Corrugated microporous tissue interface for improved performance and infection resistance of vascular grafts and other implantable devices
Provided herein are implantable devices, such as vascular grafts and access port for hemodialysis, that include a microporous sheath layer having a corrugated outer surface, and use therefore for reducing the risk of infection or stenosis.
1. A method for preventing exit site infection of an implantable device having a skin-breaching component, the method comprising:
providing a microporous sheath surrounding the skin-breaching component, the microporous sheath being made of a biocompatible elastomeric biomaterial having a corrugated outer surface, the biocompatible elastomeric biomaterial having an open-pore network of interconnected pores extending from the corrugated outer surface to an interface between the microporous sheath to an exterior surface of the skin-breaching component of the implantable device, and wherein substantially all the plurality of the interconnected pores are each connected to at least two other pores, the pores having a mean diameter between about 5 and about 90 micrometers, and wherein any two adjacent pores are connected by a throat, the throat having a mean diameter of at least 5 micrometers,
wherein the microporous sheath includes a base portion and a plurality of ridges extending from the base portion, each two adjacent ridges defining a groove, and wherein the ridges and grooves alternate to provide the corrugated outer surface, and wherein the grooves and ridges are oriented circumferentially or spirally around skin-breaching component and wherein the base portion has a thickness that is 0.8-3 times of a mean height of the ridges.
2. The method of claim 1 wherein the ridges have a mean height of between 0.1 and 4 millimeters, and the base portion has a mean thickness of between 0.1 and 4 millimeters.
3. The method of claim 1 wherein the implantable device is a dialysis access port adapted to house one or more cannulas, and wherein the dialysis access port is configured to interface with skin by the skin-breaching component.
4. The method of claim 1 wherein the implantable device is a catheter.
5. The method of claim 4 wherein the catheter remains implanted through the skin during use or between uses.
6. The method of claim 5 wherein the catheter is used for dialysis.
7. A method for providing hemodialysis access to a subject in need thereof, the method comprising: implanting a percutaneous port through skin, the percutaneous port being configured to connect to an arteriovenous vascular graft; wherein the percutaneous port contacts the skin by a skin-breaching component, and wherein the skin-breaching component is surrounded by a microporous sheath, the microporous sheath being made of a biocompatible elastomeric biomaterial having a corrugated outer surface, the biocompatible elastomeric biomaterial having an open-pore network of interconnected pores extending from the corrugated outer surface to an interface between the microporous sheath to an exterior surface of the skin-breaching component of the implantable device, and wherein substantially all the plurality of the interconnected pores are each connected to at least two other pores, the pores having a mean diameter between about 5 and about 90 micrometers, and wherein any two adjacent pores are connected by a throat, the throat having a mean diameter of at least 5 micrometers,
wherein the microporous sheath includes a base portion and a plurality of ridges extending from the base portion, each two adjacent ridges defining a groove, and wherein the ridges and grooves alternate to provide the corrugated outer surface, and wherein the grooves and ridges are oriented circumferentially or spirally around skin-breaching component; and wherein the base portion has a thickness that is 0.8-3 times of a mean height of the ridges.
8. The method of claim 7 wherein the ridges have a mean height of between 0.1 and 4 millimeters, and the base portion has a mean thickness of between 0.1 and 4 millimeters.
9. The method of claim 7 wherein the percutaneous port remains in the skin during hemodialysis and between hemodialysis.