Biphasic injectable compositions for tissue augmentation
Methods and compositions for use in tissue volume replacement are provided. The present invention comprises compositions comprising a combination of materials, comprising preferably a solid polymer particle phase and a gel phase, and also comprises single phase compositions. More particularly, preferred embodiments comprise a solid polymer particle phase made of materials comprising Gore-Tex (micronized e-PTFE), PDS II (polydioxanone, a monofilament), NUROLON (a long chain aliphatic polymer Nylon 6 or Nylon 6,6) ETHILON (a long chain aliphatic polymer Nylon 6 and Nylon 6,6), PROLENE (Polypropylene, isotactic crystalline stereoisomer of polypropylene, a synthetic linear polyolefin.), VICRYL (copolymer made from 90% glycolide and 10% L-lactide), silk, MONACRYL (poly ϵ-caprolactone.), polylactide, polyglycolide, poly lactide-co-glycolide, and BIOPOL (polyhydroxyvalerate), MEDPOR (biocompatible (micronized) polyethylene), BIOGLASS (bioactive glass particulate), NOVABONE and NOVABONE-CM, and the gel phase comprises polyvinylpyrrolidone (PVP). Preferred single phase compositions comprise PVP. Methods of the present invention comprising injection of such compositions for tissue augmentation.
1. A biphasic injectable composition for tissue volume, comprising:
a solid polymer phase; and
a carrier substrate phase,
wherein the solid polymer phase is made from micronized expanded polytetrafluoroethelene (“e-PTFE”) particles, polydioxanone, Nylon 6, Nylon 6,6, polypropylene, copolymer made from 90% glycolide and 10% L-lactide, silk, poly E-caprolactone, polylactide, polyglycolide, poly lactide-co-glycolide, polyhydroxyvalerate, biocompatible micronized polyethylene, bioactive glass particulate, synthetic bone graft particulate, or polyhydroxyvalerate.
2. The composition of claim 1 , wherein the solid polymer phase is made from at least two of micronized expanded polytetrafluoroethelene (“e-PTFE”) particles, polydioxanone, Nylon 6, Nylon 6,6, polypropylene, copolymer made from 90% glycolide and 10% L-lactide, silk, poly E-caprolactone, polylactide, polyglycolide, poly lactide-co-glycolide, polyhydroxyvalerate, biocompatible micronized polyethylene, bioactive glass particulate, synthetic bone graft particulate, or polyhydroxyvalerate.
3. The composition of claim 1 , wherein the carrier substrate phase is selected from polyvinylpyrrolidone (“PVP”), silicone oil, gelatin, collagen, fat, hyaluronic acid, water or plasma.
4. The composition of claim 1 wherein the solid polymer phase comprises micronized expanded polytetrafluoroethelene (“e-PTFE”) particles.
5. The composition of claim 4 , wherein the e-PTFE particles range in size from approximately 65 to 1000 micrometers.
6. The composition of claim 1 , wherein the carrier substrate phase is PVP.
7. The composition of claim 6 , wherein the PVP comprises a K value from approximately less than 12 to 100.
8. The composition of claim 6 , wherein the PVP comprises a K value from approximately less than 12 to 50.
9. The composition of claim 6 , wherein the PVP comprises a K value from approximately less than 12 to 20.
10. The composition of claim 6 , wherein the PVP comprises a K value of 17.
11. The composition of claim 1 , wherein the solid polymer phase comprises e-PTFE;
and the carrier substrate phase comprises PVP.
12. The composition of claim 11 wherein the e-PTFE and the PVP are combined at a ratio of approximately 3:2 PVP to ePTFE by weight.
13. The composition of claim 1 , wherein the carrier substrate phase comprises micronized polydioxanone particles ranging in size from approximately 65 to 1000 micrometers.