Collagen gene variants previously associated with anterior cruciate ligament injury risk are also associated with joint laxity.

Richard D Bell, Sandra J Shultz, Laurie Wideman, Vincent C Henrich
Author Information
  1. Richard D Bell: Department of Kinesiology, University of North Carolina at Greensboro, Greensboro, North Carolina.

Abstract

BACKGROUND: Genetic association studies demonstrate a relationship between several collagen gene variants and anterior cruciate ligament (ACL) injury, yet the mechanism of these relationships is still unclear. Joint laxity is a heritable trait; increased magnitudes of anterior knee laxity (AKL), genu recurvatum (GR), and general joint laxity (GJL) have been consistently associated with a greater risk of ACL injury. Joint laxity may constitute an important intermediate phenotype for the genetic association with ACL injury that can be measured clinically.
HYPOTHESIS: To determine if genetic variants within the COL1A1, COL5A1, and COL12A1 genes, previously associated with ACL injury, were also associated with greater magnitudes of AKL, GR, and GJL.
STUDY DESIGN: Descriptive laboratory study.
METHODS: Blood samples and measures of AKL, GR, and GJL were obtained from 124 (50 male, 74 female) healthy, recreationally active subjects. Genomic DNA was extracted from the blood samples and genotyped for single-nucleotide polymorphisms previously examined relative to ACL injury. Univariate analyses of variance compared the magnitude of each laxity variable across the 3 genotypes for each single-nucleotide polymorphism in both sex-combined and sex-specific models.
RESULTS: Specific genotypes were associated with greater GR in all subjects. Some genotypes were associated with greater magnitudes of GR, AKL, and GJL in females only.
CONCLUSIONS: Gene variants previously associated with ACL injury risk were in large part also associated with joint laxity. Sex-specific genetic associations with joint laxity were consistent with those previously reported for ACL injury.
CLINICAL RELEVANCE: These data provide insight into potential pathways through which genotypic variants in collagen genes have the potential to alter ligament structure and behavior and, thus, ACL injury risk.

References

  1. J Athl Train. 1994 Dec;29(4):343-6 [PMID: 16558298]
  2. Integr Biol (Camb). 2009 Jul;1(7):452-9 [PMID: 20023755]
  3. Am J Sports Med. 2005 Jan;33(1):23-8 [PMID: 15610995]
  4. Bioessays. 2003 Feb;25(2):142-51 [PMID: 12539240]
  5. Am J Sports Med. 2007 Jul;35(7):1131-4 [PMID: 17452511]
  6. Matrix Biol. 2004 Aug;23(5):323-9 [PMID: 15464364]
  7. J Orthop Sports Phys Ther. 1996 Aug;24(2):91-7 [PMID: 8832472]
  8. J Bone Joint Surg Br. 2005 Jun;87(6):800-3 [PMID: 15911662]
  9. Am J Sports Med. 2009 Feb;37(2):246-51 [PMID: 19109531]
  10. Arthritis Rheum. 2004 Aug;50(8):2640-4 [PMID: 15334479]
  11. J Mech Behav Biomed Mater. 2009 Apr;2(2):130-7 [PMID: 19627816]
  12. Adv Drug Deliv Rev. 2003 Nov 28;55(12):1531-46 [PMID: 14623400]
  13. Am J Sports Med. 2009 Nov;37(11):2234-40 [PMID: 19654427]
  14. Orthopedics. 2000 Jun;23(6):573-8 [PMID: 10875418]
  15. Med Sci Sports Exerc. 2011 Feb;43(2):287-95 [PMID: 20581718]
  16. Orthopedics. 2005 Jul;28(7):656-60 [PMID: 16119280]
  17. Am J Epidemiol. 2009 Feb 15;169(4):505-14 [PMID: 19126586]
  18. Micron. 2001 Apr;32(3):223-37 [PMID: 11006503]
  19. J Bone Joint Surg Br. 1970 Feb;52(1):145-7 [PMID: 5436199]
  20. J Sports Med Phys Fitness. 2007 Dec;47(4):446-54 [PMID: 18091686]
  21. Knee Surg Sports Traumatol Arthrosc. 2006 Mar;14(3):204-13 [PMID: 16235056]
  22. J Orthop Res. 2010 Nov;28(11):1411-7 [PMID: 20872575]
  23. Br J Sports Med. 2010 Dec;44(16):1160-5 [PMID: 19443461]
  24. Ann Rheum Dis. 1992 Jun;51(6):793-6 [PMID: 1616366]
  25. Clin Orthop Relat Res. 2001 Feb;(383):268-81 [PMID: 11210964]
  26. Am J Sports Med. 2003 Nov-Dec;31(6):831-42 [PMID: 14623646]
  27. Ann Rheum Dis. 1987 Mar;46(3):209-12 [PMID: 3579384]
  28. Am J Sports Med. 2006 Sep;34(9):1512-32 [PMID: 16905673]
  29. J Biol Chem. 1999 Jul 30;274(31):22053-9 [PMID: 10419532]
  30. Am J Sports Med. 1994 Jul-Aug;22(4):489-92 [PMID: 7710494]
  31. Am J Sports Med. 2008 Dec;36(12):2432-6 [PMID: 18669982]
  32. Br J Sports Med. 2009 May;43(5):352-6 [PMID: 19193663]
  33. Am J Sports Med. 1994 Jan-Feb;22(1):37-43 [PMID: 8129108]
  34. Am J Sports Med. 2008 Jun;36(6):1073-80 [PMID: 18326833]
  35. Exerc Sport Sci Rev. 2011 Oct;39(4):191-8 [PMID: 21697718]
  36. J Musculoskelet Neuronal Interact. 2004 Jun;4(2):199-201 [PMID: 15615126]
  37. Br J Sports Med. 2009 Mar;43(3):174-9 [PMID: 18728055]
  38. Knee Surg Sports Traumatol Arthrosc. 2010 Mar;18(3):277-91 [PMID: 20062970]
  39. J Clin Invest. 2001 Apr;107(7):899-907 [PMID: 11285309]
  40. Am J Sports Med. 2006 Jun;34(6):899-904 [PMID: 16567461]
  41. J Athl Train. 2010 Sep-Oct;45(5):499-508 [PMID: 20831398]
  42. Matrix Biol. 2011 Jun;30(5-6):338-45 [PMID: 21609763]
  43. Nucleic Acids Res. 2011 Jan;39(Database issue):D214-9 [PMID: 21051339]
  44. Ann Rheum Dis. 1973 Sep;32(5):413-8 [PMID: 4751776]
  45. Br J Sports Med. 2009 May;43(5):357-65 [PMID: 18443036]
  46. J Mech Behav Biomed Mater. 2011 Feb;4(2):153-61 [PMID: 21262493]
  47. J Cell Biochem. 2002;87(2):208-20 [PMID: 12244573]
  48. Am J Sports Med. 2007 Oct;35(10):1756-69 [PMID: 17761605]

Grants

  1. R01 AR053172/NIAMS NIH HHS