CELLULAR-SURVIVAL AND PROLIFERATION IN AUTOGENOUS FLEXOR TENDON CRAFTS

被引:32
作者
ARK, JW
GELBERMAN, RH
ABRAHAMSSON, SO
SEILER, JG
AMIEL, D
机构
[1] Massachusetts General Hospital, Department of Orthopaedic Surgery, Boston, MA
[2] The Emory Clinic, Atlanta, GA
[3] University of California, San Diego
[4] School of Medicine, La Jolla, CA
来源
JOURNAL OF HAND SURGERY-AMERICAN VOLUME | 1994年 / 19A卷 / 02期
关键词
D O I
10.1016/0363-5023(94)90015-9
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
In order to investigate fibroblast survival and proliferation in autogenous flexor tendon grafts, hindlimb intrasynovial and extrasynovial donor tendons were placed within the synovial sheaths of the medial and lateral forepaw digits of 21 dogs (42 tendons) and treated with controlled early passive motion. Intravital histologic evaluations with confocal microscopy and biochemical determinations of total DNA content and DNA synthesis were carried out at 10 days, 3 weeks, and 6 weeks. Intravital staining of the extrasynovial tendon grafts demonstrated variable degrees of cellular necrosis at the earliest intervals followed by cellular repopulation with fibroblasts and neovascularization from surface vessels. In contrast, intrasynovial tendon grafts were populated predominantly by viable cells at each interval, with occasional patches of cell necrosis and fibroblast ingrowth. Total DNA content and DNA synthesis values in the intrasynovial donor tendons were significantly lower than those seen in the extrasynovial tendon grafts at each interval. Extrasynovial tendons appear to act as scaffolds, undergoing extensive cellular death followed by a rapid repair response. Findings that intrasynovial tendon fibroblasts survive the tendon grafting process suggest that the nutritional supplies and metabolic requirements of intrasynovial and extrasynovial donor tendons differ largely.
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页码:249 / 258
页数:10
相关论文
共 37 条
[1]  
Gelberman, Chu, Williams, Seiler, Amiel, Angiogenesis in healing autogenesis flexor tendon grafts, J Bone Joint Surg, 74 A, pp. 1207-1216, (1992)
[2]  
Gelberman, Seiler, Rosenberg, Heyman, Amiel, Intercalary Flexor Tendon Grafts:A Morphological Study of Intrasynovial and Extrasynovial Donor Tendons, Scandinavian Journal of Plastic and Reconstructive Surgery and Hand Surgery, 26, (1992)
[3]  
Seiler, Gelberman, Williams, Et al., Autogenous flexor tendon grafts: a biomechanical and morphological study in dogs, J Bone Joint Surg, 75 A, pp. 1004-1014, (1993)
[4]  
Moore, MacCoubrey, Haugland, A rapid, pH insensitive, two color fluorescence viability (cytotoxicity) assay, J Cell Biol, 111, (1990)
[5]  
MacCoubrey, Moore, Haugland, Quantitative fluorescence measurements of cell viability (cytotoxicity) with a multi-well plate scanner, J Cell Biol, 111, (1990)
[6]  
Bonting, Jones, Determination of microgram quantities of deoxyribonucleic acid and protein in tissues grown in vitro, Arch Biochem Biophys, 66, pp. 340-343, (1957)
[7]  
Puzas, Brand, The effect of bone cell stimulatory factors can be measured with thymidine incorporation only under specific conditions, Calcif Tissue Int, 39, pp. 104-108, (1986)
[8]  
Abrahamsson, Lundborg, Lohmander, Segmental variation in microstructure matrix synthesis and cell proliferation in rabbit flexor tendon, Scand J Plast Reconstr Surg, 23, pp. 191-198, (1989)
[9]  
Boyes, Stark, Flexor-tendon grafts in the fingers and thumb, a study of factors influencing results in 1000 cases, J Bone Joint Surg, 53 A, pp. 1332-1342, (1971)
[10]  
Meals, Current concepts review, flexor tendon injuries, J Bone Joint Surg, 67 A, pp. 817-821, (1985)