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1. Evidence-based Care Bundles for Preventing Surgical Site Infections in Spinal Instrumentation Surgery

2. Additional file 15 of Divergence in chondrogenic potential between in vitro and in vivo of adipose- and synovial-stem cells from mouse and human

3. Additional file 5 of Divergence in chondrogenic potential between in vitro and in vivo of adipose- and synovial-stem cells from mouse and human

4. Additional file 20 of Divergence in chondrogenic potential between in vitro and in vivo of adipose- and synovial-stem cells from mouse and human

5. Additional file 7 of Divergence in chondrogenic potential between in vitro and in vivo of adipose- and synovial-stem cells from mouse and human

6. Additional file 12 of Divergence in chondrogenic potential between in vitro and in vivo of adipose- and synovial-stem cells from mouse and human

7. Additional file 20 of Divergence in chondrogenic potential between in vitro and in vivo of adipose- and synovial-stem cells from mouse and human

8. Additional file 10 of Divergence in chondrogenic potential between in vitro and in vivo of adipose- and synovial-stem cells from mouse and human

9. Additional file 4 of Divergence in chondrogenic potential between in vitro and in vivo of adipose- and synovial-stem cells from mouse and human

10. Additional file 8 of Divergence in chondrogenic potential between in vitro and in vivo of adipose- and synovial-stem cells from mouse and human

11. Additional file 19 of Divergence in chondrogenic potential between in vitro and in vivo of adipose- and synovial-stem cells from mouse and human

12. Additional file 18 of Divergence in chondrogenic potential between in vitro and in vivo of adipose- and synovial-stem cells from mouse and human

13. Additional file 21 of Divergence in chondrogenic potential between in vitro and in vivo of adipose- and synovial-stem cells from mouse and human

14. Additional file 14 of Divergence in chondrogenic potential between in vitro and in vivo of adipose- and synovial-stem cells from mouse and human

15. Additional file 9 of Divergence in chondrogenic potential between in vitro and in vivo of adipose- and synovial-stem cells from mouse and human

16. Additional file 10 of Divergence in chondrogenic potential between in vitro and in vivo of adipose- and synovial-stem cells from mouse and human

17. Additional file 18 of Divergence in chondrogenic potential between in vitro and in vivo of adipose- and synovial-stem cells from mouse and human

18. Additional file 13 of Divergence in chondrogenic potential between in vitro and in vivo of adipose- and synovial-stem cells from mouse and human

19. Additional file 21 of Divergence in chondrogenic potential between in vitro and in vivo of adipose- and synovial-stem cells from mouse and human

20. Additional file 6 of Divergence in chondrogenic potential between in vitro and in vivo of adipose- and synovial-stem cells from mouse and human

21. Additional file 19 of Divergence in chondrogenic potential between in vitro and in vivo of adipose- and synovial-stem cells from mouse and human

22. Additional file 15 of Divergence in chondrogenic potential between in vitro and in vivo of adipose- and synovial-stem cells from mouse and human

23. Additional file 11 of Divergence in chondrogenic potential between in vitro and in vivo of adipose- and synovial-stem cells from mouse and human

24. Additional file 8 of Divergence in chondrogenic potential between in vitro and in vivo of adipose- and synovial-stem cells from mouse and human

25. Additional file 4 of Divergence in chondrogenic potential between in vitro and in vivo of adipose- and synovial-stem cells from mouse and human

26. Additional file 16 of Divergence in chondrogenic potential between in vitro and in vivo of adipose- and synovial-stem cells from mouse and human

27. Additional file 11 of Divergence in chondrogenic potential between in vitro and in vivo of adipose- and synovial-stem cells from mouse and human

28. Additional file 6 of Divergence in chondrogenic potential between in vitro and in vivo of adipose- and synovial-stem cells from mouse and human

29. Additional file 5 of Divergence in chondrogenic potential between in vitro and in vivo of adipose- and synovial-stem cells from mouse and human

30. Additional file 7 of Divergence in chondrogenic potential between in vitro and in vivo of adipose- and synovial-stem cells from mouse and human

31. Additional file 12 of Divergence in chondrogenic potential between in vitro and in vivo of adipose- and synovial-stem cells from mouse and human

32. Additional file 9 of Divergence in chondrogenic potential between in vitro and in vivo of adipose- and synovial-stem cells from mouse and human

33. Additional file 13 of Divergence in chondrogenic potential between in vitro and in vivo of adipose- and synovial-stem cells from mouse and human

34. Additional file 16 of Divergence in chondrogenic potential between in vitro and in vivo of adipose- and synovial-stem cells from mouse and human

35. Additional file 14 of Divergence in chondrogenic potential between in vitro and in vivo of adipose- and synovial-stem cells from mouse and human

36. Additional file 1 of Safety and effectiveness of peficitinib (ASP015K) in patients with rheumatoid arthritis: interim data (22.7 months mean peficitinib treatment) from a long-term, open-label extension study in Japan, Korea, and Taiwan

42. MOESM1 of Association between high fear-avoidance beliefs about physical activity and chronic disabling low back pain in nurses in Japan

44. MOESM2 of Wnt/β-catenin signaling contributes to articular cartilage homeostasis through lubricin induction in the superficial zone

46. MOESM3 of Wnt/β-catenin signaling contributes to articular cartilage homeostasis through lubricin induction in the superficial zone

47. Additional file 1: of Development of the Japanese Core Outcome Measures Index (COMI): cross-cultural adaptation and psychometric validation

48. Clinical outcomes of primary total hip arthroplasty with PMPC-grafted highly cross-linked polyethylene liners

49. Additional file 1: Figure S1. of Quadriceps muscle strength, radiographic knee osteoarthritis and knee pain: the ROAD study

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