IP Library › Granted Patent US 12,678,145
Granted Patent B2
US 12,678,145 · App. 18/080,078 · Granted Jul 14, 2026

Core needle biopsy device for collecting multiple samples in a single insertion

Inventor: Andrew P. Nock (Dayton, OH)
A61B10/0275A61B2010/0208A61B2010/0225
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Quick Facts
Patent No.
US 12,678,145
App. No.
18/080,078
Filed
Dec 13, 2022
Granted
Jul 14, 2026
Kind
B2
Art Unit
3791
USPC
600/564
Abstract

A core needle biopsy device includes a body, a needle assembly and a drive assembly. The needle assembly extends distally from the body and includes a hollow piercer and a hollow cutter. The piercer is disposed within the cutter. The cutter includes a distal tip and a swaged portion proximate the distal tip. The drive assembly is configured to selectively cock and fire the piercer and the cutter.

Claims (39)

1 . A core needle biopsy device, comprising:

(a) a body;

(b) a needle assembly extending distally from the body and including a piercer and a hollow cutter, the piercer being disposed within the hollow cutter, the cutter defining a cutting edge, the piercer defining a sharp distal tip configured to penetrate tissue;

(c) a drive assembly including a cutter drive and a piercer drive, the cutter drive including a first manipulator, the piercer drive including a second manipulator; and

(d) a motor driven mechanism in communication with the drive assembly to control movement of the cutter drive and the piercer drive, the motor drive mechanism being configured to drive the first manipulator to compress a cutter spring while moving the cutter into a cocked position, the motor driven mechanism being further configured to drive the second manipulator to compress a piercer firing spring while moving the piercer into a cocked position, the drive assembly being configured to move the cutter and the piercer independently of each other.

2 . The core needle biopsy device of claim 1 , the drive assembly further including a cutter driver and a piercer driver, the cutter driver being secured to the cutter and configured to drive the cutter from the cocked position to a fired position, the piercer driver being secured to the piercer and configured to drive the piercer from the cocked position to a fired position.

3 . The core needle biopsy device of claim 2 , the cutter driver being configured to move relative to the first manipulator, the piercer driver being configured to move relative to the second manipulator.

4 . The core needle biopsy device of claim 2 , further comprising a latch assembly, the latch assembly including a first latch and a second latch, the first latch being configured to engage the cutter driver to selectively release movement of the cutter driver, the second latch being configured to engage the piercer driver to selectively release movement of the piercer driver.

5 . The core needle biopsy device of claim 4 , each of the first latch and the second latch including a tooth and a resilient arm, each tooth extending outwardly from a respective resilient arm.

6 . The core needle biopsy device of claim 4 , each of the first latch and the second latch being integral with the body.

7 . The core needle biopsy device of claim 4 , the first latch being connected with the second latch to release the cutter driver and the piercer driver in a predetermined sequence.

8 . The core needle biopsy device of claim 1 , the drive assembly further including one or more gears in communication with the motor driven mechanism, the first manipulator, and the second manipulator.

9 . The core needle biopsy device of claim 1 , the drive assembly further including a first gear and a second gear, the first gear being in communication with the motor driven mechanism to move the first manipulator, the second gear being in communication with the motor driven mechanism to move the second manipulator.

10 . The core needle biopsy device of claim 1 , the drive assembly further including a first gear and a second gear, the first manipulator including a first rack, the second manipulator including a second rack, the first gear being in communication with the motor driven mechanism to move the first manipulator via engagement with the first rack, the second gear being in communication with the motor driven mechanism to move the second manipulator via engagement with the second rack.

11 . The core needle biopsy device of claim 1 , the motor driven mechanism including a pair of motors.

12 . The core needle biopsy device of claim 1 , the piercer defining a hollow interior, the hollow interior of the piercer being configured to communicate a tissue sample through the piercer and into a tissue sample holder.

13 . The core needle biopsy device of claim 1 , the cutter including a distal tip and a swaged portion proximate the distal tip, the swaged portion being tapered to form a gap between the piercer and the cutter proximally of the distal tip of the cutter.

14 . The core needle biopsy device of claim 1 , the piercer defining a hollow interior, the cutter including a distal tip and a swaged portion proximate the distal tip, the swaged portion of the cutter defining a gap between the piercer and the cutter, the hollow interior of the piercer being configured to communicate a tissue sample through the piercer and into a tissue sample holder, the gap being configured to supply atmospheric air to a portion of the piercer.

15 . A core needle biopsy device, comprising:

(a) a body;

(b) a cutter extending from the body, the cutter including an open distal end defined by a sharp edge;

(c) a piercer disposed within the cutter, the piercer defining a notch, the piercer being movable relative to the cutter to sever a tissue sample into the notch via the sharp edge; and

(d) a drive assembly, including:

(i) a cutter drive assembly having a cutter manipulator, a cutter spring, and a cutter driver extending from the cutter manipulator, the cutter manipulator being translatable by the cutter spring to fire the cutter,

(ii) a piercer drive assembly having a piercer manipulator, a piercer spring, and a piercer driver, the piercer manipulator being translatable by the piercer spring to fire the piercer, the piercer spring being disposed within a hollow interior of the piercer manipulator, and

(iii) an actuation mechanism, the actuation mechanism being configured to selectively engage the cutter driver and the piercer driver to sequentially release axial translation of the cutter and the piercer relative to the body.

16 . The core needle biopsy device of claim 15 , the cutter manipulator and the piercer manipulator having a cylindrical shape.

17 . The core needle biopsy device of claim 15 , the piercer manipulator having a cylindrical shape defining the hollow interior.

18 . The core needle biopsy device of claim 15 , the cutter driver and the piercer driver being configured to translate independently of each other.

19 . The core needle biopsy device of claim 16 , the cutter driver and the piercer driver being configured to translate independently of each other, a portion of the cutter driver being coaxial with the cutter, a portion of the piercer driver being coaxial with the piercer.

20 . A core needle biopsy device, comprising:

(a) a body;

(b) a cutter extending from the body, the cutter including an open distal end defined by a sharp edge;

(c) a piercer disposed within the cutter, the piercer defining a notch, the piercer being movable relative to the cutter to sever a tissue sample into the notch via the sharp edge; and

(d) a drive assembly, including:

(i) a cutter drive assembly having a cutter manipulator, a cutter driver, and a cutter firing spring, the cutter driver extending from the cutter manipulator, the cutter firing spring being coaxial with at least a portion of the cutter manipulator,

(ii) a piercer drive assembly having a piercer manipulator, a piercer driver, and a piercer firing spring, at least a portion of the piercer driver extending from the piercer manipulator, the piercer firing spring being disposed within a hollow interior of the piercer manipulator,

(iii) a cocking assembly, the cocking assembly including a motor driven mechanism, the motor driven mechanism being in communication with the cutter manipulator and the piercer manipulator to translate both the cutter manipulator and the piercer manipulator within the body and compress both the cutter firing spring and the piercer firing spring, and

(iv) a release assembly, the release assembly being configured to selectively engage the cutter drive assembly and the piercer drive assembly to sequentially release axial translation of the cutter and the piercer relative to the body via the cutter firing spring and the piercer firing spring, respectively.

Continuity (3)
Continuation 16525812 · Jul 30, 2019
Provisional Application 62712470 · Jul 31, 2018
Related Publication 20230103758A1 · Apr 6, 2023
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