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Unraveling capillary interaction and viscoelastic response in atomic force microscopy of hydrated collagen fibrils

机译:解开毛细管交互和粘弹性水化反应原子力显微镜胶原原纤维

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The mechanical properties of collagen fibrils depend on the amount and the distribution of water molecules within the fibrils. Here, we use atomic force microscopy (AFM) to study the effect of hydration on the viscoelastic properties of reconstituted type I collagen fibrils in air with controlled relative humidity. With the same AFM tip, we investigate the same area of a collagen fibril with two different force spectroscopy methods: force-distance (FD) and amplitude-phase-distance (APD) measurements. This allows us to separate the contributions of the fibril's viscoelastic response and the capillary force to the tip-sample interaction. A water bridge forms between the tip apex and the surface, causing an attractive capillary force, which is the main contribution to the energy dissipated from the tip to the specimen in dynamic AFM. The force hysteresis in the FD measurements and the tip indentation of only 2 nm in the APD measurements show that the hydrated collagen fibril is a viscoelastic solid. The mechanical properties of the gap regions and the overlap regions in the fibril's D-band pattern differ only in the top 2 nm but not in the fibril's bulk. We attribute this to the reduced number of intermolecular crosslinks in the reconstituted collagen fibril. The presented methodology allows the mechanical surface properties of hydrated collagenous tissues and biomaterials to be studied with unprecedented detail on the nanometer scale.
机译:胶原原纤维的力学性能取决于数量和分布水分子在纤维内。原子力显微镜(AFM)研究效果水合的粘弹性性质重组I型胶原原纤维在空气中相对湿度控制。提示,我们调查同一地区的胶原蛋白原纤维和光谱两种不同的力量方法:force-distance (FD)和amplitude-phase-distance (adp)测量。让我们独立的贡献原纤维的粘弹性响应和毛细管力tip-sample交互。桥在提示顶端和形式表面,导致一个有吸引力的毛细力,能源的主要贡献是什么从提示标本的消散动态AFM。测量和缩进的只有2海里adp的测量表明,水化胶原原纤维是一种粘弹性固体。机械性能的差距和地区重叠区域的原纤维d带模式只有在不同2海里而不是顶部原纤维的体积。分子间交联的数量重组胶原原纤维。方法允许机械表面水合胶原组织的性质生物材料与前所未有的研究纳米尺度上的细节。

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