IP Library Granted Patent US 9,302,028
Granted Patent B2
US 9,302,028 · App. 14/262,553 · Granted Apr 5, 2016

Oxidation-resistant and wear-resistant polyethylenes for human joint replacements and methods for making them

Inventors: Harry A. McKellop (Los Angeles, CA); Fu-Wen Shen (Walnut, CA)
Assignee: ORTHOPAEDIC HOSPITAL
A61L27/16A61L2/081A61L27/50B29C35/0805B29C35/0866B29C43/003B29C47/0004B65B55/16C08J3/28A61F2/3094A61F2/34A61F2/38A61L2430/24B29C2035/085B29C2035/0877B29K2023/0683C08J2323/06
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Quick Facts
Patent No.
US 9,302,028
App. No.
14/262,553
Granted
Apr 5, 2016
Kind
B2
Abstract

The present invention presents methods for making oxidation-resistant and wear-resistant polyethylenes and medical implants made therefrom. Preferably, the implants are components of prosthetic joints, e.g., a bearing component of an artificial hip or knee joint. The resulting oxidation-resistant and wear-resistant polyethylenes and implants are also disclosed.

Claims (24)

1. A method for producing a wear-resistant and oxidation-resistant medical implant of a joint prosthesis, said method comprising the steps of:

(I) providing an oxidation-resistant medical implant of a joint prosthesis comprising a polyethylene component; and

(II) irradiating the oxidation-resistant medical implant at a radiation dose of above 5 Mrad to about 25 Mrad so as to crosslink the implant thereby improving its wear resistance, without thermally treating the implant to extinguish free radicals in the irradiated and crosslinked implant during or subsequent to irradiating the oxidation-resistant implant; wherein the oxidation-resistant implant contains an antioxidant rendering it resistant to oxidation caused by free radicals generated by the irradiation of step (II); and the irradiated oxidation-resistant implant possesses a gel content of between about 95% to about 99%.

2. The method of claim 1 , wherein the irradiated oxidation-resistant implant possesses a degree of swelling between about 1.7 to about 3.6.

3. The method of claim 1 , wherein the irradiated oxidation-resistant implant possesses a molecular weight between crosslinks between about 400 to about 3500 g/mol.

4. The method of claim 1 , wherein the radiation dose is from above 5 Mrad to about 10 Mrad.

5. The method of claim 1 , wherein the polyethylene is selected from the group consisting of: ultra high molecular weight polyethylene and high molecular weight polyethylene.

6. The method of claim 1 , wherein the anti-oxidant is selected from the group consisting of: vitamin A, vitamin C, vitamin E, phenols, aromatic amines, salts and condensation products of amines with aldehydes, ketones, or thio compounds, and salts and condensation products of aminophenols with aldehydes, ketones, or thio compounds.

7. The method of claim 1 , wherein the oxidation-resistant medical implant is produced according to the process selected from the group consisting of: (a) mixing the anti-oxidant and polyethylene powder and fusing the mixture to produce an oxidation-resistant preformed polyethylene and machining the oxidation-resistant medical implant from the oxidation-resistant preformed polyethylene; and (b) mixing the anti-oxidant and the polyethylene powder and fusing the mixture in a mold to produce a direct molded oxidation-resistant medical implant.

8. A method for producing a wear-resistant and oxidation-resistant medical implant of a joint prosthesis, said method comprising the steps of:

(I) providing an oxidation-resistant medical implant of a joint prosthesis comprising a polyethylene component; and

(II) irradiating the oxidation-resistant medical implant at a radiation dose of above 5 Mrad to about 25 Mrad so as to crosslink the implant thereby improving its wear resistance, without thermally treating the implant to extinguish free radicals in the irradiated and crosslinked implant during or subsequent to irradiating the oxidation-resistant implant; wherein the oxidation-resistant implant contains an antioxidant rendering it resistant to oxidation caused by free radicals generated by the irradiation of step (II); and the irradiated oxidation-resistant implant possesses a degree of swelling between about 1.7 to about 3.6.

9. The method of claim 8 , wherein the irradiated oxidation-resistant implant possesses a molecular weight between crosslinks between about 400 to about 3500 g/mol.

10. The method of claim 8 , wherein the radiation dose is from above 5 Mrad to about 10 Mrad.

11. The method of claim 8 , wherein the polyethylene is selected from the group consisting of: ultra high molecular weight polyethylene and high molecular weight polyethylene.

12. The method of claim 8 , wherein the anti-oxidant is selected from the group consisting of: vitamin A, vitamin C, vitamin E, phenols, aromatic amines, salts and condensation products of amines with aldehydes, ketones, or thio compounds, and salts and condensation products of aminophenols with aldehydes, ketones, or thio compounds.

13. The method of claim 8 , wherein the oxidation-resistant medical implant is produced according to the process selected from the group consisting of: (a) mixing the anti-oxidant and polyethylene powder and fusing the mixture to produce an oxidation-resistant preformed polyethylene and machining the oxidation-resistant medical implant from the oxidation-resistant preformed polyethylene; and (b) mixing the anti-oxidant and the polyethylene powder and fusing the mixture in a mold to produce a direct molded oxidation-resistant medical implant.

14. A method for producing a wear-resistant and oxidation-resistant medical implant of a joint prosthesis, said method comprising the steps of:

(I) providing an oxidation-resistant medical implant of a joint prosthesis comprising a polyethylene component; and

(II) irradiating the oxidation-resistant medical implant at a radiation dose of above 5 Mrad to about 25 Mrad so as to crosslink the implant thereby improving its wear resistance, without thermally treating the implant to extinguish free radicals in the irradiated and crosslinked implant during or subsequent to irradiating the oxidation-resistant implant; wherein the oxidation-resistant implant contains an antioxidant rendering it resistant to oxidation caused by free radicals generated by the irradiation of step (II); and the irradiated oxidation-resistant implant possesses a molecular weight between crosslinks between about 400 to about 3500 g/mol.

15. The method of claim 14 , wherein the radiation dose is from above 5 Mrad to about 10 Mrad.

16. The method of claim 14 , wherein the polyethylene is selected from the group consisting of: ultra high molecular weight polyethylene and high molecular weight polyethylene.

17. The method of claim 14 , wherein the anti-oxidant is selected from the group consisting of: vitamin A, vitamin C, vitamin E, phenols, aromatic amines, salts and condensation products of amines with aldehydes, ketones, or thio compounds, and salts and condensation products of aminophenols with aldehydes, ketones, or thio compounds.

18. The method of claim 14 , wherein the oxidation-resistant medical implant is produced according to the process selected from the group consisting of: (a) mixing the anti-oxidant and polyethylene powder and fusing the mixture to produce an oxidation-resistant preformed polyethylene and machining the oxidation-resistant medical implant from the oxidation-resistant preformed polyethylene; and (b) mixing the anti-oxidant and the polyethylene powder and fusing the mixture in a mold to produce a direct molded oxidation-resistant medical implant.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 26, 2014
From: MCKELLOP, HARRY A.; SHEN, FU-WEN
To: ORTHOPAEDIC HOSPITAL
Reel/Frame 033186/0030 →
CHANGE OF NAME Recorded Jun 26, 2014
From: ORTHOPAEDIC HOSPITAL
To: ORTHOPAEDIC HOSPITAL D/B/A ORTHOPAEDIC INSTITUTE FOR CHILDREN
Reel/Frame 033245/0066 →
Continuity (3)
Continuation 10258762
Provisional Application 60200525 · Apr 27, 2000
Related Publication 20140235745A1 · Aug 21, 2014