Have a personal or library account? Click to login
Bone health assessment in haemophilic arthropathy: A single centre study from Kolkata, West Bengal, India Cover

Bone health assessment in haemophilic arthropathy: A single centre study from Kolkata, West Bengal, India

Open Access
|Mar 2022

References

  1. Hoots K, Rodriguez N, Boggio L, Valentino L. Pathogenesis of haemophilic synovitis: clinical aspects. Haemophilia 2007; 13 Suppl 3: 4–9. doi: 10.1111/j.1365-2516.2007.01533.x.
  2. Ucer-Lozano R, López-Pina, JA, Ortiz-Pérez A, Cuesta-Barriuso R. Quality of life and its predictors among adult patients with haemophilic arthropathy. An observational study. BMC Musculoskelet Disord 2021; 22: 448. doi: 10.1186/s12891-021-04319-0.
  3. Varaklioti A, Kontodimopoulos N, Niakas D, Kouramba A, Katsarou O. Health-related quality of life and association with arthropathy in Greek patients with hemophilia. Clin Appl Thromb Hemost 2018; 24(5): 815–821. doi: 10.1177/1076029617733041.
  4. Witkop M, Guelcher C, Forsyth A, et al. Treatment outcomes, quality of life, and impact of hemophilia on young adults (aged 18–30 years) with hemophilia. Am J Hematol 2015; 90 Suppl 2: S3–10. doi: 10.1002/ajh.24220.
  5. Anagnostis P, Vakalopoulou S, Slavakis A. Reduced bone mineral density in patients with haemophilia A and B in Northern Greece. Thromb Haemost 2012; 107(3): 545–51. doi: 10.1160/TH11-08-05563.
  6. Katsarou O, Terpos E, Chatzismalis P, et al. Increased bone resorption is implicated in the pathogenesis of bone loss in hemophiliacs: correlations with hemophilic arthropathy and HIV infection. Ann Hematol 2010; 89(1): 67–74. doi: 10.1007/s00277-009-0759-x.
  7. Iorio A, Fabbriciani G, Marcucci M, Brozzetti M, Filipponi P. Bone mineral density in haemophilia patients. A meta-analysis. Thromb Haemost 2010; 103(3): 596–603. doi: 10.1160/TH09-09-0629.
  8. Gerstner G, Damiano ML, Tom A, et al. Prevalence and risk factors associated with decreased bone mineral density in patients with haemophilia. Haemophilia 2009; 15(2): 559–65. doi: 10.1111/j.1365-2516.2008.01963.x
  9. Welten DC, Kemper HC, Post GB, et al. Weight-bearing activity during youth is a more important factor for peak bone mass than calcium intake. J Bone Miner Res 1994; 9(7): 1089–96. doi: 10.1002/jbmr.5650090717.
  10. Nair AP, Jijina F, Ghosh K, Madkaikar M, Shrikhande M, Nema M. Osteoporosis in young haemophiliacs from western India. Am J Hematol 2007; 82(6): 453–7. doi: 10.1002/ajh.20877.
  11. Barnes C, Wong P, Egan B, et al. Reduced bone density among children with severe hemophilia. Pediatrics 2004; 114: e177–81. doi: 10.1542/peds.114.2.e177.
  12. Mansouritorghabeh H, Rezaieyazdi Z, Saadati N, Saghafi M, Mirfeizi Z, Rezai J. Reduced bone density in individuals with severe hemophilia B. Int J Rheum Dis 2009; 12(2): 125–9. doi: 10.1111/j.1756-185X.2009.01394.x
  13. Tlacuilo-Parra A, Villela-Rodriguez J, Garibaldi-Covarrubias R, Soto-Padilla J, Orozco-Alcala J. Bone turnover markers and bone mineral density in children with haemophilia. Haemophilia 2011; 17(4): 657–61. doi: 10.1111/j.1365-2516.2010.02439.x.
  14. Abdelrazik N, Reda M, El-Ziny M, Rabea H. Evaluation of bone mineral density in children with hemophilia: Mansoura University children hospital (MUCH) experience, Mansoura, Egypt. Hematology 2007; 12(5): 431–7. doi: 10.1080/10245330701383700.
  15. Naderi A, Nikvarz M, Arasteh M, Shokoohi M. Osteoporosis/osteopenia and hemophilic arthropathy in severe hemophilic patients. Arch Iran Med 2012; 15: 82–4.
  16. Wallny TA, Scholz DT, Oldenburg J, et al. Osteoporosis in haemophilia–an underestimated comorbidity? Haemophilia 2007; 13(1): 79–84. doi: 10.1111/j.1365-2516.2006.01405.x.
  17. Gay ND, Lee SC, Liel MS, Sochacki P, Recht M, Taylor JA. Increased fracture rates in people with haemophilia: a 10-year single institution retrospective analysis. Br J Haematol 2015; 170(4): 584–6. doi: 10.1111/bjh.13312.
  18. Anagnostis P, Karras S, Pascho S, Goulis DG. Haemophilia A and B as a cause for secondary osteoporosis and increased fracture risk. Blood Coagul Fibrinolysis 2015; 26(6): 599–603. doi: 1097/MBC.0000000000000330.
  19. Ashritha A, Delhi Kumar CG, Sahoo J, Nalini P. Evaluation of bone mineral density in children with hemophilia: an observational case-control study. J Pediatr Hematol Oncol 2019; 41(7): 511–514. doi: 10.1097/MPH.0000000000001554.
  20. Sandeep Krishna A, Munirathnam T, Karthik A, Jagadeesh G, Karthick G. Osteoporosis in India – diagnosing in cost effective way – can digital X-ray with Singh's Index help? Ann Orthop Musculoskelet Disord 2019; 2(1): 1019.
  21. Anagnostis P, Vakalopoulou S, Vyzantiadis T-A, et al. The clinical utility of bone turnover markers in the evaluation of bone disease in patients with haemophilia A and B. Haemophilia 2014; 20(2): 268–75. doi: 10.1111/hae.12271.
  22. Singer FR, Eyre DR. Using biochemical markers of bone turnover in clinical practice. Cleve Clin J Med 2008; 75(10): 739–50. doi: 10.3949/ccjm.75.10.739.
  23. Brown JP, Albert C, Nassar BA, et al. Bone turnover markers in the management of postmenopausal osteoporosis. Clin Biochem 2009; 42(10–11): 929–42. doi: 10.1016/j.clinbiochem.2009.04.001.
  24. Feldman BM, Funk SM, Bergstrom B-M, et al. Validation of a new pediatric joint scoring system from the International Hemophilia Prophylaxis Study Group: validity of the hemophilia joint health score. Arthritis Care Res (Hoboken) 2011; 63(2): 223–30. doi: 10.1002/acr.20353.
  25. Sun J, Hilliard PE, Feldman BM, et al. Chinese Hemophilia Joint Health Score 2.1 reliability study. Haemophilia 2014; 20(3): 435–40. doi: 10.1111/hae.12330.
  26. Pettersson H, Ahlberg A, Nilsson IM. A radiologic classification of hemophilic arthropathy. Clin Orthop Relat Res 1980; (149): 153–9.
  27. Ghosh K, Shetty S. Bone health in persons with haemophilia: a review. Eur J Haematol 2012; 89(2): 95–102. doi: 10.1111/j.1600-0609.2012.01803.x.
  28. Poonnoose PM, Hilliard P, Doria AS, et al. Correlating clinical and radiological assessment of joints in haemophilia: results of a cross sectional study. Haemophilia 2016; 22(6): 925–33. doi: 10.1111/hae.13023.
  29. Kang KY, Hong YS, Park S-H, Ju JH. Increased serum alkaline phosphatase levels correlate with high disease activity and low bone mineral density in patients with axial spondyloarthritis. Semin Arthritis Rheum 2015; 45(2): 202–7. doi: 10.1016/j.semarthrit.2015.03.002.
Language: English
Page range: 183 - 188
Published on: Mar 2, 2022
Published by: Haemnet Ltd
In partnership with: Paradigm Publishing Services
Publication frequency: 1 issue per year

© 2022 Prakas Kumar Mandal, Malini Garg, Prantar Chakrabarti, Amrita Bhowmik, Debasis Gantait, Tuphan Kanti Dolai, published by Haemnet Ltd
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 3.0 License.