GENETIC EXPRESSION FOR TYPE-I PROCOLLAGEN IN THE EARLY STAGES OF FLEXOR TENDON HEALING

被引:66
作者
GELBERMAN, RH
AMIEL, D
HARWOOD, F
机构
[1] Department of Orthopaedic Surgery, Massachusetts General Hospital, Boston, MA
[2] Department of Orthopaedics, University of California, San Diego School of Medicine, La Jolla, CA
来源
JOURNAL OF HAND SURGERY-AMERICAN VOLUME | 1992年 / 17A卷 / 03期
关键词
D O I
10.1016/0363-5023(92)90370-5
中图分类号
R826.8 [整形外科学]; R782.2 [口腔颌面部整形外科学]; R726.2 [小儿整形外科学]; R62 [整形外科学(修复外科学)];
学科分类号
摘要
To determine the precise mechanism by which contact tendon healing occurs at the cellular level, the production of pro alpha(I) collagen messenger RNA (mRNA) produced by fibroblasts of healing intrasynovial flexor tendons was determined by an in situ hybridization technique. The repair site and the proximal and distal tendon stumps of repaired tendons treated with early controlled passive mobilization were fixed and buffered in formalin, 3, 7, 10, and 17 days after repair. A complimentary DNA (cDNA) probe corresponding to alpha(I) procollagen mRNA was labeled with [P-32]d-CTP. After hybridization, autoradiography, and staining of the sections, the level of procollagen mRNA was assessed by microscopic examination. Rising levels of procollagen mRNA, indicating progressively increasing levels of synthetic collagen activity, were detected in the healing tendons through 10 days. A moderate decrease in procollagen mRNA was seen at 17 days. Genetic expression for procollagen mRNA was localized specifically to the epitenon cells on the tendon surface overlying the repair site and to cells in the gap between the tendon stumps. No detectable expression was noted in endotenon fibroblasts. The finding of high levels of expression for procollagen type I mRNA in the surface layer of healing tendons demonstrates that cells intrinsic to tendon epitenon contribute the greatest quantity of native tendon collagen to the repair site during these important early intervals after tendon suture.
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页码:551 / 558
页数:8
相关论文
共 31 条
[1]  
Peacock, Fundamental aspects of wound healing relating to the restoration of gliding function after tendon repair, Surg Gynecol Obstet, 119, pp. 241-250, (1964)
[2]  
Peacock, Biological principles in the healing of long tendons, Surg Clin North Am, 45, pp. 461-476, (1965)
[3]  
Peacock, Repair of tendons and restoration of gliding function, Surgery and biology of wound repair, pp. 331-424, (1970)
[4]  
Lindsay, Birch, The fibroblast in flexor tendon healing, Plast Reconstr Surg, 34, pp. 223-232, (1964)
[5]  
Lundborg, Experimental flexor tendon healing without adhesion formation—a new concept of tendon nutrition and intrinsic healing mechanisms: a preliminary report, Hand, 8, pp. 235-238, (1976)
[6]  
Lundborg, Rank, Experimental intrinsic healing of flexor tendons based upon synovial fluid nutrition, J Hand Surg, 3, pp. 21-31, (1978)
[7]  
Lundborg, Rank, Experimental studies on cellular mechanisms involved in healing of animal and human flexor tendon in synovial environment, Hand, 12, pp. 3-11, (1980)
[8]  
Lundborg, Holm, Myrhage, The role of the synovial fluid and tendon sheath for flexor tendon nutrition, Scand J Plast Reconstr Surg, 14, pp. 99-107, (1980)
[9]  
Manske, Lesker, Nutrient pathways of flexor tendons in primates, J Hand Surg, 7, pp. 436-444, (1982)
[10]  
Manske, Lesker, Histologic evidence of flexor tendon repair in various experimental animals: an in vitro study, Clin Orthop, 182, pp. 353-360, (1984)