This disclosure is directed to ligation clips for sealing body vessels and, more particularly, to polymeric ligation clips that include latch mechanisms for retaining jaws of the ligation clips in clamped positions.
Polymeric ligation clips are well known in the surgical arts and are commonly used during a variety of surgical procedures to ligate tissue, e.g., a body vessel. Typically, ligation clips include first and second jaws that include clamping surfaces. The first and second jaws are pivotably connected to each other and movable between open and clamped positions. Typically, each of the first and second jaws includes a portion of a latching mechanism. When the ligation clip is moved to the clamped position and clamped about tissue, the portions of the latching mechanism engage to retain the ligation clip in the clamped position about the tissue.
In existing polymeric ligation clips, the portions of the latching mechanism on the first and second jaws engage each other as the ligation clip is moved from the open position to the clamped position. Upon engagement, one portion of the latching mechanism is deformed outwardly of and passes over the second portion of the latching mechanism as the ligation clip moves toward the clamped position. When the first portion of the latching mechanism passes over the second portion of the latching mechanism, the first portion returns to its non-deformed state to secure the ligation clip in the clamped position. In such a latching mechanism, a latching force required to deform the first portion of the latch mechanism outwardly of the second portion of the latch mechanism may be undesirably high making it difficult for a clinician to apply the ligation clip to tissue. Similarly, an unlatching force may be undesirably low to allow the ligation clip to be inadvertently moved to the open position and removed from the tissue.
One aspect of the disclosure is directed to a ligation clip that includes a first jaw, a second jaw, and a hinge portion. The first jaw defines a first clamping surface and has a distal portion and a proximal portion. The distal portion of the first jaw supports a latch member including a first contact surface and a first retention surface. The second jaw defines a second clamping surface and has a distal portion and a proximal portion. The distal portion of the second jaw has a latch member receiver including a second contact surface and a second retention surface. The hinge portion couples the proximal portion of the first jaw to the proximal portion of the second jaw to facilitate pivotal movement of the second jaw in relation to the first jaw from an open position to a clamped position. In the clamped position the first retention surface is engaged with the second retention surface. The first retention surface extends in a proximal direction towards the first clamping surface of the first jaw, and the second contact surface is linear and engages the first contact surface of the latch member as the ligation clip is moved towards the clamped position to deflect the latch member distally outwardly of the latch member receiver to guide the first retention surface into engagement with the second retention surface.
In aspects of the disclosure, the first retention surface is linear and defines a first plane that intersects the first clamping surface.
In some aspects of the disclosure, the first plane intersects a central portion of the first clamping surface.
In certain aspects of the disclosure, the second retention surface is linear and defines a second plane that is substantially parallel to the first plane when the ligation clip is in the clamped position.
In aspects of the disclosure, the first contact surface is a linear.
In some aspects of the disclosure, the first retention surface is a curved surface.
In certain aspects of the disclosure, the latch member includes a hook-shaped body, wherein the retention surface is formed on an inner surface of the hook-shaped body and the contact surface is formed on an outer surface of the hooked-shaped body.
In aspects of the disclosure, the distal portion of each of the first and second jaws includes bosses that are configured to engage a clip applier.
In aspects of the disclosure, the bosses on the distal portion of the second jaw are positioned on opposite sides of the second contact surface to define a channel with the second contact surface.
Another aspect of the disclosure is directed to a ligation clip that includes a first jaw, a second jaw, and a hinge portion. The first jaw defines a first clamping surface and has a distal portion and a proximal portion. The distal portion of the first jaw supports a latch member including a first contact surface and a first retention surface. The second jaw defines a second clamping surface and has a distal portion and a proximal portion. The distal portion of the second jaw has a latch member receiver including a second contact surface and a second retention surface. The hinge portion couples the proximal portion of the first jaw to the proximal portion of the second jaw to facilitate pivotal movement of the second jaw in relation to the first jaw from an open position to a clamped position. In the clamped position, the first retention surface is engaged with the second retention surface. The second contact surface is linear and engages the first contact surface of the latch member as the ligation clip is moved towards the clamped position to deflect the latch member distally outwardly of the latch member receiver to guide the first retention surface into engagement with the second retention surface.
In aspects of the disclosure, the first retention surface extends in a proximal direction towards the first clamping surface of the first jaw.
In some aspects of the disclosure, the first retention surface is linear and defines a first plane that intersects the first clamping surface.
Another aspect of the disclosure is directed to a ligation clip that includes a first jaw, a second jaw, and a hinge portion. The first jaw defines a first clamping surface and has a distal portion and a proximal portion. The distal portion of the first jaw supports a latch member including a first contact surface and a first retention surface. The second jaw defines a second clamping surface and has a distal portion and a proximal portion. The distal portion of the second jaw has a latch member receiver including a second contact surface and a second retention surface. The hinge portion couples the proximal portion of the first jaw to the proximal portion of the second jaw to facilitate pivotal movement of the second jaw in relation to the first jaw from an open position to a clamped position. In the clamped position the first retention surface is engaged with the second retention surface. The first retention surface extends in a proximal direction towards the first clamping surface of the first jaw.
In aspects of the disclosure, the first and second contact surfaces are linear and the second contact surface engages the first contact surface as the ligation clip is moved towards the clamped position to deflect the latch member distally outwardly of the latch member receiver to guide the first retention surface into engagement with the second retention surface.
In some aspects of the disclosure, the first retention surface of the latch member is linear and defines a first plane that intersects the first clamping surface of the first jaw.
Various exemplary aspects of the disclosed ligation clip are described herein below with reference to the drawings, wherein:
The disclosed polymeric ligation clip will now be described in detail with reference to the drawings in which like reference numerals designate identical or corresponding elements in each of the several views. It is to be understood that the disclosed aspects of the ligation clip are merely exemplary of the disclosure and may be embodied in various forms. Well-known functions or constructions are not described in detail to avoid obscuring the disclosure in unnecessary detail. Specific structural and functional details disclosed herein are not to be interpreted as limiting, but merely as a basis for the claims and as a representative basis for teaching one skilled in the art to variously employ the disclosure in virtually any appropriately detailed structure.
In this description, the term “proximal” is used generally to refer to that portion of the device that is closer to a clinician, while the term “distal” is used generally to refer to that portion of the device that is farther from the clinician. In addition, the term “clinician” is used generally to refer to medical personnel including doctors, nurses, and support personnel.
As used herein, the term “parallel” is understood to include relative configurations that are substantially parallel up to about +/−10 degrees from true parallel.
The disclosed polymeric ligation clip includes first jaw and second jaws which support a latch mechanism. The latch mechanism includes a latch member that is supported on one end of the first jaw and a latch member receiver that is supported on one end of the second jaw. The latch member and the latch member receiver are movable into engagement with each other when the ligation clip is moved to a clamped position to secure the ligation clip in the clamped position. The latch member and the latch member receiver are configured to facilitate closure of the ligation clip with less force than required for closure of existing polymeric clips. In addition, the latch member and the latch member receiver are configured to provide a more secure closure of the ligation clip to minimize the likelihood of inadvertent movement of the ligation clip from the clamped position to the open position.
The first jaw 12 includes a proximal portion 18, a distal portion 20, and a clamping surface 22. The second jaw 14 includes a proximal portion 24, a distal portion 26, and a clamping surface 28. The proximal portions 18, 24 of the first and second jaws 12, 14, respectively, are coupled to the hinge portion 16. In the clamped position (
The distal portions 20, 26 of the first and second jaws 12, 14, respectively, define a latching mechanism. More specifically, the distal portion 20 of the first jaw 12 includes a latch member 30 and the distal portion of the second jaw 14 defines a latch member receiver 32. The latch member 30 is moved into engagement with the latch member receiver 32 when the ligation clip 10 is moved to the clamped position to retain the ligation clip 10 in the clamped position as described below.
In some aspects of the disclosed ligation clip 10, the angle, length, and/or width of the retention surfaces 54, 64 of the latch member 30 and latch member receiver 32, respectively, can be varied to increase or decrease the latching force of the latching mechanism of the ligation clip 10. In addition, the configuration of the retention surfaces 54, 64 may also be modified to adjust the latching force of the latching mechanism of the ligation clip 10. For example, the retention surfaces 54, 64 need not be linear but rather may be multi-linear, arcuate, or some combination of linear and arcuate.
In certain aspects of the disclosed ligation clip 10 as illustrated in
The second jaw 14 supports a spring arm 90 that positioned to engage and be deflected by the latch member 30 to create a compressive force within the spring arm 90 that presses the latch member 30 into engagement with the latch member receiver 32 when the ligation clip 100 is in the clamped position. This compression helps to retain the latch member 30 and the latch member receiver 32 in the latched position.
In embodiments, the ligation clips described above may be made, in whole or in part, of a resilient bioabsorbable and/or biocompatible polymeric material. Examples of suitable bioabsorbable and/or biocompatible polymers include acetal polyoxymethylene (POM), polyethylene terephthalate (PET), polybutylene terephthalate (PBT), polyoxymethylene, polyetheretherketone (PEEK), polypropylene, and polyethylene or other thermoplastic materials having similar properties that can be injection-molded. The clip may also be made of a polymer material or materials in combination with radiolucent metal alloys. Alternately, other materials may be used to form the clip 10 including biocompatible metals, plastics and composites.
As illustrated, the first and second retention surfaces 54, 64 are substantially parallel to each other and define a plane “P” (
As summarized above, the linear configuration of the first and second contact surfaces 52, 62 of the latch member 30 and the latch member receiver 32 minimizes the force required to move the ligation clip 10 from the open position to the clamped position from that of existing ligation clips. In addition, the configuration and orientation of the retention surfaces 54, 64 of the latch member 30 and latch member receiver 30, 32, respectively, of the ligation clip 10 increases the force required to unclamp the ligation clip 10 from that of existing ligation clips.
Persons skilled in the art will understand that the devices and methods specifically described herein and illustrated in the accompanying drawings are non-limiting exemplary embodiments. It is envisioned that the elements and features illustrated or described in connection with one exemplary embodiment may be combined with the elements and features of another without departing from the scope of the disclosure. As well, one skilled in the art will appreciate further features and advantages of the disclosure based on the above-described embodiments. Accordingly, the disclosure is not to be limited by what has been particularly shown and described, except as indicated by the appended claims.
Number | Date | Country | |
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62881966 | Aug 2019 | US |