Department of Biomedical Engineering, The Ohio State University, 270 Bevis Hall, 1080 Carmack Road, Columbus, OH 43210, USA.
Biomaterials. 2010 Jun;31(18):4802-8. doi: 10.1016/j.biomaterials.2010.02.070. Epub 2010 Mar 25.
Collagen fibers in the vertebrate tissue are responsible for its tensile strength. A disruption in the morphological or mechanical properties of collagen fibers is bound to impact tensile strength and contractility of tissues and affect several cellular processes. We had recently established that binding of discoidin domain receptor (DDR2) with collagen type I results in disruption of the native structure and morphology of collagen fibers. In this study we investigate if DDR2 affects the mechanical properties of collagen fibers. We used an analytical approach to determine the persistence length (P(L)) of collagen fibers from transmission electron microscope images of immobilized collagen. Fluctuations in the curvature of collagen fibers formed in-vitro (with or without recombinant DDR2) were analyzed to ascertain their P(L). The P(L) values and fiber-diameter measurements were utilized to estimate Young's Modulus (E) of collagen fibers. Our results show that DDR2 significantly reduced P(L) and E of collagen fibers. We further found that P(L) for native collagen fibers increases as a function of collagen concentration with little dependence on fiber diameter. These results signify a physiological role of DDR2 in modulating extracellular matrix stiffness, which may be of relevance for tissue engineering and medical implants especially in diseases where DDR2 is upregulated.
脊椎动物组织中的胶原纤维负责其拉伸强度。胶原纤维的形态或机械性能的破坏必然会影响组织的拉伸强度和收缩性,并影响几个细胞过程。我们最近已经确定,discoidin 结构域受体(DDR2)与 I 型胶原的结合导致胶原纤维的天然结构和形态的破坏。在这项研究中,我们研究了 DDR2 是否会影响胶原纤维的机械性能。我们使用分析方法从固定化胶原的透射电子显微镜图像中确定胶原纤维的持久长度(P(L))。分析体外形成的胶原纤维(有无重组 DDR2)的曲率波动,以确定其 P(L)。利用 P(L)值和纤维直径测量值来估计胶原纤维的杨氏模量(E)。我们的结果表明,DDR2 显著降低了胶原纤维的 P(L)和 E。我们进一步发现,天然胶原纤维的 P(L)随胶原浓度的增加而增加,而与纤维直径的依赖性很小。这些结果表明 DDR2 在调节细胞外基质刚度方面具有生理作用,这对于组织工程和医学植入物尤其在 DDR2 上调的疾病中可能具有重要意义。