IP Library › Granted Patent US 10,579,755
Granted Patent B2
US 10,579,755 · App. 16/395,273 · Granted Mar 3, 2020

Method for 3-D printing a custom bone graft

Inventors: Arthur Greyf (Millburn, NJ); Irina Balako (West Windsor, NJ)
G06F17/5009A61F2/28A61F2/30942B29C64/165G05B19/4099A61F2002/2825A61F2002/2853A61F2002/3092A61F2002/30948A61F2002/30952A61F2002/30957A61F2002/30962A61F2002/30971A61F2240/002A61F2310/00353A61F2310/00359B29C48/02B29C48/266B29K2001/12B29K2029/04B29K2033/12B29K2039/06B29K2067/046B29K2105/0005B29K2105/0011B29K2105/0014B29K2105/0035B29K2105/0088B29K2105/04B29K2995/006B29K2995/0056B29L2031/7532B33Y10/00B33Y70/00G05B2219/45168G05B2219/49023
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Quick Facts
Patent No.
US 10,579,755
App. No.
16/395,273
Granted
Mar 3, 2020
Kind
B2
Abstract

A method for producing bone grafts using 3-D printing is employed using a 3-D image of a graft location to produce a 3-D model of the graft. This is printed using a 3-D printer and a printing medium that produces a porous, biocompatible, biodegradable material that is conducive to osteoinduction. For example, the printing medium may be PCL, PLLA, PGLA, or another approved biocompatible polymer. In addition such a method may be useful for cosmetic surgeries, reconstructive surgeries, and various techniques required by such procedures. Once the graft is placed, natural bone gradually replaces the graft.

Claims (29)

1. A method for producing a custom bone graft, comprising:

obtaining a three-dimensional image of an intended graft location;

creating a three-dimensional mesh using said three-dimensional image, wherein said created three-dimensional mesh serves as a supporting scaffold for said custom bone graft;

creating a three-dimensional digital model of said custom bone graft using said three-dimensional image;

creating a printing medium, wherein said printing medium comprises a mixture of a precursor powder and a precursor liquid in a predetermined ratio, and wherein a slow reabsorbing biocompatible, bioactive adhesive is added to said printing medium for improving fixation of said custom bone graft at said intended graft location;

creating, by a three-dimensional printer, said custom bone graft, using said three-dimensional digital model, said created three-dimensional mesh, and said printing medium, wherein said printing medium is deposited layer by layer on a sterile disposable print surface, wherein after printing a predetermined number of layers, the three-dimensional mesh is one of rotated and side-stepped before printing next set of the predetermined number of layers, wherein said rotation and side-stepping processes promote maximum vascular and neural growth within said created custom bone graft, wherein said creation of said custom bone graft is performed in a sterile environment comprising:

said sterile disposable print surface;

a sterile syringe for injecting said printing medium;

a hood enclosing said three-dimensional printer, wherein said hood is coupled to a medical grade high efficiency particulate air filter, and wherein sterile air is drawn into said hood via said high efficiency particulate air filter and removed via a surgical-type suction connection; and

wherein said sterile custom bone graft is adapted for direct insertion at said intended graft location without additional sterilization procedure.

2. The method of claim 1 , wherein said precursor powder comprises demineralized allograft bone matrix, and said precursor liquid comprises poly methyl methacrylate.

3. The method of claim 2 , wherein said demineralized allograft bone matrix comprises collagen and bone morphogenetic proteins.

4. The method of claim 1 , wherein said precursor powder comprises demineralized allograft bone matrix, sucrose crystals and a radical polymerization initiator, and wherein said precursor liquid comprises methyl methacrylate.

5. The method of claim 4 , wherein said radical polymerization initiator comprises di-benzoyl peroxide.

6. The method of claim 4 , wherein said precursor liquid further comprises an antibiotic.

7. The method of claim 6 , wherein said antibiotic comprises one of amoxicillin, doxycycline, gentamicin and clindamycin, or some combination thereof.

8. The method of claim 4 , wherein said precursor liquid further comprises a radio-pacifier.

9. The method of claim 8 , wherein said radio-pacifier comprises one of zirconium dioxide, barium sulphate, or any combination thereof.

10. The method of claim 1 , wherein said precursor liquid further comprises a compound to increase biodegradability of said printing medium, and wherein said compound comprises cellulose acetate, cellulose acetate phthalate, or any combination thereof.

11. The method of claim 1 , wherein said printing medium comprises polycaprolactone, polylactic acid, polylactic-co-glycolic acid, or any combination thereof.

12. A method for producing a custom bone graft, comprising:

obtaining a three-dimensional image of an intended graft location;

creating a three-dimensional digital model of said custom bone graft using said three-dimensional image;

creating, by a three-dimensional printer, said custom bone graft, using said three-dimensional digital model and a printing material, wherein said printing material is a solid rod that is melted and deposited layer by layer by an extrusion deposition method, wherein after printing a predetermined number of layers, the print axis is one of rotated and side-stepped before printing next set of the predetermined number of layers, wherein said rotation and side-stepping processes promote maximum vascular and neural growth within said created custom bone graft, wherein said creation of said custom bone graft is performed in a sterile environment comprising:

a sterile disposable print surface;

a sterile syringe for injecting said printing medium;

a hood enclosing said three-dimensional printer, wherein said hood is coupled to a medical grade high efficiency particulate air filter, and wherein sterile air is drawn into said hood via said high efficiency particulate air filter and removed via a surgical-type suction connection; and

wherein said sterile custom bone graft is adapted for direct insertion at said intended graft location without additional sterilization procedure.

13. The method of claim 1 , wherein said printing material comprises solidifying resorbable or non resorbable, osteoconductive, osteoinductive material.

Continuity (5)
Division 15285169 · Oct 4, 2016
Continuation In Part 14447085 · Jul 30, 2014
Provisional Application 61901043 · Nov 7, 2013
Provisional Application 61867755 · Aug 20, 2013
Related Publication 20190251217A1 · Aug 15, 2019
Cited By (1)
US 12,697,200