胶原VI和多糖在肌腱胶原原纤维结构和功能调节中的协同作用

Q1 Medicine
Ryan J. Leiphart , Hai Pham , Tyler Harvey , Taishi Komori , Tina M. Kilts , Snehal S. Shetye , Stephanie N. Weiss , Sheila M. Adams , David E. Birk , Louis J. Soslowsky , Marian F. Young
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引用次数: 6

摘要

肌腱是一个重要的肌肉骨骼组织,是容易退化。正确的肌腱维护需要细胞外基质组分之间复杂的相互作用,这一点目前仍知之甚少。胶原VI和多糖是两种定位于肌腱细胞周的基质分子,是组织特性的关键调节剂。虽然有证据表明胶原VI和biglycan在肌腱基质中相互作用,但这两种分子之间的关系及其对肌腱功能的影响尚不清楚。我们试图通过定义胶原VI、biglycan或两者敲除模型中的肌腱特性来阐明胶原VI和biglycan在肌腱中的潜在协调作用。我们首次证实了胶原VI和巨多糖在愈合肌腱内的共表达和共定位,进一步证明了这两种分子在新生肌腱基质形成过程中的合作。胶原VI和/或多糖的缺乏导致胶原纤维大小和肌腱力学性能的显著减少。然而,胶原VI-null的肌腱在纤维大小和力学上比biglycan-null的肌腱表现出更大的减少。有趣的是,敲除这两种分子导致的特性与单独敲除胶原VI相似。这些结果表明胶原VI和多糖在肌腱中的作用是不同的和非加性的。这项工作提供了更好地了解两个关键肌腱基质分子之间的调节相互作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Coordinate roles for collagen VI and biglycan in regulating tendon collagen fibril structure and function

Coordinate roles for collagen VI and biglycan in regulating tendon collagen fibril structure and function

Coordinate roles for collagen VI and biglycan in regulating tendon collagen fibril structure and function

Coordinate roles for collagen VI and biglycan in regulating tendon collagen fibril structure and function

Tendon is a vital musculoskeletal tissue that is prone to degeneration. Proper tendon maintenance requires complex interactions between extracellular matrix components that remain poorly understood. Collagen VI and biglycan are two matrix molecules that localize pericellularly within tendon and are critical regulators of tissue properties. While evidence suggests that collagen VI and biglycan interact within the tendon matrix, the relationship between the two molecules and its impact on tendon function remains unknown. We sought to elucidate potential coordinate roles of collagen VI and biglycan within tendon by defining tendon properties in knockout models of collagen VI, biglycan, or both molecules. We first demonstrated co-expression and co-localization of collagen VI and biglycan within the healing tendon, providing further evidence of cooperation between the two molecules during nascent tendon matrix formation. Deficiency in collagen VI and/or biglycan led to significant reductions in collagen fibril size and tendon mechanical properties. However, collagen VI-null tendons displayed larger reductions in fibril size and mechanics than seen in biglycan-null tendons. Interestingly, knockout of both molecules resulted in similar properties to collagen VI knockout alone. These results indicate distinct and non-additive roles for collagen VI and biglycan within tendon. This work provides better understanding of regulatory interactions between two critical tendon matrix molecules.

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来源期刊
Matrix Biology Plus
Matrix Biology Plus Medicine-Histology
CiteScore
9.00
自引率
0.00%
发文量
25
审稿时长
105 days
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