 100, including, but not limited to, the cannula 120 and/or the trocar 140, may comprise a radiopaque material and/or an echogenic material. A radiopaque material (for example, in combination with computed tomography or x-ray) may aid the practitioner in directing or displacing the biopsy needle device 100 to a desired or predetermined position within the body tissue of the patient. Bismuth, gold, or other radiopaque materials, alone or in combination, may be used. An echogenic material or surface (for example, in combination with ultrasound) may analogously aid the practitioner in directing or displacing the needle device 100 to a desired or predetermined position within the body tissue of the patient. Surface disruptions such as texturing, grooves, dimples, or a combination of materials may also be used. [0054] FIG. 3 is a perspective view of the trocar 140 of FIG. 1 , and FIG. 3A is a detail view of the distal end portion 142 of the trocar 140 of FIG. 3 taken from detail line 4A. Referring to FIGS. 3-3A, in some embodiments the trocar 140 may comprise an elongate rod having the distal end portion 142 and a proximal end portion 143. Alternatively, the trocar 140 may comprise an elongate tube having a lumen. The trocar 140 outer diameter may be configured such that the trocar 140 may be slidingly disposed within the lumen 124 of the cannula 120. The trocar 140 may range in diameters and lengths to match the cannula for optimized tissue cutting. The trocar 140 may be manufactured from a medical-grade stainless steel material.
[0055] The distal end portion 142 of the trocar 140 may comprise a bevel 156 and a notch 157. The bevel 156 may be configured to penetrate tissue. The bevel 156 may be configured as any type of tissue-penetrating bevel utilized in medical devices comprising a needle or trocar. For example, the bevel 156 may be of a type such as Tri-cut, Whitacre, pencil point, Seldinger, Sprotte, etc.
[0056] In some embodiments the notch 157 may be located proximal of the bevel 156. The length of the notch 157 may range from 5 millimeters to 35 millimeters and including embodiments where it is 20 millimeters. The depth of the notch 157 may be approximately 50% of the outer diameter of the trocar 140. A base 144 of the notch 157 may be planar. Alternatively, the notch 157 may comprise a trough having side walls and a concave base such as would be created by removing a portion of a wall of a hollow trocar. The notch 157 may be configured to capture and retain the tissue sample cut or severed by the cannula (120 of FIG. 2). For example, the trocar 140 may be inserted into the target tissue or lesion. A portion of the target tissue or lesion may collapse into the notch 157. The cannula (120 of FIG. 2) may then be advanced over the trocar 140, cutting or severing the portion of the target tissue or the lesion from the surrounding tissue. The cut or severed tissue sample may be captured and retained within the notch 157 and the cannula lumen (124 of FIG. 4).
[0057] Referring to FIGS. 1 , 3, and 3A, in some embodiments the proximal end portion 143 of the trocar 140 may be configured to be fixedly coupled to the actuator 160. The trocar 140 may be fixedly coupled to the actuator 160 using any suitable technique including bonding, welding, overmolding, press fit, etc. The outside surface of the proximal end portion 143 of the trocar 140 may be modified to enhance the coupling of the trocar 140 to the actuator 160. For example, the surface may be chemically or mechanically etched or textured to roughen the surface in order to enhance the adhesion of an adhesive or plastic. Alternatively, the surface may be chemically modified to enhance the adhesion of the adhesive or plastic.
[0058] The cannula 120 and trocar 140 are configured such that when the biopsy needle device 100 is activated, the cannula 120 has motion relative to the trocar 140 exposing the notch 157 for tissue to prolapse into and returning to the initial position, thereby cutting or severing the tissue in the notch 157. Referring to FIGS. 4 and 5, in some embodiments the actuator 160 may comprise a housing base 180, the housing lid 181 , a trigger 161 , the cannula hub 121 , a spring 162 and a linear displacement mechanism 163. The housing base 180 and the housing lid 181 may be configured to be coupled together utilizing various techniques, such as, snap fit, bonding, welding, etc., to enclose the components of the actuator 160. The actuator 160 may be configured to be held in the hand of a practitioner such that the biopsy needle device 100 may be manipulated during a medical procedure such as the Core Needle Biopsy procedure. The external surface of the housing base 180 and the housing lid 181 may comprise grip-enhancing features such as finger grips 177, bumps, dimples, grooves, ribs, other textures, overmolded soft material, etc. The housing base 180 and the housing lid 181 may be formed from a rigid plastic material and may be opaque or translucent.
[0059] In certain embodiments the linear displacement mechanism 163 may comprise a linear gear 164, a circular gear 165 and a linkage member 166. The linear gear 164 may comprise a side wall 168, a gear wall 170 and a cavity 171. The gear wall 170 may comprise gear teeth 172 configured to engage gear teeth 182 of the circular gear 165. The gear teeth 172 spacing and circular gear 165 diameter may be configured to adjust the force and speed of the movement of the mechanism 163. The gear teeth 172 of the linear gear 164 may be spaced along a longitudinal axis of the linear gear 164 from a distal end to a proximal end of the gear wall 170. The side wall 168 of the linear gear 164 may comprise a distal slot 173, a middle slot 174 and a proximal slot 175. The distal slot 173 may be configured to be engaged by the trigger 161 to move the linear gear 164 from a distal location to a proximal location when cocking the actuator 160. The middle slot 174 may be configured to engage a locking hook 153 of the housing base 180 when the linear gear 164 is in the proximal position and the actuator 160 cocked. The proximal slot 175 may be configured to engage the locking hook 153 when the linear gear 164 is in the distal position. The cavity 171 may be open at a proximal end and closed at a distal end. The spring (not shown) may be partially disposed within the cavity 171.
[0060] The circular gear 165 may comprise the gear teeth 182 and a torque converter 183. The circular gear 165 may be circular in shape with the gear teeth 182 spaced around a periphery. The gear teeth 182 may be configured to engage the gear teeth 172 of the linear gear 164 such that linear displacement of the linear gear 164 may be translated into rotational motion of the circular gear 165. For example, the linear gear 164 may be displaced by the force of the spring 162 from a proximal position to a distal position following activation of the actuator 160. The linear displacement of the linear gear 164 may result in rotational movement of the circular gear 165 when the gear teeth 172 of the linear gear 164 engage the gear teeth 182 of the circular gear 165. The circular gear 165 may be positioned within a circular pocket 184 comprising a wall 186. The circular pocket 184 may be partially open such that a portion of the wall 186 of the circular pocket 184 may be removed. Such an opening 185 in the circular pocket 184 may be configured to permit the engagement of the linear gear teeth 172 with the circular gear teeth 182.
[0061] In some embodiments, the torque converter 183 may be generally wedge shaped and comprise a circular passage 189 within the wide portion of the torque converter 183 and a mushroom shaped stud 190 near the narrow end of the torque converter 183. The torque converter 183 may be fixedly coupled to the circular gear 165. The coupling may be accomplished utilizing a pin 187 frictionally positioned within a bore 188 of the circular gear 165 and the circular passage 189 of the torque converter 183. Alternatively, the torque converter 183 and the circular gear 165 may be coupled utilizing any suitable technique, such as bonding, welding, etc. The distance between the center of the passage 189 and the center of the stud 190 may be approximately equivalent to one-half the length of the notch 157. For example, upon activation of the actuator 160, the distal end of the cannula 120 may move from a position distal to the notch 157 to a position proximal to the notch 157 and back to a position distal to the notch 157 as the torque converter 183 may rotate 360 degrees. The desired distance of proximal and distal movement of the distal end of the cannula 120 may be approximately the length of the notch 157. The torque converter 183 may rotate 180 degrees to move the distal end of the cannula 120 the desired proximal distance. The length of the torque converter 183 may be adjusted to accommodate different cannula 120 travel distances.
[0062] The torque converter 183 may be rotatably coupled to the linkage member 166. The linkage member 166 may comprise a proximal circular passage 191 and a distal circular passage 192. The proximal passage 191 may be configured to couple with the stud 190 of the torque converter 183 such that the linkage member 166 is permitted to rotate around the stud 190. The stud 190 may be split longitudinally such that the diameter of the stud 190 may decrease to permit passage of the mushroom shaped top of the stud 190 to pass through the proximal passage 191. The distal passage 192 may be configured to rotatably couple with a mushroom shaped stud (or snap) 126 of the cannula hub 121.
[0063] In some embodiments, the cannula hub 121 may comprise a body 127, a bore 128, the stud 126 and a rail 129. The stud 126 may project radially outward from the body 127 and be configured with a mushroom shaped end. The stud 126 may be split longitudinally such that the diameter of the stud 126 may decrease as the mushroom shaped end passes through the passage 192 of the linkage member 166. The rail 129 may extend radially outward from the body 127 opposite from the stud 126. The rail 129 may be slidingly coupled to guide rails 176 of the housing base 180. The bore 128 may be configured for positioning and coupling of the proximal end of the cannula 120 such that the trocar 140 may be disposed within the lumen 124 of the cannula 120.
[0064] The coupling of the cannula hub 121 to the torque converter 183 may translate the rotational movement of the torque converter 183 into linear movement of the cannula hub 121 and cannula 120. For example, the torque converter 183 may rotate 180 degrees in one direction as the actuator 160 may be cocked. As the torque converter 183 rotates 360 degrees, the linkage between the torque converter 183 and the cannula hub 121 may be configured to move the cannula hub 121 from a distal position to a proximal position and then back to the distal position. When the actuator 160 is activated, the torque converter 183 may rotate 360 degrees in an opposite direction resulting in the cannula hub 121 moving from the distal position to a proximal position and back to a distal position.
[0065] In certain embodiments, the trigger 161 comprises an activation flange 150, a cocking hook 151 and an activation hook 152. The trigger 161 may be partially disposed within the housing base 180. The activation flange 150 may be configured to permit the practitioner to grip the activation flange 150 and displace the trigger 161 proximally to cock the actuator 160. The activation flange 150 may also be configured to permit the practitioner to displace the trigger 161 distally to activate the actuator 160. A proximal face of the activation flange 150 may comprise grip-enhancing features, such as ribs, bumps, dimples, etc. The cocking hook 151 may be configured to engage the distal slot 173 of the linear gear 164 such that the cocking hook 151 may engage the distal slot 173 when the trigger 161 is displaced proximally, and the cocking hook 151 may disengage the distal slot 173 when the trigger 161 is displaced distally. The activation hook 152 may engage a post 154 coupled to the locking hook 153 of the housing base 180. The locking hook 153 may engage the middle slot 174 of the linear gear 164 such that the linear gear 164 may be locked in a cocked or proximal position. Distal displacement of the trigger 161 may result in engagement of the activation hook 152 with the post 154 such that the activation hook 152 may displace the post 154 and the locking hook 153 away from the linear gear 164. The locking hook 153 may be disengaged from the middle slot 174, and the linear gear 164 may be displaced distally.
[0066] In some embodiments, an introducer cannula (not shown) may be used with the biopsy needle device 100 disclosed herein. The introducer cannula may comprise an outer cannula sized to permit passage of the biopsy needle, a trocar slidingly positioned within the cannula and extending beyond the distal end of the cannula, and a depth stop to facilitate positioning of the introducer at the desired insertion depth. In use with the biopsy needle device 100, the introducer cannula assembly may be inserted into a patient's tissue, with the distal end of the introducer cannula positioned adjacent to the targeted tissue. The depth stop may be used to restrict insertion depth to a predetermined depth. The trocar may be removed. A portion of the biopsy needle device 100 may be inserted through the introducer cannula and into the targeted tissue. A tissue sample may be severed from the targeted tissue and retained within the biopsy needle device 100. The biopsy needle device 100 may be withdrawn from the targeted tissue and the introducer cannula. The tissue sample may be extracted from the biopsy needle device 100. If additional tissue samples are desired from the same target tissue, the process may be repeated. The introducer cannula is removed from the patient when all desired tissue samples have been collected.
[0067] FIGS. 6-11 A are schematic in nature. In other words, the figures show the functional and operational relationships of portions of the biopsy needle device 100 upon use in a patient, but the figures are not intended to indicate any particular structure or spatial disposition of any tissue, organ, body component, or group of body components in the patient. Additionally, the schematic representations herein may be drawn to show internal tissues and/or organs of the patient without explicitly designating cross-sections or cutaways of the tissues and/or organs. For example, a body tissue may be schematically shown with the biopsy needle device 100 disposed therein without indicating a cross-section portion or cutaway of a portion of the body tissue. FIGS. 6 and 6A are schematic representations of a side view of portions of the biopsy needle device 100 of FIG. 1 in a first configuration. FIG. 6A represents the relative positions of distal portions of the needle and cannula correlated with the actuator configuration of FIG. 6. FIGS. 7 and 7A are schematic representations of a side view of portions of the biopsy needle device 100 of FIG. 1 in a second configuration. FIG. 7A represents the relative positions of distal portions of the needle and cannula correlated with the actuator configuration of FIG. 7. FIGS. 8 and 8A are schematic representations of a side view of portions of the biopsy needle device 100 of FIG. 1 in a third configuration. FIG. 8A represents the relative positions of distal portions of the needle and cannula correlated with the actuator configuration of FIG. 8. FIGS.
9 and 9A are schematic representations of a side view of portions of the biopsy needle device 100 of FIG. 1 in a fourth configuration. FIG. 9A represents the relative positions of distal portions of the needle and cannula correlated with the actuator configuration of FIG. 9. FIGS.
10 and 10A are schematic representations of a side view of portions of the biopsy needle device 100 of FIG. 1 in a fifth configuration. FIG. 10A represents the relative positions of distal portions of the needle and cannula correlated with the actuator configuration of FIG. 10. FIGS.
1 1 and 11A are schematic representations of a side view of portions of the biopsy needle device 100 of FIG. 1 in a sixth configuration. FIG. 1 1A represents the relative positions of distal portions of the needle and cannula correlated with the actuator configuration of FIG. 1 1.
[0068] FIG. 6 illustrates the relative locations of the linear gear 164, the torque converter 183, the cannula hub 121 and the trigger 161 within the actuator 160 in the first configuration. The first configuration may be prior to cocking of the actuator 160 by the practitioner. As can be seen, the cannula hub 121 may be positioned at the distal end portion of the housing base 180. The linear gear 164 may be positioned at a distal position. The torque converter 183 may be oriented such that the narrow portion may be directed distally. The trigger 161 may be positioned in a distal position such that the cocking hook 151 engages the distal slot 173 of the linear gear 164. [0069] FIG. 6A illustrates distal portions of the cannula 120 and the trocar 140 of the needle device 100 in the first configuration. As can be seen, the trocar bevel 156 may extend beyond the distal end of the cannula 120. The cannula bevel 125 may be located proximal to and adjacent to the trocar bevel 156.
[0070] FIG. 7 illustrates the relative locations of the linear gear 164, the torque converter 183, the cannula hub 121 and the trigger 161 within the actuator 160 in the second configuration. The second configuration may be approximately halfway through cocking of the actuator 160 by the practitioner. An intermediate latch (not shown) may be configured into the linear gear 164 as to be able to hold this position. As can be seen, the cannula hub 121 may be displaced proximally and may be positioned at a proximal position. The linear gear 164 may be displaced proximally and positioned at an intermediate position. The torque converter 183 may be rotated in the direction of the arrow and oriented such that the narrow portion may be directed proximally. The trigger 161 may be displaced proximally and may be positioned in an intermediate position. Following collection of a tissue sample 159, the actuator 160 may be reset to the second configuration to retrieve the tissue sample 159 from the notch 157.
[0071] FIG. 7A illustrates distal portions of the cannula 120 and the trocar 140 of the needle device 100 in the second configuration. The cannula bevel 125 may be displaced proximally and may be positioned proximal to the notch 157 such that the cannula 120 does not cover the notch 157.
[0072] FIG. 8 illustrates the relative locations of the linear gear 164, the torque converter 183, the cannula hub 121 and the trigger 161 within the actuator 160 in the third configuration. The third configuration may be subsequent to cocking of the actuator 160 and insertion of the trocar 140 and cannula 120 into the lesion 158 by the practitioner. As can be seen, the cannula hub 121 may be displaced distally and may be positioned at the distal end portion of the housing base 180. The linear gear 164 may be further displaced proximally and may be positioned at a proximal position. The torque converter 183 may be further rotated in the direction of the arrow and may be oriented such that the narrow portion may be directed distally. The trigger 161 may be further displaced proximally and may be positioned in a proximal position.
[0073] FIG. 8A illustrates distal portions of the cannula 120 and the trocar 140 of the needle device 100 in the third configuration. As can be seen, the trocar bevel 156 may extend beyond the cannula bevel 125 and the notch 157 may be covered by the cannula 120. The distal end of the cannula 120 may be displaced distally and may be positioned proximal to and adjacent to the trocar bevel 156.
[0074] FIG. 9 illustrates the relative locations of the linear gear 164, the torque converter 183, the cannula hub 121 and the trigger 161 within the actuator 160 in the fourth configuration. The fourth configuration may occur as the actuator 160 is activated by the practitioner. As can be seen, the cannula hub 121 may be positioned at the distal end portion of the housing base 180. The linear gear 164 may be positioned at a proximal position. The torque converter 183 may be oriented such that the narrow portion may be directed distally. The trigger 161 may be displaced distally and may be positioned in an intermediate position such that the activation hook 152 may displace the post 154, and the locking hook 153 may disengage from the slot 174 of the linear gear 164.
[0075] FIG. 9A illustrates distal portions of the cannula 120 and the trocar 140 of the needle device 100 in the fourth configuration. As can be seen, the trocar bevel 156 may extend beyond the distal end of the cannula 120. The cannula bevel 125 may be located proximal to and adjacent to the trocar bevel 156.
[0076] FIG. 10 illustrates the relative locations of the linear gear 164, the torque converter 183, the cannula hub 121 and the trigger 161 within the actuator 160 in the fifth configuration. The fifth configuration may be approximately halfway through activation of the actuator 160. As can be seen, the cannula hub 121 may be displaced proximally and may be positioned at a proximal position. The linear gear 164 may be displaced distally and may be positioned at an intermediate position. The torque converter 183 may be rotated in the direction of the arrow and may be oriented such that the narrow portion may be directed proximally. It is to be understood that the rotation of the torque converter 183 is a continuous motion for approximately 360 degrees. That is, the rotational motion of the torque converter 183 does not stop after rotating 180 degrees. Rather, the torque converter 183 has continuous rotational movement for approximately 360 degrees. The fifth configuration represents an instant of time as the torque converter 183 continuously rotates. The trigger 161 may be positioned in an intermediate position.
[0077] FIG. 10A illustrates distal portions of the cannula 120 and the trocar 140 of the needle device 100 in the fifth configuration. The cannula bevel 125 may be displaced proximally and may be positioned proximal to the notch 157 such that the cannula 120 does not cover the notch 157. The tissue sample 159 may collapse or prolapse into the notch 157 and may at least partially fill the notch 157.
[0078] FIG. 1 1 illustrates the relative locations of the linear gear 164, the torque converter 183, the cannula hub 121 and the trigger 161 within the actuator 160 in the sixth configuration. The sixth configuration may be subsequent to activation of the actuator 160 and severing of the tissue sample 159. As can be seen, the cannula hub 121 may be displaced distally and may be positioned at a distal position. The linear gear 164 may be displaced distally and may be positioned at a distal position. The torque converter 183 may be rotated in the direction of the arrow and may be oriented such that the narrow portion may be directed distally. The trigger 161 may be positioned in a distal position.
[0079] FIG. 1 1A illustrates distal portions of the cannula 120 and the trocar 140 of the needle device 100 in the sixth configuration. As can be seen, the trocar bevel 156 may extend beyond the distal end of the cannula 120. The cannula bevel 125 may be displaced distally such that the bevel 125 may cut or sever the tissue sample 159 from the lesion 158, and the cannula 120 may cover the notch 157 such that the tissue sample 159 may be retained in the notch 157. The distal end of the cannula 120 may be positioned proximal to and adjacent to the trocar bevel 156.
[0080] In some embodiments, the biopsy needle device 100 may permit the practitioner to perform the Core Needle Biopsy procedure. The location of the tissue or lesion to be biopsied within the patient may be identified utilizing known diagnosis techniques such as computed tomography, magnetic resonance imaging, x-ray, fluoroscopy, ultrasound, etc. The patient may be positioned and prepped for the Core Needle Biopsy procedure. The practitioner may obtain the sterilized biopsy needle device 100 configured with the desired trocar and cannula length and diameter and the desired length of notch 157 such that a desired sample length may be collected. The practitioner may prep the biopsy needle device 100 by cocking the actuator 160. The actuator 160 may be cocked by displacing the activation flange 150 proximally. The cocking hook 151 may engage the distal slot 173 of the linear gear 164 displacing the linear gear 164 proximally until the locking hook 153 engages the middle slot 174, and the spring 162 may be at least partially compressed. The practitioner may insert the cannula 120 and the trocar 140 through the skin and into the lesion of the patient while holding the actuator 160 in a hand. Alternatively, the cannula 120 and the trocar 140 may be inserted into the lesion of a patient utilizing an introducer cannula that was previously inserted into the patient. The practitioner may confirm the position of the distal end portions 122, 142 of the cannula 120 and trocar 140 utilizing known techniques such as ultrasound, fluoroscopy, computed tomography, etc. The practitioner may activate the actuator 160 by applying a force to the activation flange 150 resulting in the activation hook 152 engaging the post 154 and disengaging the locking hook 153 from the middle slot 174 of the linear gear 164. The spring 162 may decompress and the linear gear 164 may be displaced distally. The gear teeth 172 of the linear gear 164 may engage the gear teeth 182 of the circular gear 165, causing the circular gear 165 to rotate. The torque converter 183 coupled to the circular gear 165 may rotate approximately 360 degrees in a continuous motion. The rotational movement of the torque converter 183 may be translated into an initial proximal and then distal linear movement of the cannula hub 121 and cannula 120 through the linkage member 166. The torque converter 183 may rotate 180 degrees and the cannula hub 121 and cannula 120 may be displaced proximally to a maximum proximal position. The distal end of the cannula 120 may be located proximally of the notch 157 of the trocar 140. The notch 157 may be exposed to lesion tissue. A portion of the lesion tissue may collapse into the notch 157. The torque converter 183 may complete the 360 degree rotation, and the cannula hub 121 and the cannula 120 may be displaced to a distal position. The distal end of the cannula 120 may slide over the notch 157 and cut or sever the portion of the lesion or tissue sample 159 within the notch 157 from the surrounding lesion tissue. The tissue sample 159 may be captured and retained within the notch 157 by the cannula 120. The cannula 120 and the trocar 140 may be removed from the patient's tissue. The tissue sample 159 may be extracted from the biopsy needle device 100 and analyzed using known techniques.
[0081] Referring to FIGS. 12-15, an embodiment of the actuator 260 of a biopsy needle device 200 is shown. Like numbers for like components of the biopsy needle device 100 as described above will be utilized to describe the biopsy needle device 200. A trocar 240 and a cannula 220 are identical to the trocar 140 and the cannula 120 described above and illustrated in FIGS. 2-3A are thus not described in detail with the other components of the biopsy needle device 200, though disclosure relating to the structure, function, and other aspects of these components recited in connection with the biopsy needle device 100 may be analogously applied to the components of the biopsy needle device 200.
[0082] In some embodiments the actuator 260 may comprise a housing base 280, a housing lid 281 , a trigger 261 , a cannula hub 221 , and a torsional spring mechanism 263. The housing base 280 and the housing lid 281 may be configured to be coupled together utilizing various techniques, such as pins and sockets, snap fit, bonding, welding, etc., to enclose the components of the actuator 260. The actuator 260 may be configured to be held in the hand of a practitioner such that the biopsy needle device 200 may be manipulated during a medical procedure such as the Core Needle Biopsy procedure. The external surface of the housing base 280 and the housing lid 281 may comprise grip-enhancing features such as finger grips 277, bumps, dimples, grooves, ribs, other textures, overmolded soft material, etc. The housing base 280 and the housing lid 281 may be formed from a rigid plastic material and may be opaque or translucent.
[0083] In certain embodiments the torsional spring mechanism 263 may comprise a torsional spring 264, a torque converter 283, a flexible member 293 and a linkage member 266. The torsional spring 264 may comprise a coil portion 294, a first end 295, and a second end 296. The coil portion 294 may be disposed within an annular pocket 284 of the base 280. The first end 295 may extend away from the annular pocket 284 and be coupled to the base 280 at an "L" shaped protrusion 297. The first end 295 is configured to remain in a fixed position relative to the base 280. The second end 296 may also extend away from the annular pocket 284 and be coupled to the torque converter 283 at a slot 298. The second end 296 is configured to rotate with the torque converter 283 such that the torsional spring 264 may be wound and unwound. The torsional spring 264 may be made from any suitable spring type material, such as brasses, bronzes, carbon steels, Inconel alloys, stainless steels, titanium alloys, etc.
[0084] In some embodiments, the torque converter 283 may comprise a first arm 245 and a second arm 246. The arms 245, 246 may extend from a central portion 247. The arms 245, 246 may be configured at 180° from one another. A "C" shaped catch 239 may be located at the end of arms 245, 246. The catch 239 may be configured to releasably couple with a post 255 of the base 280. The central portion 247 may comprise a bore 289 configured to fixedly couple with a pin 287. The pin 287 is configured to rotationally couple with a recess 248 at the core of the annular pocket 284. The torque converter 283 may further comprise a third arm 249 extending from the central portion 247 between the first arm 245 and the second arm 246. The third arm 249 may comprise a mushroom shaped stud 290 configured to couple with the linkage member 266.
[0085] The torque converter 283 may be rotatably coupled to the linkage member 266. The linkage member 266 may comprise a proximal circular passage 291 and a distal circular passage 292. The proximal passage 291 may be configured to couple with the stud 290 of the torque converter 283 such that the linkage member 266 is permitted to rotate around the stud 290. The stud 290 may be split longitudinally such that the diameter of the stud 290 may decrease to permit passage of the mushroom shaped top of the stud 290 to pass through the proximal passage 291. The distal passage 292 may be configured to rotatably couple with a mushroom shaped stud 226 of the cannula hub 221.
[0086] In some embodiments, the cannula hub 221 may comprise a body 227, a bore 228, the stud 226 and a rail 229. The stud 226 may project radially outward from the body 227 and be configured with a mushroom shaped end. The stud 226 may be split longitudinally such that the diameter of the stud 226 may decrease as the mushroom shaped end passes through the distal passage 292 of the linkage member 266. The rail 229 may extend radially outward from the body 227 opposite from the stud 226. The rail 229 may be slidingly coupled to guide rails 276 of the housing base 280. The bore 228 may be configured for positioning and coupling of the proximal end of the cannula 220 such that the trocar 240 may be disposed within a lumen 224 of the cannula 220.
[0087] The coupling of the cannula hub 221 to the torque converter 283 is configured to translate the rotational movement of the torque converter 283 into linear movement of the cannula hub 221 and cannula 220. For example, the torque converter 283 may rotate 360 degrees in one direction as the actuator 260 is cocked. As the torque converter 283 rotates 360 degrees, the linkage between the torque converter 283 and the cannula hub 221 is configured to move the cannula hub 221 from a distal position to a proximal position and then back to the distal position. When the actuator 260 is activated, the torque converter 283 may rotate 360 degrees in an opposite direction resulting in the cannula hub 221 moving from the distal position to a proximal position and back to a distal position resulting in the cannula 220 moving proximally over the trocar 240 to expose a notch 257 to collect a tissue sample and then moving distally to cover the notch 257 and retain the tissue sample. [0088] In certain embodiments, the trigger 261 comprises an activation flange 250, a first arm 236, and a second arm 237. The trigger 261 may extend proximally from the base 280 and the arms 236, 237 may be partially disposed within the base 180. The activation flange 250 may be configured to permit the practitioner to grip the activation flange 250 and displace the trigger 261 proximally to cock the actuator 260. The activation flange 250 may also be configured to permit the practitioner to displace the trigger 261 distally to activate the actuator 260. A proximal face of the activation flange 250 may comprise grip-enhancing features, such as ribs, bumps, dimples, etc. A distal face of the activation flange 250 may comprise a loop 238 configured to fixedly couple with the flexible member 293.
[0089] The first arm 236 may be configured to engage a flange 230 that extends from the post 255 of the base 280. A cantilever beam 231 may couple the post 255 to the base 280 such that the post 255 is movable distally and/or proximally. The post 255 is configured to be deflected when the first arm 236 moves distally and engages the flange 230. The post 255 is also configured to return to a non-deflected position when the first arm 236 no longer engages the flange 230 due to the elasticity of the material of the cantilever beam 231. The second arm 237 may be configured to guide the trigger 261 as it is moved proximally and distally.
[0090] In some embodiments, the flexible member 293 may be coupled to the torque converter 283 at one end and the trigger 261 at another end. The flexible member 293 may be coiled around a portion of the torque converter 283 such that when tension is applied to the flexible member 293 the flexible member uncoils, the torque converter 283 rotates, and the torsional spring 264 winds. When the tension is released and the actuator 260 is activated, the torsional spring 264 unwinds, causing the torque converter 283 to rotate in the opposite direction, and the flexible member 293 winds around a portion of the torque converter 283. The flexible member 293 may be fixedly coupled to the loop 238 of the trigger 261 such that when the trigger 261 is moved proximally to cock the actuator 260, tension is applied to the flexible member 293 resulting in rotation of the torque converter 283. The flexible member 293 may be coupled to the loop 238 utilizing techniques known in the art, such as tying, boding, welding, etc. The flexible member 293 may be formed from flexible materials such as braided threads, monofilament plastics, metals wires, etc.
[0091] FIGS. 16-22A are schematic in nature. In other words, the figures show the functional and operational relationships of portions of the biopsy needle device 200 upon use in a patient, but the figures are not intended to indicate any particular structure or spatial disposition of any tissue, organ, body component, or group of body components in the patient. Additionally, the schematic representations herein may be drawn to show internal tissues and/or organs of the patient without explicitly designating cross-sections or cutaways of the tissues and/or organs. For example, a body tissue may be schematically shown with the biopsy needle device 200 disposed therein without indicating a cross-section portion or cutaway of a portion of the body tissue. FIG. 16 is a schematic representation of a side view of portions of the actuator 260 of FIGS. 13-15 in a first configuration. FIG. 16A represents the relative positions of the distal portions of the trocar 240 and cannula 220 correlated with the actuator configuration of FIG. 16. FIG. 17 is a schematic representation of a side view of portions of the actuator 260 of FIGS. 13-15 in a second configuration. FIG. 17A represents the relative positions of the proximal portions of the trocar 240 and cannula 220 correlated with the actuator 260 configuration of FIG. 17. FIG. 18 is a schematic representation of a side view of portions of the actuator 260 of FIGS. 13-15 in a third configuration. FIG. 18A represents the relative positions of the distal portions of the trocar 240 and cannula 220 correlated with the actuator configuration of FIG. 18. FIG. 19 is a schematic representation of a side view of portions of the actuator 260 of FIGS. 13-15 in a fourth configuration. FIG. 19A represents the relative positions of the distal portions of the trocar 240 and cannula 220 correlated with the actuator configuration of FIG. 19. FIG. 20 is a schematic representation of a side view of portions of the actuator 260 of FIGS. 13-15 in a fifth configuration. FIG. 20A represents the relative positions of the distal portions of the trocar 240 and cannula 220 correlated with the actuator configuration of FIG. 20. FIG. 21 is a schematic representation of a side view of portions of the actuator 260 of FIGS. 13-15 in a sixth configuration. FIG. 21A represents the relative positions of the distal portions of the trocar 240 and cannula 220 correlated with the actuator configuration of FIG. 21. FIG. 22 is a schematic representation of a side view of portions of the actuator 260 of FIGS. 13-15 in a seventh configuration. FIG. 22A represents the relative positions of the distal portions of the trocar 240 and cannula 220 correlated with the actuator configuration of FIG. 22.
[0092] FIG. 16 illustrates the relative locations of the torsional spring 264, the torque converter 283, the cannula hub 221 and the trigger 261 within the actuator 260 in the first configuration. The first configuration may be prior to cocking of the actuator 260 by the practitioner. As can be seen, the cannula hub 221 may be positioned at the distal end portion of the housing base 280. The torsional spring 264 may be in an unwound configuration. The torque converter 283 may be oriented such that the third arm 249 may be directed distally and the catch 239 of the first arm 245 is coupled with the post 255. The trigger 261 may be positioned in an intermediate position such that the distal end of the trigger first arm 236 is adjacent to a ramp 234.
[0093] FIG. 16A illustrates distal portions of the cannula 220 and the trocar 240 of the biopsy needle device 200 in the first configuration. As can be seen, a trocar bevel 256 may extend beyond the distal end of the cannula 220. A cannula bevel 225 may be located proximal to and adjacent to the trocar bevel 256.
[0094] FIG. 17 illustrates the relative locations of the torsional spring 264, the torque converter 283, the cannula hub 221 , the trigger 261 and the flexible member 293 within the actuator 260 in the second configuration. The second configuration may be approximately halfway through cocking of the actuator 260 by the practitioner. As can be seen, the cannula hub 221 may be positioned at a proximal position. The torsional spring 264 may be in a partly wound configuration. The flexible member 293 may be partly uncoiled causing the torque converter 283 to rotate in the direction of the arrow. The torque converter 283 may be oriented such that the third arm 249 may be directed proximally and the catch 239 of the second arm 246 may be deflecting the post 255. The practitioner may feel slight resistance and/or hear a clicking sound as the second arm 246 passes and deflects the post 255. The trigger 261 may be positioned in an intermediate position.
[0095] FIG. 17A illustrates distal portions of the cannula 220 and the trocar 240 of the biopsy needle device 200 in the second configuration. The cannula bevel 225 may be displaced proximally and may be positioned proximal to the notch 257 such that the cannula 220 does not cover the notch 257.
[0096] FIG. 18 illustrates the relative locations of the torsional spring 264, the torque converter 283, the cannula hub 221 and the trigger 261 within the actuator 260 in the third configuration. The third configuration may be subsequent to cocking of the actuator 260. As can be seen, the cannula hub 221 may be positioned at a distal position. The torsional spring 264 may be in a fully wound configuration. The flexible member 293 may be fully uncoiled, causing the torque converter 283 to rotate in the direction of the arrow. The torque converter 283 may be oriented such that the third arm 249 may be directed distally and the catch 239 of the first arm 245 may be coupled with the post 255. The trigger 261 may be positioned in a proximal position.
[0097] FIG. 18A illustrates portions of the cannula 220 and the trocar 240 of the biopsy needle device 200 in the third configuration. As can be seen, the trocar bevel 256 may extend beyond the cannula bevel 225. The cannula bevel 225 may be displaced distally and may be positioned proximal to and adjacent to the trocar bevel 256.
[0098] FIG. 19 illustrates the relative locations of the torsional spring 264, the torque converter 283, the cannula hub 221 , the trigger 261 , and the flexible member 293 within the actuator 260 in the fourth configuration. The fourth configuration may occur as the actuator 260 is activated by the practitioner. As can be seen, the cannula hub 221 may be positioned at a distal position. The torsional spring 264 may be in a fully wound configuration. The flexible member 293 may be fully uncoiled. The torque converter 283 may be oriented such that the third arm 249 may be directed distally. The trigger 261 may be positioned in an fully distal position such that the distal end of the first arm 236 of the trigger 261 has engaged the ramp 234 and the flange 230 to deflect the post 255. The catch 239 of the first arm 245 of the torque converter 283 may decouple from the post 255, allowing the torque converter 283 to rotate, in the direction of the arrow, due to the spring force of the torsional spring 264.
[0099] FIG. 19A illustrates portions of the cannula 220 and the trocar 240 of the biopsy needle device 200 in the fourth configuration. As can be seen, the trocar bevel 256 may extend beyond the distal end of the cannula 220. The cannula bevel 225 may be located proximal to and adjacent to the trocar bevel 256.
[00100] FIG. 20 illustrates the relative locations of the torsional spring 264, the torque converter 283, the cannula hub 221 , the trigger 261 and the flexible member 293 within the actuator 260 in the fifth configuration. The fifth configuration may be approximately halfway through activation of the actuator 260. As can be seen, the cannula hub 221 may be positioned at a proximal position. The torsional spring 264 may be in a partly unwound configuration. The flexible member 293 may be partly coiled around a portion of the torque converter 283. The torque converter 283 may be oriented such that the third arm 249 may be directed proximally and the catch 239 of the second arm 246 may rotate by the deflected post 255. It is to be understood that the rotation of the torque converter 183 is a continuous motion for approximately 360 degrees. That is, the rotational motion of the torque converter 183 does not stop after rotating 180 degrees. Rather, the torque converter 183 has continuous rotational movement for approximately 360 degrees. The fifth configuration represents an instant of time as the torque converter 283 continuously rotates. The trigger 261 may be positioned in the distal position.
[00101] FIG. 20A illustrates distal portions of the cannula 220 and the trocar 240 of the biopsy needle device 200 in the fifth configuration. The cannula bevel 225 may be displaced proximally and may be positioned proximal to the notch 257 such that the cannula 220 does not cover the notch 257. A tissue sample 259 may collapse or prolapse into the notch 257 and may at least partially fill the notch 257.
[00102] FIG. 21 illustrates the relative locations of the torsional spring 264, the torque converter 283, the cannula hub 221 , the trigger 261 , and the flexible member 293 within the actuator 260 in the sixth configuration. The sixth configuration may be subsequent to activation of the actuator 260 and severing of the tissue sample 259. As can be seen, the cannula hub 221 may be positioned at a distal position. The torsional spring 264 may be in a fully unwound configuration. The flexible member 293 may be fully coiled around a portion of the torque converter 283. The torque converter 283 may be oriented such that the third arm 249 may be directed distally and the catch 239 of the first arm 245 may be coupled with the post 255. The trigger 261 may be positioned in an intermediate position such that the distal end of the first arm 236 does not deflect the post 255.
[00103] FIG. 21A illustrates distal portions of the cannula 220 and the trocar 240 of the biopsy needle device 200 in the sixth configuration. As can be seen, the trocar bevel 256 may extend beyond the distal end of the cannula 220. The cannula bevel 225 may be displaced distally such that the cannula bevel 225 may cut or sever the tissue sample 259 from the lesion 258, and the cannula 220 may cover the notch 257 such that the tissue sample 259 may be retained within the notch 257. The distal end of the cannula 220 may be positioned proximal to and adjacent to the trocar bevel 256.
[00104] FIGS. 22 and 22A illustrates the relative locations of the torsional spring 264, the torque converter 283, the cannula hub 221 , the trigger 261 , and the flexible member 293 within the actuator 260 in the seventh configuration. The seventh configuration may allow the practitioner to extract the tissue sample 259 from the notch 257. As can be seen, the cannula hub 221 may be positioned at a proximal position. The torsional spring 264 may be in a partly wound configuration. The flexible member 293 may be partly uncoiled from a portion of the torque converter 283. The torque converter 283 may be oriented such that the third arm 249 may be directed proximally and the catch 239 of the second arm 246 may be coupled with the post 255. The trigger 261 may be positioned in an intermediate proximal position.
[00105] FIG. 22A illustrates distal portions of the cannula 220 and the trocar 240 of the biopsy needle device 200 in the seventh configuration. The cannula bevel 225 may be displaced proximally and may be positioned proximal to the notch 257 such that the cannula 220 does not cover the notch 257. The tissue sample 259 may be exposed such that it may be extracted from the notch 257 by the practitioner.
[00106] In some embodiments, the biopsy needle device 200 may permit the practitioner to perform the Core Needle Biopsy procedure. The location of the tissue or lesion to be biopsied within the patient may be identified utilizing known diagnosis techniques such as computed tomography, magnetic resonance imaging, x-ray, fluoroscopy, ultrasound, etc. The patient may be positioned and prepped for the Core Needle Biopsy procedure. The practitioner may obtain the sterilized biopsy needle device 200 configured with the desired trocar and cannula length and diameter and the desired length of notch 257 such that a desired sample length may be collected. The practitioner may prep the biopsy needle device 200 by cocking the actuator 260. The actuator 260 may be cocked by displacing the activation flange 250 and trigger 261 proximally. Proximal displacement of the trigger 261 pulls the flexible member 293, proximally resulting in uncoiling of the flexible member 293 from a portion of the torque converter 283. As the flexible member 293 uncoils the torque converter 283 is rotated and the torsional spring 264 is wound in a compressed configuration. The catch 239 of the first arm 245 of the torque converter 283 couples with the post 255 to hold the actuator 260 in a cocked configuration. The practitioner may insert the cannula 220 and the trocar 240 through the skin and into the lesion of the patient while holding the actuator 260 in a hand. Alternatively, the cannula 220 and the trocar 240 may be inserted into the lesion 258 of a patient utilizing an introducer cannula that was previously inserted into the patient. The practitioner may confirm the position of the cannula 220 and trocar 240 utilizing known techniques such as ultrasound, fluoroscopy, computed tomography, etc. The practitioner may activate the actuator 260 by applying a force to the activation flange 250, resulting in the first arm 236 of the trigger 261 deflecting the post 255 such that the catch 239 of the first arm 245 decouples from the post 255. The torsional spring 264 may unwind or decompress such that the torque converter 283 is rotated approximately 360 degrees in a continuous motion. The rotational movement of the torque converter 283 may be translated into initial proximal and then distal linear movement of the cannula hub 221 and cannula 220 through the linkage member 266. The torque converter 283 may rotate 180 degrees and the cannula hub 221 and cannula 220 may be displaced proximally to a maximum proximal position. The distal end of the cannula 220 may be positioned proximally of the notch 257 of the trocar 240. The notch 257 may be exposed to lesion tissue. A portion of the lesion tissue may collapse or prolapse into the notch 257. The torque converter 283 may complete the 360 degree rotation in a continuous motion, and the cannula hub 221 and the cannula 220 may be displaced to a distal position. The distal end of the cannula 220 may slide over the notch 257 and cut or sever the portion of the lesion or tissue sample 259 within the notch 257 from the surrounding lesion tissue. The tissue sample 259 may be captured and retained within the notch 257 by the cannula 220. The cannula 220 and the trocar 240 may be removed from the patient's tissue. The practitioner may extract the tissue sample 259 from the biopsy needle device 200 by displacing the trigger 261 proximally until the cannula 220 is positioned proximal of the notch 257 and the tissue sample 259 is exposed. The tissue sample 259 may be extracted from the biopsy needle device 200 and analyzed using known techniques.
[00107] As described above, in any of the embodiments described herein, the continuous motion of a portion of the actuator (such as actuators 160 and 260) may be configured to displace one or more portions of a biopsy needle device (such as devices 100 and 200) in a first direction, then in a second direction. For example, continuous rotation of a the torque converter (183, 283) in one rotational direction may be configured to displace the cannula (120, 220) from a proximal position, to a distal position, and back to a proximal position though continuous rotation of the torque converter (183, 283) in one direction of rotation.
[00108] Any methods disclosed herein comprise one or more steps or actions for performing the described method. The method steps and/or actions may be interchanged with one another. In other words, unless a specific order of steps or actions is required for proper operation of the embodiment, the order and/or use of specific steps and/or actions may be modified.
[00109] References to approximations are made throughout this specification, such as by use of the term "substantially." For each such reference, it is to be understood that, in some embodiments, the value, feature, or characteristic may be specified without approximation. For example, where qualifiers such as "about" and "substantially" are used, these terms include within their scope the qualified words in the absence of their qualifiers.
[00110] Similarly, in the above description of embodiments, various features are sometimes grouped together in a single embodiment, figure, or description thereof for the purpose of streamlining the disclosure. This method of disclosure, however, is not to be interpreted as reflecting an intention that any claim requires more features than those expressly recited in that claim. Rather, as the following claims reflect, inventive aspects lie in a combination of fewer than all features of any single foregoing disclosed embodiment.
[00111] The claims following this written disclosure are hereby expressly incorporated into the present written disclosure, with each claim standing on its own as a separate embodiment. This disclosure includes all permutations of the independent claims with their dependent claims. Moreover, additional embodiments capable of derivation from the independent and dependent claims that follow are also expressly incorporated into the present written description.
[00112] Without further elaboration, it is believed that one skilled in the art can use the preceding description to utilize the present disclosure to its fullest extent. The examples and embodiments disclosed herein are to be construed as merely illustrative and exemplary and not a limitation of the scope of the present disclosure in any way. It will be apparent to those having skill in the art, and having the benefit of this disclosure, that changes may be made to the details of the above-described embodiments without departing from the underlying principles of the disclosure herein.

Claims

1. A biopsy needle device, comprising:
an elongate outer member comprising a distal end configured to sever a tissue sample; an elongate inner member disposed within the elongate outer member wherein the elongate inner member comprises a distal end configured to penetrate tissue and a notch configured to retain a tissue sample; and
an actuator comprising a displacement mechanism configured such that a continuous motion of a portion of the displacement mechanism longitudinally displaces the outer member over the inner member from a distal position to a proximal position to a distal position.
2. The biopsy needle device of claim 1 , wherein the displacement mechanism comprises a torque converter configured to rotate approximately 360 degrees in a continuous motion.
3. The biopsy needle device of claim 2, wherein a linkage member couples the torque converter to the outer member.
4. The biopsy needle device of claim 1 , wherein the actuator comprises a linear displacement mechanism, wherein the linear displacement mechanism comprises:
a linear gear;
a circular gear configured to mesh with the linear gear; and
a torque converter coupled to the circular gear;
wherein the torque converter is configured to be coupled to the elongate outer member.
5. The biopsy needle device of any one of claims 1-4, wherein the elongate inner member comprises a tube.
6. The biopsy needle device of claim 5, wherein the notch comprises a channel.
7. The biopsy needle device of claim 4, wherein the actuator further comprises a trigger configured to cock the actuator wherein the linear gear is displaced from a distal location to a proximal location and to activate the actuator wherein the linear gear is displaced from a proximal location to a distal location within a housing.
8. The biopsy needle device of any one of claims 4 and 7, wherein the actuator further comprises an energy storage member configured to displace the linear gear from a proximal location to a distal location.
9. The biopsy needle device of any one of claims claim 4, 7, and 8, wherein a linkage member is configured to couple the torque converter to the elongate outer member such that rotational movement of the torque converter effects proximal and/or distal movement of the elongate outer member.
10. The biopsy needle device of any one of claims 1-9, wherein the elongate inner member is configured to be fixedly coupled to the actuator.
1 1. The biopsy needle device of any one of claims 1-10, wherein the elongate outer member is configured to slide proximally and/or distally over the elongate inner member.
12. The biopsy needle device of any one of claims 1-11 , wherein the elongate outer member further comprises at least one indicium.
13. The biopsy needle device of claim 1 , further comprising:
an actuator comprising:
a torsional spring; and
a torque converter coupled to the torsional spring and to the elongate outer member.
14. The biopsy needle device of claim 13, wherein the actuator further comprises a trigger configured to cock the actuator in a ready configuration wherein the torsional spring is in a wound configuration and the torque converter is in a second position, and to activate the actuator wherein the torsional spring is displaced from the wound configuration to an unwound configuration and the torque converter rotates to a first position.
15. The biopsy needle device of any one of claims 13-14, wherein a flexible member couples the trigger to the torque converter.
16. The biopsy needle device of claim 15, wherein the flexible member is coiled around a portion of the torque converter such that when the trigger is moved proximally the flexible member uncoils and the torque converter rotates to wind the torsional spring.
17. The biopsy device of any one of claims 13-16, wherein a linkage member is configured to couple the torque converter to the elongate outer member such that rotational movement of the torque converter effects proximal and/or distal movement of the elongate outer member.
18. The biopsy device of any one of claims 13-17, wherein the torque converter comprises two arms configured about 180° apart and configured to engage a post within the actuator.
19. The biopsy device of claim 14, wherein the post is coupled to a cantilever beam and is configured to deflect when engaged by the trigger.
20. A method of collecting a tissue sample, comprising:
obtaining a biopsy needle device comprising:
a cannula;
a trocar comprising a notch and disposed within the cannula; and an actuator;
cocking the actuator;
inserting a distal portion of the cannula and the trocar into a tissue; and activating the actuator, wherein the cannula moves proximally to expose the notch to the tissue, a portion of the tissue prolapses into the notch, and the cannula moves distally to sever a tissue sample from the tissue.
21. The method of collecting a tissue sample of claim 20, further comprising:
removing the cannula and trocar from the tissue;
cocking the actuator to an intermediate configuration wherein the cannula is at a proximal position and the notch is exposed; and
extracting the tissue sample from the notch.
22. A biopsy needle device, comprising:
an elongate outer member comprising a distal end configured to sever a tissue sample; an elongate inner member disposed within the elongate outer member wherein the elongate inner member comprises a distal end configured to penetrate tissue and a notch configured to retain a tissue sample; and
an actuator comprising a displacement mechanism configured to longitudinally displace the outer member over the inner member from a distal position to a proximal position to a distal position in a continuous motion, wherein the linear displacement mechanism comprises:
a linear gear;
a circular gear configured to mesh with the linear gear; and
a torque converter coupled to the circular gear;
wherein the torque converter is configured to be coupled to the elongate outer member.
23. The biopsy needle device of claim 22, wherein the elongate inner member comprises a tube.
24. The biopsy needle device of claim 23, wherein the notch comprises a channel.
25. The biopsy needle device of any one of claims 22-24, wherein the actuator further comprises a trigger configured to cock the actuator wherein the linear gear is displaced from a distal location to a proximal location and to activate the actuator wherein the linear gear is displaced from a proximal location to a distal location within a housing.
26. The biopsy needle device of any one of claims 22-25, wherein the actuator further comprises an energy storage member configured to displace the linear gear from a proximal location to a distal location.
27. The biopsy needle device of any one of claims 22-26, wherein a linkage member is configured to couple the torque converter to the elongate outer member such that rotational movement of the torque converter effects proximal and/or distal movement of the elongate outer member.
28. The biopsy needle device of any one of claims 22-27, wherein the elongate inner member is configured to be fixedly coupled to the actuator.
29. The biopsy needle device of any one of claims 22-28, wherein the elongate outer member is configured to slide proximally and/or distally over the elongate inner member.
30. The biopsy needle device of any one of claims 22-29, wherein the elongate outer member further comprises at least one indicium.
31. A method of collecting a tissue sample, comprising:
obtaining a biopsy needle device comprising:
a cannula comprising a distal end configured to sever tissue;
a trocar comprising a notch configured to retain the tissue sample, wherein the trocar is disposed within the cannula; and
an actuator comprising a linear displacement mechanism wherein the cannula is configured to be operably coupled to the linear displacement mechanism;
cocking the actuator wherein the linear displacement mechanism is locked in a ready configuration;
inserting the cannula and the trocar into a tissue of a patient;
activating the actuator such that the linear displacement mechanism is released from the ready configuration, wherein:
the linear displacement mechanism displaces the cannula proximally to expose the notch to the tissue;
a portion of the tissue collapses into the notch;
the linear displacement mechanism displaces the cannula distally to sever the tissue; and
removing the cannula and the trocar from the tissue of the patient.
32. The method of collecting a tissue sample of claim 31 , wherein the linear displacement mechanism comprises a linear gear, a circular gear configured to mesh with the linear gear, a torque converter coupled to the circular gear and a linkage member coupled to the torque converter and the cannula.
33. The method of collecting a tissue sample of claim 31 or claim 32, further comprising extracting the tissue sample from the notch.
34. The method of collecting a tissue sample of any one of claims 31-33, further comprising inserting the cannula and the trocar into the patient through an introducer that is in fluid communication with the patient.
35. A biopsy needle device, comprising:
an elongate outer member comprising a distal end configured to sever a tissue sample; an elongate inner member disposed within the elongate outer member wherein the elongate inner member comprises a distal end configured to penetrate tissue and a notch; and an actuator comprising:
a torsional spring; and a torque converter coupled to the torsional spring and to the elongate outer member.
36. The biopsy needle device of claim 35, wherein the elongate inner member comprises a tube.
37. The biopsy needle device of claim 36, wherein the notch comprises a channel.
38. The biopsy needle device of any one of claims 35-37, wherein the actuator further comprises a trigger configured to cock the actuator in a ready configuration wherein the torsional spring is in a wound configuration and the torque converter is in a second position, and to activate the actuator wherein the torsional spring is displaced from the wound configuration to an unwound configuration and the torque converter rotates to a first position.
39. The biopsy needle device of claim 38, wherein a flexible member couples the trigger to the torque converter.
40. The biopsy needle device of claim 39, wherein the flexible member is coiled around a portion of the torque converter such that when the trigger is moved proximally the flexible member uncoils and the torque converter rotates to wind the torsional spring.
41. The biopsy device of any one of claims 35-40, wherein a linkage member is configured to couple the torque converter to the elongate outer member such that rotational movement of the torque converter effects proximal and/or distal movement of the elongate outer member.
42. The biopsy device of any one of claims 35-41 , wherein the elongate inner member is configured to be fixedly coupled to the actuator.
43. The biopsy device of any one of claims 35-42, wherein the elongate outer member is configured to slide proximally and/or distally over the elongate inner member.
44. The biopsy device of any one of claims 35-43, wherein the torque converter comprises two arms configured about 180° apart and configured to engage a post within the actuator.
45. The biopsy device of claim 44, wherein the post is coupled to a cantilever beam and is configured to deflect when engaged by the trigger.
46. The biopsy needle device of any one of claims 35-45, wherein the elongate outer member further comprises at least one indicium.
47. A method of collecting a tissue sample, comprising:
obtaining a biopsy needle device comprising:
a cannula comprising a distal end configured to sever tissue;
a trocar comprising a distal end configured to penetrate tissue and a notch configured to retain the tissue sample, wherein the trocar is disposed within the cannula; and
an actuator comprising: a housing comprising a post;
a torsional spring;
a torque converter, wherein the torsional spring and the cannula are operably coupled to the torque converter, the torque converter comprising a first arm and a second arm; and
a trigger, wherein a flexible member couples the trigger to the torque converter;
cocking the actuator wherein the torsional spring is locked in a wound configuration and the first arm engages the post;
inserting the cannula and the trocar into a lesion of a patient;
activating the actuator such that the torsional spring is released from the wound configuration, wherein:
the trigger deflects the post;
the first arm disengages from the post and the torque converter rotates to displace the cannula proximally to expose the notch to the tissue;
a portion of the lesion tissue prolapses into the notch; and
the torque converter displaces the cannula distally to sever the tissue; and
removing the cannula and the trocar from the tissue of the patient.
48. The method of collecting a tissue sample of claim 47, wherein a linkage member couples the torque converter to the cannula.
49. The method of collecting a tissue sample of claim 47 or claim 48, further comprising:
cocking the actuator to an intermediate configuration, wherein the cannula is at a proximal configuration and the second arm engages the post; and
extracting the tissue sample from the notch.
50. The method of collecting a tissue sample of claim 49, further comprising inserting the cannula and the trocar into the patient through an introducer that is in fluid communication with the patient.
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Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
KR20220014906A (en) * 2019-11-22 2022-02-07 주식회사 플라워메디칼 Core biopsy device

Families Citing this family (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US11116483B2 (en) 2017-05-19 2021-09-14 Merit Medical Systems, Inc. Rotating biopsy needle
US11793498B2 (en) * 2017-05-19 2023-10-24 Merit Medical Systems, Inc. Biopsy needle devices and methods of use
EP3937794A4 (en) * 2019-03-11 2023-07-26 MFR Technologies, Inc. Tissue coring device

Citations (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20010011156A1 (en) * 1998-02-20 2001-08-02 Viola Frank J. Biopsy instrument driver apparatus
US20070068990A1 (en) * 2005-09-29 2007-03-29 Shelton Frederick E Iv Surgical stapling instrument having preloaded firing assistance mechanism
US20120215130A1 (en) * 2008-05-30 2012-08-23 Inrad, Inc. Biopsy device having specimen length adjustment
US20130046316A1 (en) 2011-08-18 2013-02-21 Hologic, Inc. Tissue removal system
US20140296741A1 (en) 2011-07-21 2014-10-02 The General Hospital Corporation Method and apparatus for subsurface tissue sampling
US20150119916A1 (en) * 2010-02-11 2015-04-30 Ethicon Endo-Surgery, Inc. Ultrasonic surgical instruments with moving cutting implement
US9474527B1 (en) * 2011-04-26 2016-10-25 Bryan D. Knodel Surgical instrument with discrete articulation

Family Cites Families (413)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US737293A (en) 1900-11-01 1903-08-25 George H Summerfeldt Veterinary surgical instrument.
US1585934A (en) 1923-12-29 1926-05-25 Radium Emanation Corp Diagnostic needle
US1663761A (en) 1927-02-07 1928-03-27 George A Johnson Surgical instrument
US3019733A (en) 1957-05-21 1962-02-06 Harvey Machine Co Inc Projectile construction
US2953934A (en) 1958-04-28 1960-09-27 Sundt Edward Victor Mechanism for operating telescopic antennas or the like
US3224434A (en) 1962-11-06 1965-12-21 Waldemar Medical Res Foundatio Cell collector
FR1345429A (en) 1963-01-22 1963-12-06 Hypodermic needle
US3477423A (en) 1967-01-09 1969-11-11 Baxter Laboratories Inc Biopsy instrument
US3512519A (en) 1967-10-26 1970-05-19 Robert M Hall Anatomical biopsy sampler
US3561429A (en) 1968-05-23 1971-02-09 Eversharp Inc Instrument for obtaining a biopsy specimen
US3732858A (en) 1968-09-16 1973-05-15 Surgical Design Corp Apparatus for removing blood clots, cataracts and other objects from the eye
US3606878A (en) 1968-10-04 1971-09-21 Howard B Kellogg Jr Needle instrument for extracting biopsy sections
US3844272A (en) 1969-02-14 1974-10-29 A Banko Surgical instruments
US3565074A (en) 1969-04-24 1971-02-23 Becton Dickinson Co Indwelling arterial cannula assembly
SE353016B (en) 1970-06-15 1973-01-22 Hyden V
US3800783A (en) 1972-06-22 1974-04-02 K Jamshidi Muscle biopsy device
US3882849A (en) 1974-03-25 1975-05-13 Khosrow Jamshidi Soft Tissue Biopsy Device
DE2453058A1 (en) 1974-11-08 1976-05-20 German Prof Dr Schmitt Excision head for tissue sample removal in vivo - has sliding knife which cuts tissue protruding through aperture in casing wall
US4203444A (en) 1977-11-07 1980-05-20 Dyonics, Inc. Surgical instrument suitable for closed surgery such as of the knee
GB2018601A (en) 1978-03-28 1979-10-24 Microsurgical Administrative S Surgical cutting apparatus
GB2022421B (en) 1978-06-08 1982-09-15 Wolf Gmbh Richard Devices for obtaining tissure samples
JPS5824124B2 (en) 1978-10-05 1983-05-19 松下電器産業株式会社 hair adjustment tool
DE2855655A1 (en) 1978-12-22 1980-07-03 Draegerwerk Ag MEDICAL DEVICE
US4275730A (en) 1979-11-05 1981-06-30 Becton, Dickinson And Company Syringe with pressure-limited delivery
US4306570A (en) 1980-08-20 1981-12-22 Matthews Larry S Counter rotating biopsy needle
US4416305A (en) 1981-12-22 1983-11-22 Gusmer Corporation Valved coupling for conduits
US4445509A (en) 1982-02-04 1984-05-01 Auth David C Method and apparatus for removal of enclosed abnormal deposits
US4490137A (en) 1982-09-30 1984-12-25 Moukheibir Nabil W Surgically implantable peritoneal dialysis apparatus
SE441643B (en) 1983-02-08 1985-10-28 Innova Ab suturing instrument
US4603694A (en) 1983-03-08 1986-08-05 Richards Medical Company Arthroscopic shaver
SE434332B (en) 1983-03-23 1984-07-23 Jan Ingemar Neslund CELL SAMPLING DEVICE
JPS59200644A (en) 1983-04-27 1984-11-14 オリンパス光学工業株式会社 Surgical incision instrument
US4620539A (en) 1983-07-11 1986-11-04 Andrews E Trent Pistol grip, bone drill
US4577629A (en) 1983-10-28 1986-03-25 Coopervision, Inc. Surgical cutting instrument for ophthalmic surgery
US4549554A (en) 1984-01-03 1985-10-29 Markham Charles W Aspiration biopsy device
US4598710A (en) 1984-01-20 1986-07-08 Urban Engineering Company, Inc. Surgical instrument and method of making same
US4776346A (en) 1984-02-10 1988-10-11 Dan Beraha Biopsy instrument
DE3413744C2 (en) 1984-04-12 1986-08-28 Richard Wolf Gmbh, 7134 Knittlingen Applicator for knotting sewing threads
US4617430A (en) 1984-04-19 1986-10-14 General Electric Company Swivel mount
USRE33258E (en) 1984-07-23 1990-07-10 Surgical Dynamics Inc. Irrigating, cutting and aspirating system for percutaneous surgery
US4678459A (en) 1984-07-23 1987-07-07 E-Z-Em, Inc. Irrigating, cutting and aspirating system for percutaneous surgery
US4662869A (en) 1984-11-19 1987-05-05 Wright Kenneth W Precision intraocular apparatus
US4708147A (en) 1985-02-25 1987-11-24 Haaga John R Universal biopsy needle
US4702260A (en) 1985-04-16 1987-10-27 Ko Pen Wang Flexible bronchoscopic needle assembly
US4643197A (en) 1985-05-10 1987-02-17 E-Z-Em, Inc. Suction collection and drainage apparatus
US4645153A (en) 1985-05-23 1987-02-24 Ncr Corporation Tilt and swivel support
US4750488A (en) 1986-05-19 1988-06-14 Sonomed Technology, Inc. Vibration apparatus preferably for endoscopic ultrasonic aspirator
US4696298A (en) 1985-11-19 1987-09-29 Storz Instrument Company Vitrectomy cutting mechanism
US4893635A (en) 1986-10-15 1990-01-16 Groot William J De Apparatus for performing a biopsy
SU1454457A1 (en) 1986-11-26 1989-01-30 Научно-производственное объединение "Мединструмент" Arrangement for ophthalmologic operations
IT210260Z2 (en) 1987-05-05 1988-12-06 Bauer Alberto GUILLOTINE BIOPSY NEEDLE WITH FLEXIBLE STYLE AND CANNULA.
US4850354A (en) 1987-08-13 1989-07-25 Baxter Travenol Laboratories, Inc. Surgical cutting instrument
US4844087A (en) 1987-09-16 1989-07-04 Garg Rakesh K First method for using cannula including a valve structure and associated instrument element
SE459635B (en) 1987-11-19 1989-07-24 Radiplast Ab DRIVER CONTAINS A DEVICE FOR TAPE SAMPLING
US5146921A (en) 1987-11-27 1992-09-15 Vance Products Inc. Biopsy instrument stylet and cannula assembly
US4989614A (en) 1988-02-23 1991-02-05 Vance Products Incorporated Fine-needle aspiration cell sampling methods
DE3825120A1 (en) 1988-05-11 1989-11-23 Wella Ag DEVICE FOR AN ELECTRICAL DEVICE
IL88947A (en) 1989-01-13 1993-02-21 Mordechai Ravid Tel Aviv Uzi K Biopsy syringe device and method of using same
US4986807A (en) 1989-01-23 1991-01-22 Interventional Technologies, Inc. Atherectomy cutter with radially projecting blade
US5669394A (en) 1989-02-06 1997-09-23 The Board Of Regents Of The Univ. Of Oklahoma Biosample aspirator
US4986279A (en) 1989-03-01 1991-01-22 National-Standard Company Localization needle assembly with reinforced needle assembly
US5025797A (en) 1989-03-29 1991-06-25 Baran Gregory W Automated biopsy instrument
US5617874A (en) 1989-03-29 1997-04-08 Baran; Gregory W. Automated biopsy instrument
US5400798A (en) 1989-03-29 1995-03-28 Baran; Gregory W. Automated biopsy instrument
US4967762A (en) 1989-05-05 1990-11-06 Dlp, Inc. Biopsy syringe with suction vent
US4952817A (en) 1989-05-31 1990-08-28 Dallas Semiconductor Corporation Self-starting test station
US5226910A (en) 1989-07-05 1993-07-13 Kabushiki Kaisha Topcon Surgical cutter
US4958625A (en) 1989-07-18 1990-09-25 Boston Scientific Corporation Biopsy needle instrument
US5535755A (en) 1989-07-22 1996-07-16 Heske; Norbert Tissue sampler
DE3924291C2 (en) 1989-07-22 2000-07-13 Bip Acquisition Company Inc Biopsy channels for taking tissue samples
US5226909A (en) 1989-09-12 1993-07-13 Devices For Vascular Intervention, Inc. Atherectomy device having helical blade and blade guide
US5176628A (en) 1989-10-27 1993-01-05 Alcon Surgical, Inc. Vitreous cutter
US5505210A (en) 1989-11-06 1996-04-09 Mectra Labs, Inc. Lavage with tissue cutting cannula
US5409013A (en) 1989-11-06 1995-04-25 Mectra Labs, Inc. Tissue removal assembly
US5415169A (en) 1989-11-21 1995-05-16 Fischer Imaging Corporation Motorized mammographic biopsy apparatus
US4940061A (en) 1989-11-27 1990-07-10 Ingress Technologies, Inc. Biopsy instrument
DE8914941U1 (en) 1989-12-19 1990-09-27 B. Braun Melsungen Ag, 3508 Melsungen, De
US5158528A (en) 1990-06-15 1992-10-27 Sherwood Medical Company Peristaltic infusion device and charger unit
DE4120329C2 (en) 1990-06-22 1999-07-22 Storz Karl Gmbh & Co Tissue punch
US5275609A (en) 1990-06-22 1994-01-04 Vance Products Incorporated Surgical cutting instrument
US5282476A (en) 1990-11-07 1994-02-01 Terwilliger Richard A Biopsy apparatus with tapered vacuum chamber
DE4041614C1 (en) 1990-12-22 1992-10-15 Ronald Dr.Med. O-3101 Gerwisch De Luther Tissue sample taking suction biopsy appts. - has rotary cannula fastener and vacuum cylinder at opposite ends in rotary drive handpiece
US5249583A (en) 1991-02-01 1993-10-05 Vance Products Incorporated Electronic biopsy instrument with wiperless position sensors
US5225763A (en) 1991-03-20 1993-07-06 Sherwood Medical Company Battery charging circuit and method for an ambulatory feeding pump
GB2256369B (en) 1991-06-04 1995-10-25 Chiou Rei Kwen Improved biopsy device
US5290310A (en) 1991-10-30 1994-03-01 Howmedica, Inc. Hemostatic implant introducer
US5236334A (en) 1991-12-16 1993-08-17 Bennett Lavon L Core biopsy needle units for use with automated biopsy guns
IT1252234B (en) 1991-12-18 1995-06-05 Bauer Di Bauer Albeto DEVICE FOR THE SAFE PERFORMANCE OF A BIOPSY, IN PARTICULAR OSTEO-BONE MARROW
US5602449A (en) 1992-04-13 1997-02-11 Smith & Nephew Endoscopy, Inc. Motor controlled surgical system and method having positional control
US5368029A (en) 1992-04-16 1994-11-29 Holcombe; David A. Integral catheter and blood tester
US5234000A (en) 1992-09-25 1993-08-10 Hakky Said I Automatic biopsy device housing a plurality of stylets
US5292327A (en) 1992-10-08 1994-03-08 Dodd Joseph T Surgical knot pusher
US5269791A (en) 1992-10-09 1993-12-14 Ilya Mayzels Surgical knot pushing appliance
US5306260A (en) 1992-10-30 1994-04-26 Ryder International Corporation Indexing cannula support mechanism
US5284472A (en) 1992-10-30 1994-02-08 Allergan, Inc. Vitreous cutter
US5388435A (en) 1993-01-04 1995-02-14 Verdure Industries, Inc. Lock
US5336229A (en) 1993-02-09 1994-08-09 Laparomed Corporation Dual ligating and dividing apparatus
US5643304A (en) 1993-02-16 1997-07-01 Danek Medical, Inc. Method and apparatus for minimally invasive tissue removal
JP2849300B2 (en) 1993-03-15 1999-01-20 ローム株式会社 Cordless telephone
US5509918A (en) 1993-05-11 1996-04-23 David Romano Method and apparatus for drilling a curved bore in an object
WO1994028801A1 (en) 1993-06-11 1994-12-22 Karl Storz Gmbh & Co. Suturing device
US5395313A (en) 1993-08-13 1995-03-07 Naves; Neil H. Reciprocating arthroscopic shaver
US5441510A (en) 1993-09-01 1995-08-15 Technology Development Center Bi-axial cutter apparatus for catheter
US5546957A (en) 1993-09-09 1996-08-20 Norbert Heske Biopsy needle
US5601585A (en) 1994-02-08 1997-02-11 Boston Scientific Corporation Multi-motion side-cutting biopsy sampling device
US5439474A (en) 1993-10-08 1995-08-08 Li Medical Technologies, Inc. Morcellator system
US5527322A (en) 1993-11-08 1996-06-18 Perclose, Inc. Device and method for suturing of internal puncture sites
US5485917A (en) 1993-12-06 1996-01-23 Ethicon-Endo-Surgery Quick release package for surgical instrument
US5526822A (en) 1994-03-24 1996-06-18 Biopsys Medical, Inc. Method and apparatus for automated biopsy and collection of soft tissue
US5649547A (en) 1994-03-24 1997-07-22 Biopsys Medical, Inc. Methods and devices for automated biopsy and collection of soft tissue
US5560373A (en) 1994-04-11 1996-10-01 De Santis; Stephen A. Needle core biopsy instrument with durable or disposable cannula assembly
US5511556A (en) 1994-04-11 1996-04-30 Desantis; Stephen A. Needle core biopsy instrument
US5817033A (en) 1994-04-11 1998-10-06 Desantis; Stephen A. Needle core biopsy device
US5449001A (en) 1994-04-14 1995-09-12 Terwilliger; Richard A. Biopsy needle
US5582616A (en) 1994-08-05 1996-12-10 Origin Medsystems, Inc. Surgical helical fastener with applicator
US5458112A (en) 1994-08-15 1995-10-17 Arrow Precision Products, Inc. Biliary biopsy device
US5562685A (en) 1994-09-16 1996-10-08 General Surgical Innovations, Inc. Surgical instrument for placing suture or fasteners
CA2199864C (en) 1994-09-16 2006-06-20 Seth A. Foerster Methods and devices for defining and marking tissue
US5569284A (en) 1994-09-23 1996-10-29 United States Surgical Corporation Morcellator
US5554151A (en) 1994-09-27 1996-09-10 United States Surgical Corporation Specimen retrieval container
US5591170A (en) 1994-10-14 1997-01-07 Genesis Orthopedics Intramedullary bone cutting saw
US5665062A (en) 1995-01-23 1997-09-09 Houser; Russell A. Atherectomy catheter and RF cutting method
US5655542A (en) 1995-01-26 1997-08-12 Weilandt; Anders Instrument and apparatus for biopsy and a method thereof
US6126617A (en) 1995-01-26 2000-10-03 Ascendia Ab Impact-damped biopsy instrument
US5575293A (en) 1995-02-06 1996-11-19 Promex, Inc. Apparatus for collecting and staging tissue
US5766135A (en) 1995-03-08 1998-06-16 Terwilliger; Richard A. Echogenic needle tip
WO1996027329A1 (en) 1995-03-08 1996-09-12 Terwilliger Richard A Echogenic needle
NL9500524A (en) 1995-03-16 1996-11-01 Metracon C V Aspiration tool for cell biopsy purposes.
US5879365A (en) 1995-04-04 1999-03-09 United States Surgical Corporation Surgical cutting apparatus
US5857982A (en) 1995-09-08 1999-01-12 United States Surgical Corporation Apparatus and method for removing tissue
US5817034A (en) 1995-09-08 1998-10-06 United States Surgical Corporation Apparatus and method for removing tissue
US5564436A (en) 1995-09-21 1996-10-15 Hakky; Said I. Automatic rotating cassette multiple biopsy device
US5655657A (en) 1995-09-25 1997-08-12 Ethicon, Inc. Package for specimen retrieval bag
FR2739293A1 (en) 1995-11-15 1997-04-04 Nogitek Sa Suction device for removal of fatty tissue
US5709697A (en) 1995-11-22 1998-01-20 United States Surgical Corporation Apparatus and method for removing tissue
US5769086A (en) 1995-12-06 1998-06-23 Biopsys Medical, Inc. Control system and method for automated biopsy device
US5807282A (en) 1995-12-28 1998-09-15 Mayo Foundation For Medical Education And Research Endometrial tissue curette and method
US5827305A (en) 1996-01-24 1998-10-27 Gordon; Mark G. Tissue sampling device
US5916229A (en) 1996-02-07 1999-06-29 Evans; Donald Rotating needle biopsy device and method
US5951575A (en) 1996-03-01 1999-09-14 Heartport, Inc. Apparatus and methods for rotationally deploying needles
US5823970A (en) 1996-03-22 1998-10-20 Medical Device Technologies, Inc. Biopsy needle set
US5665101A (en) 1996-04-01 1997-09-09 Linvatec Corporation Endoscopic or open lipectomy instrument
US5980545A (en) 1996-05-13 1999-11-09 United States Surgical Corporation Coring device and method
USD403405S (en) 1996-06-24 1998-12-29 Medical Device Technologies, Inc. Biopsy needle set
US5752923A (en) 1996-06-24 1998-05-19 Medical Device Technologies, Inc. Biopsy instrument with handle and needle set
US5699909A (en) 1996-08-07 1997-12-23 United States Surgical Corporation Surgical instrument package
US5913857A (en) 1996-08-29 1999-06-22 Ethicon End0-Surgery, Inc. Methods and devices for collection of soft tissue
US5792167A (en) 1996-09-13 1998-08-11 Stryker Corporation Surgical irrigation pump and tool system
US5976164A (en) 1996-09-13 1999-11-02 Eclipse Surgical Technologies, Inc. Method and apparatus for myocardial revascularization and/or biopsy of the heart
US5755714A (en) 1996-09-17 1998-05-26 Eclipse Surgical Technologies, Inc. Shaped catheter for transmyocardial revascularization
US6331165B1 (en) 1996-11-25 2001-12-18 Scimed Life Systems, Inc. Biopsy instrument having irrigation and aspiration capabilities
US6142956A (en) 1996-11-25 2000-11-07 Symbiosis Corporation Proximal actuation handle for a biopsy forceps instrument having irrigation and aspiration capabilities
IT1287512B1 (en) 1996-12-11 1998-08-06 Angela Martone NEEDLE FOR BIOPSY
US6027458A (en) 1996-12-23 2000-02-22 Janssens; Jacques Phillibert Device for taking a tissue sample
US6053871A (en) 1997-01-21 2000-04-25 William Cook Australia Pty. Ltd Calibrated hollow probe for use with ultrasound imaging
EP0963178A4 (en) 1997-01-30 2000-03-01 Boston Scient Corp Pneumatically actuated tissue sampling device
US5830219A (en) 1997-02-24 1998-11-03 Trex Medical Corporation Apparatus for holding and driving a surgical cutting device using stereotactic mammography guidance
KR100213463B1 (en) 1997-03-31 1999-08-02 신명철 Needle for sampling of tissue of living body and method for making of the same and operating device of the same
GB2323288B (en) 1997-04-11 1999-02-24 Vacsax Limited Apparatus for separating tissue from aspirates
US6017316A (en) 1997-06-18 2000-01-25 Biopsys Medical Vacuum control system and method for automated biopsy device
US6123957A (en) 1997-07-16 2000-09-26 Jernberg; Gary R. Delivery of agents and method for regeneration of periodontal tissues
US5916198A (en) 1997-08-05 1999-06-29 Femrx, Inc. Non-binding surgical valve
DE19758617B4 (en) 1997-09-11 2006-06-14 Biopsytec Gmbh earmark
US6142955A (en) 1997-09-19 2000-11-07 United States Surgical Corporation Biopsy apparatus and method
US6050955A (en) 1997-09-19 2000-04-18 United States Surgical Corporation Biopsy apparatus and method
US6019733A (en) 1997-09-19 2000-02-01 United States Surgical Corporation Biopsy apparatus and method
US5908233A (en) 1997-11-26 1999-06-01 Heskett Bryon Kenneth Auto rechargeable flashlight
US20030163142A1 (en) 1997-11-27 2003-08-28 Yoav Paltieli System and method for guiding the movements of a device to a target particularly for medical applications
IL122792A0 (en) 1997-12-29 1998-08-16 T C T Products Ltd Suction tissue collecting device
US6022324A (en) 1998-01-02 2000-02-08 Skinner; Bruce A. J. Biopsy instrument
US6007495A (en) 1998-01-22 1999-12-28 United States Surgical Corporation Biopsy apparatus and method
US6331166B1 (en) 1998-03-03 2001-12-18 Senorx, Inc. Breast biopsy system and method
US6659105B2 (en) 1998-02-26 2003-12-09 Senorx, Inc. Tissue specimen isolating and damaging device and method
US6261241B1 (en) 1998-03-03 2001-07-17 Senorx, Inc. Electrosurgical biopsy device and method
US6758848B2 (en) 1998-03-03 2004-07-06 Senorx, Inc. Apparatus and method for accessing a body site
US6083176A (en) 1998-08-11 2000-07-04 Medical Device Technologies, Inc. Automated biopsy needle handle
US6106484A (en) 1998-05-12 2000-08-22 Medical Device Technologies, Inc. Reusable automated biopsy needle handle
US6283925B1 (en) 1998-05-12 2001-09-04 Medical Device Technologies, Inc. Biopsy needle handle
US6077230A (en) 1998-05-14 2000-06-20 Ethicon Endo-Surgery, Inc. Biopsy instrument with removable extractor
US5944673A (en) 1998-05-14 1999-08-31 Ethicon Endo-Surgery, Inc. Biopsy instrument with multi-port needle
US5964716A (en) 1998-05-14 1999-10-12 Ethicon Endo-Surgery, Inc. Method of use for a multi-port biopsy instrument
US6018227A (en) 1998-06-22 2000-01-25 Stryker Corporation Battery charger especially useful with sterilizable, rechargeable battery packs
US6007497A (en) 1998-06-30 1999-12-28 Ethicon Endo-Surgery, Inc. Surgical biopsy device
US6110129A (en) 1998-07-13 2000-08-29 Medical Device Technologies, Inc. Biopsy needle and surgical instrument
WO2000004832A1 (en) 1998-07-21 2000-02-03 Spectrx, Inc. System and method for continuous analyte monitoring
US6022362A (en) 1998-09-03 2000-02-08 Rubicor Medical, Inc. Excisional biopsy devices and methods
US6220248B1 (en) 1998-10-21 2001-04-24 Ethicon Endo-Surgery, Inc. Method for implanting a biopsy marker
US6083237A (en) 1998-10-23 2000-07-04 Ethico Endo-Surgery, Inc. Biopsy instrument with tissue penetrating spiral
US20010047183A1 (en) 2000-04-05 2001-11-29 Salvatore Privitera Surgical device for the collection of soft tissue
CA2287087C (en) 1998-10-23 2007-12-04 Ethicon Endo-Surgery, Inc. Surgical device for the collection of soft tissue
US20080146965A1 (en) 2003-08-11 2008-06-19 Salvatore Privitera Surgical Device for The Collection of Soft Tissue
CA2701452C (en) 1998-11-25 2011-08-30 United States Surgical Corporation Biopsy system
US6165136A (en) 1998-12-23 2000-12-26 Scimed Life Systems, Inc. Semi-automatic biopsy device and related method of use
US7651505B2 (en) 2002-06-17 2010-01-26 Senorx, Inc. Plugged tip delivery for marker placement
US7983734B2 (en) 2003-05-23 2011-07-19 Senorx, Inc. Fibrous marker and intracorporeal delivery thereof
US7189206B2 (en) 2003-02-24 2007-03-13 Senorx, Inc. Biopsy device with inner cutter
US6402701B1 (en) 1999-03-23 2002-06-11 Fna Concepts, Llc Biopsy needle instrument
US6086544A (en) 1999-03-31 2000-07-11 Ethicon Endo-Surgery, Inc. Control apparatus for an automated surgical biopsy device
US6120462A (en) 1999-03-31 2000-09-19 Ethicon Endo-Surgery, Inc. Control method for an automated surgical biopsy device
US6267759B1 (en) 1999-06-22 2001-07-31 Senorx, Inc. Shaped scalpel
US20040015079A1 (en) 1999-06-22 2004-01-22 Teratech Corporation Ultrasound probe with integrated electronics
US6162187A (en) 1999-08-02 2000-12-19 Ethicon Endo-Surgery, Inc. Fluid collection apparatus for a surgical device
JP2001104313A (en) 1999-10-06 2001-04-17 Asahi Optical Co Ltd Organization sampling device for endoscope
US6280398B1 (en) 1999-10-18 2001-08-28 Ethicon Endo-Surgery Methods and devices for collection of soft tissue
US6432065B1 (en) 1999-12-17 2002-08-13 Ethicon Endo-Surgery, Inc. Method for using a surgical biopsy system with remote control for selecting and operational mode
US6428487B1 (en) 1999-12-17 2002-08-06 Ethicon Endo-Surgery, Inc. Surgical biopsy system with remote control for selecting an operational mode
US7490048B2 (en) 1999-12-18 2009-02-10 Raymond Anthony Joao Apparatus and method for processing and/or for providing healthcare information and/or healthcare-related information
US7464040B2 (en) 1999-12-18 2008-12-09 Raymond Anthony Joao Apparatus and method for processing and/or for providing healthcare information and/or healthcare-related information
DK176336B1 (en) 1999-12-22 2007-08-20 Asahi Optical Co Ltd Endoscopic tissue collection instrument
US20010034530A1 (en) 2000-01-27 2001-10-25 Malackowski Donald W. Surgery system
US6358217B1 (en) 2000-01-31 2002-03-19 Hugh Bourassa Automatic and semi-automatic disposable biopsy needle device
US6241687B1 (en) 2000-02-18 2001-06-05 Ethicon Endo-Surgery, Inc. Method of use for a biopsy instrument with breakable sample segments
US6231522B1 (en) 2000-02-18 2001-05-15 Ethicon Endo-Surgery, Inc. Biopsy instrument with breakable sample segments
US8016855B2 (en) 2002-01-08 2011-09-13 Tyco Healthcare Group Lp Surgical device
WO2001072230A1 (en) 2000-03-29 2001-10-04 Apple Medical Corporation Uterine sampler
AU2001259429A1 (en) 2000-05-02 2001-11-12 Wilson-Cook Medical Inc. Introducer device for catheters o.t.l. with eversible sleeve
US6482158B2 (en) 2000-05-19 2002-11-19 Healthetech, Inc. System and method of ultrasonic mammography
DE10026303A1 (en) 2000-05-26 2002-02-07 Pajunk Gmbh Biopsy needle has triangular cross section needle improves suction of tissue samples
US6773443B2 (en) 2000-07-31 2004-08-10 Regents Of The University Of Minnesota Method and apparatus for taking a biopsy
US6585664B2 (en) 2000-08-02 2003-07-01 Ethicon Endo-Surgery, Inc. Calibration method for an automated surgical biopsy device
US6485436B1 (en) 2000-08-10 2002-11-26 Csaba Truckai Pressure-assisted biopsy needle apparatus and technique
US6585694B1 (en) 2000-09-07 2003-07-01 Syntheon, Llc Knob-controlled endoscopic needle device
US6712773B1 (en) 2000-09-11 2004-03-30 Tyco Healthcare Group Lp Biopsy system
AUPR044000A0 (en) 2000-09-28 2000-10-26 Norwood Abbey Ltd Diagnostic device
US6712774B2 (en) 2000-10-13 2004-03-30 James W. Voegele Lockout for a surgical biopsy device
US6602203B2 (en) 2000-10-13 2003-08-05 Ethicon Endo-Surgery, Inc. Remote thumbwheel for a surgical biopsy device
US6656133B2 (en) 2000-10-13 2003-12-02 Ethicon Endo-Surgery, Inc. Transmission assembly for a surgical biopsy device
IT1319207B1 (en) 2000-10-13 2003-09-26 Istituto Giannina Gaslini IMPROVED SURGICAL INSTRUMENT, IN PARTICULAR FOR BIOPSIES OF THE RECTAL MUCOSA.
US6540694B1 (en) 2000-10-16 2003-04-01 Sanarus Medical, Inc. Device for biopsy tumors
WO2002032318A1 (en) 2000-10-16 2002-04-25 Sanarus Medical, Inc. Device for biopsy of tumors
US6527736B1 (en) 2000-10-23 2003-03-04 Grieshaber & Co. Ag Schaffhausen Device for use in ophthalmologic procedures
US7458940B2 (en) 2000-11-06 2008-12-02 Suros Surgical Systems, Inc. Biopsy apparatus
US6758824B1 (en) 2000-11-06 2004-07-06 Suros Surgical Systems, Inc. Biopsy apparatus
WO2002069808A2 (en) 2000-11-06 2002-09-12 Suros Surgical Systems, Inc. Biopsy apparatus
CA2429040C (en) 2000-11-27 2010-06-08 Tyco Healthcare Group Lp Tissue sampling and removal apparatus and method
US6419641B1 (en) 2000-11-28 2002-07-16 Promex, Llc Flexible tip medical instrument
JP3077968U (en) 2000-11-28 2001-06-12 谷下工業株式会社 Mobile phone charger
IL140494A0 (en) 2000-12-22 2002-02-10 Pneumatic control system for a biopsy device
US20050004559A1 (en) 2003-06-03 2005-01-06 Senorx, Inc. Universal medical device control console
US20020107043A1 (en) 2001-01-19 2002-08-08 Adamson Alan D. Cordless phone apparatus
US6673023B2 (en) 2001-03-23 2004-01-06 Stryker Puerto Rico Limited Micro-invasive breast biopsy device
US6984213B2 (en) 2001-03-15 2006-01-10 Specialized Health Products, Inc. Biopsy needle device
US6695786B2 (en) 2001-03-16 2004-02-24 U-Systems, Inc. Guide and position monitor for invasive medical instrument
US20020138021A1 (en) 2001-03-23 2002-09-26 Devonrex, Inc. Micro-invasive tissue removal device
US6432064B1 (en) 2001-04-09 2002-08-13 Ethicon Endo-Surgery, Inc. Biopsy instrument with tissue marking element
US6753671B1 (en) 2001-04-17 2004-06-22 Thomas Patrick Harvey Recharger for use with a portable electronic device and which includes a proximally located light emitting device
US6620111B2 (en) 2001-04-20 2003-09-16 Ethicon Endo-Surgery, Inc. Surgical biopsy device having automatic rotation of the probe for taking multiple samples
JP3783576B2 (en) 2001-05-25 2006-06-07 日立工機株式会社 DC power supply with charging function
US7510534B2 (en) 2001-07-20 2009-03-31 Ethicon Endo-Surgery, Inc. Method for operating biopsy device
US7077842B1 (en) 2001-08-03 2006-07-18 Cosman Jr Eric R Over-the-wire high frequency electrode
US6709408B2 (en) 2001-08-09 2004-03-23 Biopsy Sciences, Llc Dual action aspiration biopsy needle
US10595710B2 (en) 2001-10-19 2020-03-24 Visionscope Technologies Llc Portable imaging system employing a miniature endoscope
US7485125B2 (en) 2001-12-17 2009-02-03 Smith & Nephew, Inc. Cutting instrument
US6695791B2 (en) 2002-01-04 2004-02-24 Spiration, Inc. System and method for capturing body tissue samples
JP4342319B2 (en) 2002-03-19 2009-10-14 バード ダブリン アイティーシー リミティッド Biopsy device and biopsy needle module usable for biopsy device
JP4260024B2 (en) 2002-03-19 2009-04-30 バード ダブリン アイティーシー リミティッド Vacuum biopsy device
DE10235480A1 (en) 2002-08-02 2004-02-19 Bard Dublin Itc Ltd., Crawley Handheld biopsy unit for the removal of tissue, comprises at least one tensioning and launching unit, and a needle unit with an outer hollow needle and a hollow biopsy needle
DE20209525U1 (en) 2002-06-19 2002-11-07 Heske Norbert F Plastic coaxial cannula
JP2005520617A (en) 2002-03-20 2005-07-14 ボード・オブ・リージエンツ,ザ・ユニバーシテイ・オブ・テキサス・システム Biopsy needle
GB0208627D0 (en) 2002-04-16 2002-05-22 Imprint Pharm Ltd Needle
US7374544B2 (en) 2002-04-19 2008-05-20 Pelikan Technologies, Inc. Method and apparatus for penetrating tissue
US7316726B2 (en) 2002-04-23 2008-01-08 Tissue Extraction Devices, Llc Evaporation valve
US7658718B2 (en) 2002-05-31 2010-02-09 Promex Technologies, Llc Biopsy needle with integrated guide pin
US7066893B2 (en) 2002-06-06 2006-06-27 Ethicon Endo-Surgery, Inc. Biopsy method
US20040030367A1 (en) 2002-08-09 2004-02-12 Olympus Optical Co., Ltd. Medical control device, control method for medical control device, medical system device and control system
US20080161720A1 (en) 2002-10-07 2008-07-03 Nicoson Zachary R Registration system
US7347829B2 (en) 2002-10-07 2008-03-25 Suros Surgical Systems, Inc. Introduction system for minimally invasive surgical instruments
US20040092992A1 (en) 2002-10-23 2004-05-13 Kenneth Adams Disposable battery powered rotary tissue cutting instruments and methods therefor
US7740597B2 (en) 2002-12-11 2010-06-22 Ethicon Endo-Surgery, Inc. Biopsy device with sample tube
US7351210B2 (en) 2002-12-11 2008-04-01 Ethicon-Endo-Surgery, Inc. Biopsy device with piston advance
US6889833B2 (en) 2002-12-30 2005-05-10 Calypso Medical Technologies, Inc. Packaged systems for implanting markers in a patient and methods for manufacturing and using such systems
US20040133124A1 (en) 2003-01-06 2004-07-08 Cook Incorporated. Flexible biopsy needle
US7252641B2 (en) 2003-02-25 2007-08-07 Ethicon Endo-Surgery, Inc. Method of operating a biopsy device
US7025732B2 (en) 2003-02-25 2006-04-11 Ethicon Endo-Surgery, Inc. Biopsy device with variable speed cutter advance
US7156815B2 (en) 2003-03-19 2007-01-02 Biomedical Resources, Inc. Soft tissue biopsy instrument
DE10314240A1 (en) 2003-03-29 2004-10-07 Bard Dublin Itc Ltd., Crawley Pressure generating unit
US7311673B2 (en) 2003-04-24 2007-12-25 Acueity, Inc. Biopsy device
US7169114B2 (en) 2003-06-04 2007-01-30 Krause William R Biopsy and delivery device
US20050020909A1 (en) 2003-07-10 2005-01-27 Moctezuma De La Barrera Jose Luis Display device for surgery and method for using the same
US7494473B2 (en) 2003-07-30 2009-02-24 Intact Medical Corp. Electrical apparatus and system with improved tissue capture component
AT413790B (en) 2003-08-07 2006-06-15 Frass Michael Dr DEVICE FOR NEEDLE BIOPSIA
US7452367B2 (en) 2003-08-12 2008-11-18 William R. Rassman Method and apparatus for transplanting a hair graft
US7001341B2 (en) 2003-08-13 2006-02-21 Scimed Life Systems, Inc. Marking biopsy sites
US8034003B2 (en) 2003-09-11 2011-10-11 Depuy Mitek, Inc. Tissue extraction and collection device
US20090007336A1 (en) 2003-09-11 2009-01-08 Kenzou Kassai Baby Position Holding Structure and Baby Pillow
US7419472B2 (en) 2003-09-30 2008-09-02 Ethicon Endo-Surgery, Inc. Biopsy instrument with internal specimen collection mechanism
US7405536B2 (en) 2003-10-08 2008-07-29 Black & Decker Inc. Battery pack-detecting charger
US20070213590A1 (en) 2003-10-09 2007-09-13 Gyntec Medical, Inc. Apparatus and methods for examining, visualizing, diagnosing, manipulating, treating and recording of abnormalities within interior regions of body cavities
US8357103B2 (en) 2003-10-14 2013-01-22 Suros Surgical Systems, Inc. Vacuum assisted biopsy needle set
US7988642B2 (en) 2003-10-14 2011-08-02 Suros Surgical Systems, Inc. Vacuum assisted biopsy device
JP4500315B2 (en) 2003-10-14 2010-07-14 シュロス・サージカル・システムズ・インコーポレーテッド Vacuum assisted biopsy needle set
US20050101879A1 (en) 2003-11-06 2005-05-12 Shidham Vinod B. Needle aspiration biopsy device and method
US7304573B2 (en) 2003-11-26 2007-12-04 Ge Medical Systems, Inc Method and system for determining hardware configuration of medical equipment using RF tags
US20050124914A1 (en) 2003-12-04 2005-06-09 Dicarlo Paul Medical instrument
US20050193451A1 (en) 2003-12-30 2005-09-01 Liposonix, Inc. Articulating arm for medical procedures
US7402140B2 (en) 2004-02-12 2008-07-22 Sanarus Medical, Inc. Rotational core biopsy device with liquid cryogen adhesion probe
US7328794B2 (en) 2004-03-05 2008-02-12 Boston Scientific Scimed, Inc. Packaging for elongate medical devices and methods of manufacture and use thereof
CA2561913A1 (en) 2004-03-11 2005-09-22 Medrad, Inc. Energy assisted medical devices, systems and methods
US7445739B2 (en) 2004-03-24 2008-11-04 Ethicon Endo-Surgery, Inc. Method of forming a biopsy device
US7708721B2 (en) 2004-04-05 2010-05-04 University Of Medicine & Dentistry Of New Jersey Vascular access needle
US20080281226A1 (en) 2004-05-11 2008-11-13 Inrad, Inc. Core Biopsy Device with Specimen Length Adjustment
US8932233B2 (en) 2004-05-21 2015-01-13 Devicor Medical Products, Inc. MRI biopsy device
US7708751B2 (en) 2004-05-21 2010-05-04 Ethicon Endo-Surgery, Inc. MRI biopsy device
US8075568B2 (en) 2004-06-11 2011-12-13 Selis James E Biopsy devices and methods
US20050275378A1 (en) 2004-06-14 2005-12-15 Serafino Canino Apparatus and method for illuminated battery charging device
USD508458S1 (en) 2004-06-25 2005-08-16 Harman International Industries, Incorporated Audio and charging station for a handheld electronic device
DK1768571T3 (en) 2004-07-09 2012-06-18 Bard Peripheral Vascular Inc Biopsy device firing system
EP1778104A1 (en) 2004-07-29 2007-05-02 X-Sten, Corp. Spinal ligament modification devices
DE102004037270B4 (en) 2004-07-31 2008-01-31 Roche Diagnostics Gmbh Blood collection system for taking blood for diagnostic purposes
US7276032B2 (en) 2004-09-29 2007-10-02 Ethicon Endo-Surgery, Inc. Biopsy apparatus and method
US20060074344A1 (en) 2004-09-29 2006-04-06 Hibner John A Fluid control for biopsy device
US7740594B2 (en) 2004-09-29 2010-06-22 Ethicon Endo-Surgery, Inc. Cutter for biopsy device
US20060074345A1 (en) 2004-09-29 2006-04-06 Hibner John A Biopsy apparatus and method
US7740596B2 (en) 2004-09-29 2010-06-22 Ethicon Endo-Surgery, Inc. Biopsy device with sample storage
WO2006038634A1 (en) 2004-10-05 2006-04-13 Olympus Corporation Endoscope system, bio-specimen storage container, bio-specimen sampling method, and bio-specimen treating method
US7557536B2 (en) 2004-11-07 2009-07-07 Milwaukee Electric Tool Corporation Light
JP2006141441A (en) 2004-11-16 2006-06-08 Olympus Corp Biopsy device and container for biopsy device
US20090204021A1 (en) 2004-12-16 2009-08-13 Senorx, Inc. Apparatus and method for accessing a body site
USD524730S1 (en) 2005-01-20 2006-07-11 Braun Gmbh Charger unit for a toothbrush
US7517321B2 (en) 2005-01-31 2009-04-14 C. R. Bard, Inc. Quick cycle biopsy system
US20060184063A1 (en) 2005-02-15 2006-08-17 Miller Michael E Single motor handheld biopsy device
US7517322B2 (en) 2005-03-04 2009-04-14 Ethicon Endo-Surgery, Inc. Biopsy device with variable side aperture
US20060200041A1 (en) 2005-03-04 2006-09-07 Ethicon Endo-Surgery, Inc. Biopsy device incorporating an adjustable probe sleeve
CA2602091A1 (en) 2005-04-21 2007-04-12 Brigham Young University Single-hand operated syringe-like device that provides electronic chain of custody when securing a sample for analysis
US9332971B2 (en) 2005-04-28 2016-05-10 Boston Scientific Scimed, Inc. Biopsy systems
US7397654B2 (en) 2005-06-07 2008-07-08 Belkin International Inc. Uninterruptible power supply and method of manufacturing same
US20070016101A1 (en) 2005-07-13 2007-01-18 Feldman Dennis D Core Biopsy Device
US7219867B2 (en) 2005-07-14 2007-05-22 Garmin Ltd. Mount assembly for electronic devices
US7854707B2 (en) 2005-08-05 2010-12-21 Devicor Medical Products, Inc. Tissue sample revolver drum biopsy device
US7896817B2 (en) 2005-08-05 2011-03-01 Devicor Medical Products, Inc. Biopsy device with manually rotated sample barrel
US20080004545A1 (en) 2005-08-05 2008-01-03 Garrison William A Trigger Fired Radial Plate Specimen Retrieval Biopsy Instrument
US7867173B2 (en) 2005-08-05 2011-01-11 Devicor Medical Products, Inc. Biopsy device with replaceable probe and incorporating vibration insertion assist and static vacuum source sample stacking retrieval
US7662109B2 (en) 2006-02-01 2010-02-16 Ethicon Endo-Surgery, Inc. Biopsy device with replaceable probe incorporating static vacuum source dual valve sample stacking retrieval and saline flush
CA2616714C (en) 2005-08-10 2017-01-24 Jon Taylor Single-insertion, multiple sample biopsy device with integrated markers
EP1921998B8 (en) 2005-08-10 2021-07-07 C.R.Bard, Inc. Single-insertion, multiple sampling biopsy device with linear drive
CA2616823C (en) 2005-08-10 2014-06-03 C.R. Bard Inc. Single-insertion, multiple sampling biopsy device usable with various transport systems and integrated markers
US8187294B2 (en) 2005-09-26 2012-05-29 Suros Surgical Systems, Inc. Rotating surgical cutter
US8380126B1 (en) 2005-10-13 2013-02-19 Abbott Medical Optics Inc. Reliable communications for wireless devices
CA2626793C (en) 2005-10-21 2016-02-16 Stryker Corporation System and method for recharging a battery exposed to a harsh environment
US8764664B2 (en) 2005-11-28 2014-07-01 Vizyontech Imaging, Inc. Methods and apparatus for conformable medical data acquisition pad and configurable imaging system
WO2007095330A2 (en) 2006-02-15 2007-08-23 Hologic Inc Breast biopsy and needle localization using tomosynthesis systems
US7473232B2 (en) 2006-02-24 2009-01-06 Boston Scientific Scimed, Inc. Obtaining a tissue sample
US7670299B2 (en) 2006-03-07 2010-03-02 Ethincon Endo-Surgery, Inc. Device for minimally invasive internal tissue removal
US7806834B2 (en) 2006-03-07 2010-10-05 Devicor Medical Products, Inc. Device for minimally invasive internal tissue removal
ES2593310T3 (en) 2006-03-31 2016-12-07 Bard Peripheral Vascular, Inc. Tissue sampling system with visual inspection of the sample
US8013572B2 (en) 2006-04-11 2011-09-06 Andrew Rodgers Recharging device for use with portable electronic devices
US20070287933A1 (en) 2006-06-08 2007-12-13 Chris Phan Tissue debulking device and method of using the same
US20070293788A1 (en) 2006-06-19 2007-12-20 Vita Special Purpose Corporation Bone harvest system
US20080007217A1 (en) 2006-07-06 2008-01-10 Riley Louis F Method and apparatus for recharging a hearing device
US7666200B2 (en) 2006-07-19 2010-02-23 Target Medical Innovations Llc Endoscopic cutting instrument with axial and rotary motion
DE102006034756A1 (en) 2006-07-24 2008-01-31 Karl Storz Gmbh & Co. Kg Medical instrument for cutting tissue
US20080030170A1 (en) 2006-08-03 2008-02-07 Bruno Dacquay Safety charging system for surgical hand piece
US20080042861A1 (en) 2006-08-16 2008-02-21 Bruno Dacquay Safety battery meter system for surgical hand piece
EP2061378B1 (en) 2006-08-21 2018-10-03 C.R.Bard, Inc. Self-contained handheld biopsy needle
DE502006003551D1 (en) 2006-09-29 2009-06-04 W & H Dentalwerk Buermoos Gmbh Device for charging accumulators
PT2086418E (en) 2006-10-06 2011-03-29 Bard Peripheral Vascular Inc Tissue handling system with reduced operator exposure
US20080306404A1 (en) 2006-10-10 2008-12-11 Ronald Timothy R Dual-passage biopsy needle device
US20100030020A1 (en) 2006-10-20 2010-02-04 Femsuite Llc Optical surgical device and method of use
US8600299B2 (en) 2006-11-10 2013-12-03 Siemens Medical Solutions Usa, Inc. Transducer array imaging system
US8042689B2 (en) 2006-11-22 2011-10-25 Becton, Dickinson And Company Extravascular system packaging systems
US8480595B2 (en) 2006-12-13 2013-07-09 Devicor Medical Products, Inc. Biopsy device with motorized needle cocking
US9345457B2 (en) 2006-12-13 2016-05-24 Devicor Medical Products, Inc. Presentation of biopsy sample by biopsy device
US8251916B2 (en) 2006-12-13 2012-08-28 Devicor Medical Products, Inc. Revolving tissue sample holder for biopsy device
US9220573B2 (en) 2007-01-02 2015-12-29 Medtronic Navigation, Inc. System and method for tracking positions of uniform marker geometries
US20080208194A1 (en) 2007-02-13 2008-08-28 Christine Bickenbach Double cut shaver
US20080221444A1 (en) 2007-03-07 2008-09-11 Ritchie Paul G Integrated Imaging and Biopsy System with Integrated Surgical, Therapy, and Diagnostic Devices
US7422136B1 (en) * 2007-03-15 2008-09-09 Tyco Healthcare Group Lp Powered surgical stapling device
EP2136712B1 (en) 2007-03-23 2018-06-27 3M Innovative Properties Company Power management for medical sensing devices employing multiple sensor signal feature detection
WO2008124463A2 (en) 2007-04-04 2008-10-16 Vidacare Corporation Powered drivers, intraosseous devices and methods to access bone marrow
US20080281301A1 (en) 2007-04-20 2008-11-13 Deboer Charles Personal Surgical Center
US20090062624A1 (en) 2007-04-26 2009-03-05 Thomas Neville Methods and systems of delivering a probability of a medical condition
US20080308602A1 (en) 2007-06-18 2008-12-18 Timm Richard W Surgical stapling and cutting instruments
WO2009000078A1 (en) 2007-06-25 2008-12-31 Led Medical Diagnostics, Inc. Methods, systems and apparatus relating to colposcopic-type viewing extension devices
US8202229B2 (en) 2007-10-01 2012-06-19 Suros Surgical Systems, Inc. Surgical device
US8241331B2 (en) 2007-11-08 2012-08-14 Spine21 Ltd. Spinal implant having a post-operative adjustable dimension
US20090163870A1 (en) 2007-12-20 2009-06-25 Jake Flagle Targeting obturator
US8057402B2 (en) 2007-12-27 2011-11-15 Devicor Medical Products, Inc. Vacuum sensor and pressure pump for tetherless biopsy device
US7854706B2 (en) 2007-12-27 2010-12-21 Devicor Medical Products, Inc. Clutch and valving system for tetherless biopsy device
US8622924B2 (en) 2008-02-27 2014-01-07 Devicor Medical Products, Inc. Needle tip for biopsy device
JP2009247434A (en) 2008-04-02 2009-10-29 Olympus Medical Systems Corp Operation system
US9332973B2 (en) 2008-10-01 2016-05-10 Covidien Lp Needle biopsy device with exchangeable needle and integrated needle protection
US20100114031A1 (en) 2008-11-05 2010-05-06 Jarial Inderjeet S Introducer localization assemblies
KR101167529B1 (en) 2008-11-18 2012-07-20 박희붕 Biopsy device
WO2010065736A2 (en) 2008-12-03 2010-06-10 The Regents Of The University Of Michigan Biopsy device having hemostatic control
US8574167B2 (en) 2008-12-16 2013-11-05 Devicor Medical Products, Inc. Needle for biopsy device
US8162850B2 (en) 2008-12-16 2012-04-24 Devicor Medical Products, Inc. Hand actuated tetherless biopsy device with scissors grip
US8690793B2 (en) 2009-03-16 2014-04-08 C. R. Bard, Inc. Biopsy device having rotational cutting
US8672860B2 (en) 2009-05-18 2014-03-18 Devicor Medical Products, Inc. Tetherless biopsy device with self-reversing cutter drive mechanism
US8206316B2 (en) 2009-06-12 2012-06-26 Devicor Medical Products, Inc. Tetherless biopsy device with reusable portion
US20110071391A1 (en) 2009-09-24 2011-03-24 Speeg Trevor W V Biopsy marker delivery device with positioning component
US20110152715A1 (en) 2009-12-22 2011-06-23 Cook Incorporated Biopsy needle with vacuum assist
US9980707B2 (en) 2011-04-04 2018-05-29 Cook Medical Technologies Llc Endoscopic ultrasound-guided biopsy needle
US20120022397A1 (en) 2010-07-22 2012-01-26 Jarial Inderjeet S Needle Set for a Biopsy Device and Related Method
FR2967567B1 (en) 2010-11-19 2012-12-14 Jean-Charles Persat VECTOR FOR TISSUE PARTICULARLY ADIPOSE
WO2012106293A1 (en) 2011-01-31 2012-08-09 Boston Scientific Scimed, Inc. Distal tip configurations for biopsy with eus fna
US9668718B2 (en) 2011-06-03 2017-06-06 Theragenics Corporation Methods and apparatus for tissue removal
CA2870694A1 (en) 2012-04-16 2013-10-24 Jeff M. HATHAWAY Biopsy device
WO2014058667A1 (en) 2012-10-10 2014-04-17 Cook Medical Technologies Llc Rotary sample-collection needle
CN104797200B (en) 2012-11-21 2018-04-27 C·R·巴德公司 Core needle biopsy device
US9536446B2 (en) * 2012-12-03 2017-01-03 Dynamic Motion Group Gmbh Motion simulation system controller and associated methods
CN104918558B (en) 2013-01-18 2018-01-09 麦瑞通医疗设备有限公司 Impingement biopsy device and application method
US10085727B2 (en) 2013-02-08 2018-10-02 Carefusion 2200, Inc. Vacuum assisted handheld biopsy device
US9414815B2 (en) 2013-03-15 2016-08-16 Vidacare LLC Intraosseous needle sets and kits
DK3094262T3 (en) 2014-01-17 2019-09-30 Merit Medical Systems Inc GLASS CUTTED BIOPSIN INJECTION UNIT
US20150342580A1 (en) 2014-05-30 2015-12-03 Cook Medical Technologies Llc Laser cut needle cannula with increased flexibility
US9877708B2 (en) 2014-07-30 2018-01-30 Covidien Lp Exchangeable core biopsy needle
EP3184053A4 (en) 2014-08-20 2018-04-11 Olympus Corporation Needle tube
WO2016048898A2 (en) 2014-09-22 2016-03-31 Boston Scientific Scimed, Inc. Hinged needle
US10166084B2 (en) 2014-11-06 2019-01-01 Devicor Medical Products, Inc. Spring-ejected biopsy marker
US20190110779A1 (en) * 2016-03-31 2019-04-18 Snpshot Trustee Limited Biological sampler, collector and storage container
US11116483B2 (en) 2017-05-19 2021-09-14 Merit Medical Systems, Inc. Rotating biopsy needle
US11793498B2 (en) 2017-05-19 2023-10-24 Merit Medical Systems, Inc. Biopsy needle devices and methods of use
US20210093305A1 (en) 2019-09-27 2021-04-01 Merit Medical Systems, Inc. Rotation biopsy system and handle

Patent Citations (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20010011156A1 (en) * 1998-02-20 2001-08-02 Viola Frank J. Biopsy instrument driver apparatus
US20070068990A1 (en) * 2005-09-29 2007-03-29 Shelton Frederick E Iv Surgical stapling instrument having preloaded firing assistance mechanism
US20120215130A1 (en) * 2008-05-30 2012-08-23 Inrad, Inc. Biopsy device having specimen length adjustment
US20150119916A1 (en) * 2010-02-11 2015-04-30 Ethicon Endo-Surgery, Inc. Ultrasonic surgical instruments with moving cutting implement
US9474527B1 (en) * 2011-04-26 2016-10-25 Bryan D. Knodel Surgical instrument with discrete articulation
US20140296741A1 (en) 2011-07-21 2014-10-02 The General Hospital Corporation Method and apparatus for subsurface tissue sampling
US20130046316A1 (en) 2011-08-18 2013-02-21 Hologic, Inc. Tissue removal system

Non-Patent Citations (1)

* Cited by examiner, † Cited by third party
Title
See also references of EP3624698A4

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
KR20220014906A (en) * 2019-11-22 2022-02-07 주식회사 플라워메디칼 Core biopsy device
KR102452431B1 (en) 2019-11-22 2022-10-11 주식회사 플라워메디칼 Core biopsy device

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