EP1933892A2

Composite bone graft substitute cement and articles produced therefrom

Abstract

This record has no abstract on file.

Term

Term ended

Projected expiry passed 8 September 2026, 0 years ago.

  1. Priority
  2. Filed
  3. Published
  4. Projected expiry
  5. Today

55 claims: 5 independent, 50 dependent

  1. 1
    Claims of equivalent WO 2007030616 A2 THAT WHICH IS CLAIMED:1. A particulate composition adapted for forming a bone graft substitute cement upon mixing with an aqueous solution, comprising: i) a calcium sulfate hemihydrate powder having a bimodal particle distribution and a median particle size of about 5 to about 20 microns, wherein the calcium sulfate hemihydrate is present at a concentration of at least about 70 weight percent based on the total weight of the particulate composition;ii) a monocalcium phosphate monohydrate powder;and iii) a β-tricalcium phosphate powder having a median particle size of less than about 20 microns.
  2. 2
    The particulate composition of Claim 1, further comprising β-tricalcium phosphate granules having a median particle size of at least about 75 microns.
  3. 3
    The particulate composition of Claim 2, wherein the β-tricalcium phosphate granules have a median particle size of about 75 to about 1,000 microns.
  4. 4
    The particulate composition of Claim 2, wherein the β-tricalcium phosphate granules are present at a concentration of up to about 20 weight percent based on the total weight of the particulate composition.
  5. 5
    The particulate composition of Claim 4, wherein the β-tricalcium phosphate granules are present at a concentration of up to about 12 weight percent based on the total weight of the particulate composition.
  6. 6
    The particulate composition of Claim 1, wherein the calcium sulfate hemihydrate is α-calcium sulfate hemihydrate.
  7. 7
    The particulate composition of Claim 1, wherein the calcium sulfate hemihydrate powder has a bimodal particle distribution comprising about 30 to about 60 volume percent of particles having a mode of about 1.0 to about 3.0 microns and about 40 to about 70 volume percent of particles having a mode of about 20 to about 30 microns, based on the total volume of the calcium sulfate hemihydrate powder.
  8. 8
    The particulate composition of Claim 1, wherein the calcium sulfate hemihydrate is present at a concentration of at least about 75 weight percent.
  9. 9
    The particulate composition of Claim 1, wherein the combined concentration of the monocalcium phosphate monohydrate powder and the β- tricalcium phosphate powder is about 3 to about 30 weight percent based on the total weight of the particulate composition.
  10. 10
    The particulate composition of Claim 1, wherein the β-tricalcium phosphate powder has a bimodal particle size distribution comprising about 30 to about 70 volume percent of particles having a mode of about 2.0 to about 6.0 microns and about 30 to about 70 volume percent of particles having a mode of about 40 to about 70 microns based on the total volume of the β-tricalcium phosphate powder.
  11. 11
    The particulate composition of Claim 10, wherein the β-tricalcium phosphate powder has a bimodal particle size distribution comprising about 50 to about 65 volume percent of particles having a mode of about 4.0 to about 5.5 microns and about 35 to about 50 volume percent of particles having a mode of about 60 to about 70 microns based on the total volume of the β-tricalcium phosphate powder.
  12. 12
    The particulate composition of Claim 1, further comprising an accelerant adapted for accelerating the conversion of calcium sulfate hemihydrate to calcium sulfate dihydrate.
  13. 13
    The particulate composition of Claim 12, wherein the accelerant is selected from the group consisting of calcium sulfate dihydrate particles, potassium sulfate particles, and sodium sulfate particles, wherein the accelerant is optionally coated with sucrose.
  14. 14
    The particulate composition of Claim 12, wherein the accelerant is present at a concentration of up to about 1 weight percent based on the total weight of the particulate composition.
  15. 15
    The particulate composition of Claim 1, wherein the particulate composition sets to a hardened mass upon mixing with an aqueous solution in about 3 to about 25 minutes.
  16. 16
    The particulate composition of Claim 1, comprising:i) a calcium sulfate hemihydrate powder having a bimodal particle distribution and a median particle size of about 5 to about 20 microns, wherein the calcium sulfate hemihydrate is present at a concentration of at least about 75 weight percent based on the total weight of the particulate composition;ii) a monocalcium phosphate monohydrate powder;iii) a β-tricalcium phosphate powder having a median particle size of less than about 20 microns, the monocalcium phosphate monohydrate powder and the β- tricalcium phosphate powder being present at a combined concentration of about 3 to about 30 weight percent based on the total weight of the particulate composition;iv) β-tricalcium phosphate granules having a median particle size of at least about 75 microns and present at a concentration of up to about 20 weight percent based on the total weight of the particulate composition;and v) an accelerant adapted for accelerating the conversion of calcium sulfate hemihydrate to calcium sulfate dihydrate, the accelerant being present at a concentration of up to about 1 weight percent based on the total weight of the particulate composition.
  17. 17
    The particulate composition of Claim 1, comprising:i) an α-calcium sulfate hemihydrate powder having a bimodal particle distribution and a median particle size of about 5 to about 20 microns, wherein the calcium sulfate hemihydrate is present at a concentration of at least about 75 weight percent based on the total weight of the particulate composition, and wherein the calcium sulfate hemihydrate powder has a bimodal particle distribution comprising about 30 to about 60 volume percent of particles having a mode of about 1.0 to about 3.0 microns and about 40 to about 70 volume percent of particles having a mode of about 20 to about 30 microns, based on the total volume of the calcium sulfate hemihydrate powder;ii) a monocalcium phosphate monohydrate powder;iii) a β-tricalcium phosphate powder having a median particle size of less than about 20 microns, the monocalcium phosphate monohydrate powder and the β- tricalcium phosphate powder being present at a combined concentration of about 10 to about 20 weight percent based on the total weight of the particulate composition;iv) β-tricalcium phosphate granules having a median particle size of about 100 to about 400 microns and present at a concentration of up to about 12 weight percent based on the total weight of the particulate composition;and v) an accelerant adapted for accelerating the conversion of calcium sulfate hemihydrate to calcium sulfate dihydrate, the accelerant being present at a concentration of up to about 1 weight percent based on the total weight of the particulate composition.
  18. 18
    The particulate composition according to any one of Claims 1, 16, and 17, further comprising a biologically active agent.
  19. 19
    The particulate composition of Claim 18, wherein the biologically active agent is selected from the group consisting of cancellous bone chips, growth factors, antibiotics, pesticides, chemotherapeutic agents, antivirals, analgesics, and antiinflammatory agents.
  20. 20
    The particulate composition of Claim 18, wherein the biologically active agent is an osteoinductive material.
  21. 21
    The particulate composition of Claim 20, wherein the osteoinductive material is demineralized bone matrix.
  22. 22
    The particulate composition of Claim 18, wherein the biologically active agent is a growth factor selected from the group consisting of fibroblast growth factors, platelet-derived growth factors, bone morphogenic proteins, osteogenic proteins, transforming growth factors, LIM mineralization proteins, osteoid-inducing factors, angiogenins, endothelins;growth differentiation factors, ADMP-I, endothelins, hepatocyte growth factor and keratinocyte growth factor, heparin-binding growth factors, hedgehog proteins, interleukins, colony-stimulating factors, epithelial growth factors, insulin-like growth factors, cytokines, osteopontin, and osteonectin.
  23. 23
    A bone graft substitute cement comprising a reaction product formed by mixing a particulate composition according to any one of Claims 1, 16, and 17 with an aqueous solution, the reaction product comprising calcium sulfate dihydrate and brushite.
  24. 24
    The bone graft substitute cement of Claim 23, further including β- tricalcium phosphate granules.
  25. 25
    The bone graft substitute cement of Claim 23, wherein said cement is cast in a predetermined shape.
  26. 26
    The bone graft substitute cement of Claim 25, wherein said predetermined shape is selected from the group consisting of pellets, granules, wedges, blocks, and disks.
  27. 27
    The bone graft substitute cement of Claim 23, wherein said cement exhibits a diametral tensile strength of at least about 4 MPa after curing for one hour in ambient air following mixing of the particulate composition with the aqueous solution.
  28. 28
    The bone graft substitute cement of Claim 27, wherein said cement exhibits a diametral tensile strength of at least about 6 MPa after curing for one hour in ambient air.
  29. 29
    The bone graft substitute cement of Claim 23, wherein said cement exhibits a diametral tensile strength of at least about 8 MPa after curing for 24 hours in ambient air following mixing of the particulate composition with the aqueous solution.
  30. 30
    The bone graft substitute cement of Claim 29, wherein said cement exhibits a diametral tensile strength of at least about 10 MPa after curing for 24 hours in ambient air.
  31. 31
    The bone graft substitute cement of Claim 23, wherein said cement exhibits an average dissolution rate, expressed as an average percentage of weight loss per day, that is at least about 25% lower than the average dissolution rate of a cement formed using a particulate composition consisting of calcium sulfate, the average dissolution rate measured by immersion of a 4.8 mm OD pellet having a length of 3.3 mm in distilled water at 37 0 C.
  32. 32
    The bone graft substitute cement of Claim 31, wherein said cement exhibits an average dissolution rate that is at least about 30% lower than a cement formed using a particulate composition consisting of calcium sulfate only.
  33. 33
    The bone graft substitute cement of Claim 23, wherein the aqueous solution comprises a carboxylic acid.
  34. 34
    The bone graft substitute cement of Claim 33, wherein the carboxylic acid is a hydroxy carboxylic acid.
  35. 35
    The bone graft substitute cement of Claim 34, wherein the hydroxy carboxylic acid is glycolic acid.
  36. 36
    The bone graft substitute cement of Claim 33, wherein the carboxylic acid is neutralized to a pH of about 6.5 to about 7.5.
  37. 37
    A bone graft substitute kit, comprising one or more containers enclosing a particulate composition according to any one of Claims 1, 16, and 17, a separate container enclosing a sterile aqueous solution, and a written instruction set describing a method of using the kit.
  38. 38
    The bone graft substitute kit of Claim 37, further comprising a mixing apparatus adapted for mixing the particulate composition and the aqueous solution.
  39. 39
    The bone graft substitute kit of Claim 37, further comprising a delivery device adapted for delivering a bone graft substitute cement mixture to the site of a bone defect.
  40. 40
    The bone graft substitute kit of Claim 37, comprising:i) a first container enclosing a monocalcium phosphate monohydrate powder;ii) a second container enclosing a β-tricalcium phosphate powder;iii) a calcium sulfate hemihydrate powder enclosed within a separate container or admixed with one or both of the monocalcium phosphate monohydrate powder and the β-tricalcium phosphate powder;iv) an aqueous solution enclosed within a separate container;and v) a carboxylic acid dissolved within the aqueous solution or present in the form of a crystalline powder, the carboxylic acid crystalline powder being enclosed within a separate container or admixed with any one or more of the monocalcium phosphate monohydrate powder, the β-tricalcium phosphate powder, and the calcium sulfate hemihydrate powder, with the proviso that when the carboxylic acid is dissolved in the aqueous solution, it is added to the solution after radiation sterilization of the aqueous solution.
  41. 41
    The bone graft substitute kit of Claim 40, wherein the kit is sterilized by exposure to gamma radiation.
  42. 42
    The bone graft substitute kit of Claim 40, wherein the carboxylic acid is in the form of a neutralized salt selected from the group consisting of sodium glycolate, potassium glycolate, sodium lactate, and potassium lactate.
  43. 43
    The bone graft substitute kit of Claim 40, wherein the carboxylic acid crystalline powder is enclosed within a separate container such that the carboxylic acid crystalline powder can be reconstituted by admixture with the aqueous solution prior to mixing the aqueous solution with one or more of the monocalcium phosphate monohydrate powder, the β-tricalcium phosphate powder, and the calcium sulfate hemihydrate powder.
  44. 44
    The bone graft substitute kit of Claim 40, wherein the calcium sulfate hemihydrate powder further includes, in admixture, an accelerant adapted for accelerating the conversion of calcium sulfate hemihydrate to calcium sulfate dihydrate.
  45. 45
    The bone graft substitute kit of Claim 44, wherein the accelerant is selected from the group consisting of calcium sulfate dihydrate particles, potassium sulfate particles, and sodium sulfate particles, wherein the accelerant is optionally coated with sucrose.
  46. 46
    The bone graft substitute kit of Claim 40, further comprising β-tricalcium phosphate granules in a separate container or in admixture with one or more of the monocalcium phosphate monohydrate powder, the β-tricalcium phosphate powder, and the calcium sulfate hemihydrate powder.
  47. 47
    The bone graft substitute kit of Claim 40, further comprising a biologically active agent enclosed within a separate container or admixed with any one or more of the monocalcium phosphate monohydrate powder, the β-tricalcium phosphate powder, and the calcium sulfate hemihydrate powder.
  48. 48
    The bone graft substitute kit of Claim 47, wherein the biologically active agent is selected from the group consisting of cancellous bone chips, growth factors, antibiotics, pesticides, chemotherapeutic agents, antivirals, analgesics, and antiinflammatory agents.
  49. 49
    The bone graft substitute kit of Claim 37, comprising:i) a first container enclosing a monocalcium phosphate monohydrate powder;ii) a second container enclosing a β-tricalcium phosphate powder having a median particle size of less than about 20 microns;iii) an α-calcium sulfate hemihydrate powder enclosed within a separate container or admixed with the β-tricalcium phosphate powder in the second container, the α-calcium sulfate hemihydrate powder having a bimodal particle distribution and a median particle size of about 5 to about 20 microns;iv) an aqueous solution enclosed within a separate container;v) a carboxylic acid in the form of a crystalline powder, the carboxylic acid crystalline powder being enclosed within a separate container, wherein the carboxylic acid is in the form of a neutralized alkali metal salt;vi) an accelerant adapted for accelerating the conversion of calcium sulfate hemihydrate to calcium sulfate dihydrate in admixture with the α-calcium sulfate hemihydrate powder;and vii) β-tricalcium phosphate granules in a separate container or in admixture with one or both of the β-tricalcium phosphate powder and the calcium sulfate hemihydrate powder, wherein the granules have a median particle size of at least about 75 microns.
  50. 50
    A method for treating a bone defect, comprising applying a bone graft substitute cement according to Claim 23 to the site of the bone defect.
  51. 51
    A method for improving the storage stability of a kit comprising a particulate composition and an aqueous solution adapted for forming a bone graft substitute cement upon mixing, wherein the kit includes calcium phosphate powders reactive to form brushite in the presence of water and a carboxylic acid, the method comprising:i) packaging a monocalcium phosphate monohydrate powder and a β- tricalcium phosphate powder in separate containers in the kit;and ii) packaging the carboxylic acid in the kit either in the form of a crystalline powder or dissolved in the aqueous solution, with the proviso that when the carboxylic acid is dissolved in the aqueous solution, it is added to the solution after radiation sterilization of the aqueous solution.
  52. 52
    The method of Claim 51, wherein the carboxylic acid is in the form of a neutralized salt selected from the group consisting of sodium glycolate, potassium glycolate, sodium lactate, and potassium lactate.
  53. 53
    The method of Claim 51, further comprising irradiating the components of the kit with gamma radiation for sterilization.
  54. 54
    The method of Claim 51, wherein the carboxylic acid crystalline powder is packaged separately in a container.
  55. 55
    The method of Claim 51, wherein the carboxylic acid crystalline powder is packaged in the container containing the monocalcium phosphate monohydrate powder or in the container containing the β-tricalcium phosphate powder.
Independent claims55