首页> 外文期刊>Journal of biomedical materials research, Part A >Macrophage-like U937 cells recognize collagen fibrils with strain-induced discrete plasticity damage
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Macrophage-like U937 cells recognize collagen fibrils with strain-induced discrete plasticity damage

机译:巨噬细胞样U937细胞识别具有应变诱导的离散可塑性损伤的胶原纤维

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At its essence, biomechanical injury to soft tissues or tissue products means damage to collagen fibrils. To restore function, damaged collagen must be identified, then repaired or replaced. It is unclear at present what the kernel features of fibrillar damage are, how phagocytic or synthetic cells identify that damage, and how they respond. We recently identified a nanostructural motif characteristic of overloaded collagen fibrils that we have termed discrete plasticity. In this study, we have demonstrated that U937 macrophage-like cells respond specifically to overload-damaged collagen fibrils. Tendons from steer tails were bisected, one half undergoing 15 cycles of subrupture mechanical overload and the other serving as an unloaded control. Both halves were decellularized, producing sterile collagen scaffolds that contained either undamaged collagen fibrils, or fibrils with discrete plasticity damage. Matched-pairs were cultured with U937 cells differentiated to a macrophage-like form directly on the substrate. Morphological responses of the U937 cells to the two substratesand evidence of collagenolysis by the cellswere assessed using scanning electron microscopy. Enzyme release into medium was quantified for prototypic matrix metalloproteinase-1 (MMP-1) collagenase, and MMP-9 gelatinase. When adherent to damaged collagen fibrils, the cells clustered less, showed ruffled membranes, and frequently spread: increasing their contact area with the damaged substrate. There was clear structural evidence of pericellular enzymolysis of damaged collagenbut not of control collagen. Cells on damaged collagen also released significantly less MMP-9. These results show that U937 macrophage-like cells recognize strain-induced discrete plasticity damage in collagen fibrils: an ability that may be important to their removal or repair. (c) 2014 Wiley Periodicals, Inc. J Biomed Mater Res Part A: 103A: 397-408, 2015.
机译:从本质上讲,对软组织或组织产品的生物力学损伤意味着对胶原纤维的损伤。为了恢复功能,必须确定受损的胶原蛋白,然后进行修复或更换。目前尚不清楚纤维状损伤的核心特征是什么,吞噬细胞或合成细胞如何识别该损伤,以及它们如何反应。我们最近发现了被称为离散可塑性的胶原蛋白纤维超载的纳米结构特征。在这项研究中,我们已经证明U937巨噬细胞样细胞对超负荷损伤的胶原原纤维有特殊反应。将舵尾上的肌腱一分为二,其中一半经历次循环机械过载的15个循环,另一半作为空载控制。两半均脱细胞,产生无菌胶原蛋白支架,其中包含未损坏的胶原蛋白原纤维或具有离散可塑性损伤的原纤维。匹配对与直接在底物上分化为巨噬细胞样形式的U937细胞培养。使用扫描电子显微镜评估了U937细胞对两种底物的形态学反应以及细胞对胶原蛋白溶解的证据。对原型基质金属蛋白酶-1(MMP-1)胶原酶和MMP-9明胶酶对释放到培养基中的酶进行定量。当粘附在受损的胶原蛋白原纤维上时,细胞聚集较少,显示出褶皱的膜,并经常扩散:增加它们与受损基质的接触面积。有明显的结构证据表明受损胶原蛋白的细胞周围酶解作用,而对照胶原蛋白则没有。受损胶原蛋白上的细胞也释放出更少的MMP-9。这些结果表明,U937巨噬细胞样细胞识别出应变诱导的胶原原纤维离散的可塑性损伤:这种能力可能对其去除或修复很重要。 (c)2014 Wiley Periodicals,Inc.J Biomed Mater Res Part A:103A:397-408,2015年。

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