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The effect of high vacuum on the mechanical properties and bioactivity of collagen fibril matrices

机译:高真空对胶原原纤维基质力学性能和生物活性的影响

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The extracellular matrix (ECM) environment plays a critical role in organism development and disease. Surface sensitive microscopy techniques for studying the structural and chemical properties of ECMs are often performed in high vacuum (HV) environments. In this report, we examine the affect HV conditions have on the bioactivity and mechanical properties of type I collagen fibrillar matrices. We find that HV exposure has an unappreciable affect on the cell spreading response and mechanical properties of these collagen fibril matrices. Conversely, low vacuum environments cause fibrils to become mechanically rigid as indicated by force microscopy, resulting in greater cell spreading. Time-of-flight secondary ion mass spectrometry results show no noticeable spectral differences between HV-treated and dehydrated matrices. While previous reports have shown that HV can denature proteins in monolayers, these observations indicate that HV-exposure does not mechanically or biochemically alter collagen in its supramolecular configuration. These results may have implication for complex ECM matrices such as decellularized scaffolds.
机译:细胞外基质(ECM)环境在生物体发育和疾病中起关键作用。用于研究ECM的结构和化学性质的表面敏感显微镜技术通常在高真空(HV)环境中进行。在本报告中,我们研究了HV条件对I型胶原纤维基质的生物活性和机械性能的影响。我们发现,HV暴露对这些胶原原纤维基质的细胞扩散反应和机械性能没有明显影响。相反,低真空环境会导致原纤维在力显微镜下显示为机械刚性,从而导致更大的细胞扩散。飞行时间二次离子质谱分析结果显示,在HV处理的基质和脱水的基质之间没有明显的光谱差异。尽管以前的报道表明HV可以使单层蛋白质变性,但这些观察结果表明HV暴露不会机械或生化改变其超分子构型的胶原蛋白。这些结果可能对复杂的ECM基质(如脱细胞支架)有影响。

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