Implantable adjunct with density gradients
Implantable adjuncts for use with a surgical instrument are disclosed. The implantable adjunct includes a first mesh positioned about a first side of the longitudinal knife slot and a second mesh positioned about a second side of the longitudinal knife slot such that the first and second meshes define a gap substantially aligned with the longitudinal knife slot of the staple cartridge body.
1 . An implantable adjunct for use with a surgical instrument, the implantable adjunct comprising:
a longitudinal knife slot along a longitudinal axis of the implantable adjunct;
a first mesh positioned about a first side of the longitudinal knife slot; and
a second mesh positioned about a second side of the longitudinal knife slot,
wherein the first mesh and the second mesh comprise a plurality of first fibers that form a three-dimensional structure and comprise a first material;
wherein the first mesh and the second mesh define a gap substantially aligned with a longitudinal knife slot of a staple cartridge body, and
wherein the first and second meshes comprise:
a medial portion proximal to the longitudinal knife slot and a lateral portion proximal to a lateral side of the respective mesh, and the medial portion comprises a higher density of first fibers relative to the density of first fibers in the lateral portion.
2 . The implantable adjunct of claim 1 , wherein the first fibers are further interconnected to adjacent first fibers at one or more weave points.
3 . The implantable adjunct of claim 2 , wherein the medial portion comprises a lower density of weave points compared to the density of weave points in the lateral portion such that the medial portion is more compressible than the lateral portion.
4 . The implantable adjunct of claim 1 , wherein the first fibers are interwoven into lateral seams and longitudinal seams.
5 . The implantable adjunct of claim 4 , wherein the medial portion comprises a lower density of longitudinal seams and wherein the lateral portion comprises a higher density of lateral seams.
6 . The implantable adjunct of claim 1 , wherein the first fibers are organized substantially parallel to neighboring fibers and transverse to the longitudinal axis, such that the plurality of first fibers act as a spring.
7 . The implantable adjunct of claim 1 , wherein the first fibers are compressible to reduce over-compression of tissue in response to variations in tissue thickness when implanted within a patient during a surgical procedure.
8 . The implantable adjunct of claim 1 , wherein the first and second meshes further comprise a plurality of second fibers comprising a second material different than the first material.
9 . The implantable adjunct of claim 8 , wherein the first material comprises a first thermal transition temperature in which the first material undergoes a phase change, and wherein the second material comprises a second thermal transition temperature, different from the first thermal transition temperature, in which the second material undergoes a phase change.
10 . The implantable adjunct of claim 9 , wherein the first fibers are interwoven into a mesh with the second fibers, and wherein the first fibers contract when exposed to a temperature which equals or exceeds the thermal transition temperature of the first material.
11 . The implantable adjunct of claim 10 , wherein when the implantable adjunct is exposed to a temperature which exceeds the first thermal transition temperature of the first material and is below the second thermal transition temperature, the first fibers contract while the second fibers resist contraction.
12 . The implantable adjunct of claim 11 , wherein the implantable adjunct undergoes a change in shape to compensate for variations of tissue thickness when implanted within a patient during a surgical procedure.
13 . The implantable adjunct of claim 1 , wherein the gap defined by the first mesh and second mesh is equal to or larger than a width of a cutting edge of the surgical instrument.
14 . An implantable adjunct for use with a surgical instrument, the implantable adjunct comprising:
a longitudinal knife slot along a longitudinal axis of the implantable adjunct;
a first mesh positioned about a first side of the longitudinal knife slot; and
a second mesh positioned about a second side of the longitudinal knife slot, wherein the first mesh and the second mesh comprise a plurality of first fibers comprising a first material and a plurality of second fibers comprising a second material, the second material different than the first material, and wherein the first and second meshes comprise:
a medial portion proximal to the longitudinal knife slot and a lateral portion proximal to a lateral side of the respective mesh, and the medial portion comprises a higher density of the fibers than the density of the respective fibers in the lateral portion.
15 . The implantable adjunct of claim 14 , wherein the first material comprises a first thermal transition temperature in which the first material undergoes a phase change, and wherein the second material comprises a second thermal transition temperature, different from the first thermal transition temperature, in which the second material undergoes a phase change.
16 . The implantable adjunct of claim 15 , wherein the first fibers are interwoven into a mesh with the second fibers, and wherein the first fibers contract when exposed to a temperature which equals or exceeds the thermal transition temperature of the first material.
17 . The implantable adjunct of claim 15 , wherein the first fibers and the second fibers are interwoven into lateral seams and longitudinal seams.
18 . The implantable adjunct of claim 17 , wherein the medial portion comprises a lower density of longitudinal seams and wherein the lateral portion comprises a higher density of lateral seams.
19 . The implantable adjunct of claim 15 , wherein the implantable adjunct undergoes a change in shape to compensate for variations of tissue thickness when implanted within a patient during a surgical procedure.