IP Library › Granted Patent US 12,611,307
Granted Patent B2
US 12,611,307 · App. 19/266,836 · Granted Apr 28, 2026

Load-bearing skin and bone integrated pylon with hermetically sealed neural interface

Inventors: Mark Pitkin (Sharon, MA); Grigory Raykhtsaum (Sharon, MA)
Assignee: Poly-Orth International
A61F2/30749A61F2/72A61F2/78A61F2002/30589A61F2002/30733A61F2002/7887
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Quick Facts
Patent No.
US 12,611,307
App. No.
19/266,836
Granted
Apr 28, 2026
Kind
B2
Abstract

The present invention incorporates a neural interface with a skin and bone integrated device with hermetic seal to prevent infection migration through the interface. The neural interface consists of plurality of wires that conduct the signals between the inside body nerve system and the outside robotic/prosthetic mechanisms and controls. Each wire is electrically insulated through the channel of a single, double or multi bore insulator rod. The wires are extended outside on both ends of the rod forming leads for further connection with corresponding wires conducting signals to and from outside and inside body. The rod assembly is inserted inside a channel of a solid tubular load bearing titanium frame. The outside of the ceramic rod is hermetically brazed to the inside of the frame at both ends. The solid tubular frame is surrounded by a porous titanium portion of the pylon ensuring the integration with the skin.

Claims (21)

1 . A load bearing skin and bone integrated pylon comprises:

a load-bearing solid tubular frame elongated in the direction of implantation, and adapted to carry body weight, forces, and moments associated with locomotion,

wherein an inner portion of the solid tubular frame is adapted to be positioned inside a bone of a limb's residuum and an outer portion of the solid tubular frame is adapted to be positioned outside the limb's residuum to receive a prosthesis, and a middle portion of the solid tubular frame between the inner portion and the outer portion is adopted to be positioned at a skin layer of the limb's residuum,

the middle portion further comprising a porous permeable body comprising compacted and sintered particles filling in regions around the solid tubular frame wherein, in the middle portion, the porosity of the volume fraction of the compacted and sintered particles is within a range of about 30% to about 50%,

wherein the compacted and sintered particles have a particle size within the range of about 20 to about 500 microns and a pore size between the compacted and sintered particles is in a range of about 20 to about 350 microns;

an insulator insert positioned inside the solid tubular frame, and having approximately the same length as said solid tubular frame, said insulator insert having at least one bore extending therethrough,

wherein a hermetic seal is formed between the insert and the solid tubular frame on both ends; and

a plurality of electrically conductive wires each threaded through the entire length of said at least one bore of the insert;

wherein each of the ends of the electrically conductive wires extend outside the insert, forming leads for further connection;

wherein a hermetic seal is formed between each end of the conductive wires and the at least one bore of the insert.

2 . The load-bearing skin and bone integrated pylon of claim 1 , wherein a load-bearing solid tubular frame is made with biocompatible material.

3 . The load-bearing skin and bone integrated pylon of claim 1 , wherein a load-bearing solid tubular frame is made with pure or alloyed titanium.

4 . The load-bearing skin and bone integrated pylon of claim 1 , wherein a load-bearing solid tubular frame has a circular transversal shape.

5 . The load-bearing skin and bone integrated pylon of claim 1 , wherein a load-bearing solid tubular frame has an oval transversal shape.

6 . The load-bearing skin and bone integrated pylon of claim 1 , wherein compacted and sintered particles are made with biocompatible material.

7 . The load-bearing skin and bone integrated pylon of claim 1 , wherein compacted and sintered particles are made with pure or alloyed titanium.

8 . The load-bearing skin and bone integrated pylon of claim 1 , wherein said insulator insert is made with the biocompatible ceramic material.

9 . The load-bearing skin and bone integrated pylon of claim 1 , wherein said insulator insert is made with the alumina.

10 . The load-bearing skin and bone integrated pylon of claim 1 , wherein a hermetic seal is formed by brazing.

11 . The load-bearing skin and bone integrated pylon of claim 1 , wherein a hermetic seal is formed by epoxy.

12 . The load-bearing skin and bone integrated pylon of claim 1 , wherein said insulator insert comprises a stack of ceramic discs or cylinders.

Continuity (2)
Continuation 29846117 · Jul 13, 2022
Related Publication 20250339276A1 · Nov 6, 2025
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