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Micromechanical mapping of live cells by multiple-particle-tracking microrheology.

机译:通过多粒子跟踪微流变学对活细胞进行微机械制图。

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摘要

This paper introduces the method of live-cell multiple-particle-tracking microrheology (MPTM), which quantifies the local mechanical properties of living cells by monitoring the Brownian motion of individual microinjected fluorescent particles. Particle tracking of carboxylated microspheres imbedded in the cytoplasm produce spatial distributions of cytoplasmic compliances and frequency-dependent viscoelastic moduli. Swiss 3T3 fibroblasts are found to behave like a stiff elastic material when subjected to high rates of deformations and like a soft liquid at low rates of deformations. By analyzing the relative contributions of the subcellular compliances to the mean compliance, we find that the cytoplasm is much more mechanically heterogeneous than reconstituted actin filament networks. Carboxylated microspheres embedded in cytoplasm through endocytosis and amine-modified polystyrene microspheres, which are microinjected or endocytosed, often show directed motion and strong nonspecific interactions with cytoplasmic proteins, which prevents computation of local moduli from the microsphere displacements. Using MPTM, we investigate the mechanical function of alpha-actinin in non-muscle cells: alpha-actinin-microinjected cells are stiffer and yet mechanically more heterogeneous than control cells, in agreement with models of reconstituted cross-linked actin filament networks. MPTM is a new type of functional microscopy that can test the local, rate-dependent mechanical and ultrastructural properties of living cells.
机译:本文介绍了活细胞多粒子跟踪微流变学(MPTM)的方法,该方法通过监视单个微注入的荧光粒子的布朗运动来量化活细胞的局部力学性能。嵌入细胞质中的羧化微球的颗粒追踪产生了细胞质顺应性和频率依赖性粘弹性模量的空间分布。发现瑞士3T3成纤维细胞在发生高变形率时表现得像坚硬的弹性材料,而在低变形率中表现得像柔软的液体。通过分析亚细胞顺应性对平均顺应性的相对贡献,我们发现细胞质的机械异质性比重组肌动蛋白丝网络要强得多。通过内吞作用嵌入到细胞质中的羧化微球和经胺注射或内吞的胺改性聚苯乙烯微球通常表现出定向运动并与胞质蛋白发生强烈的非特异性相互作用,从而阻止了从微球置换中计算局部模量。使用MPTM,我们研究了α-肌动蛋白在非肌肉细胞中的机械功能:与重组细胞交联的肌动蛋白丝网络模型相符,α-肌动蛋白显微注射的细胞比对照细胞更硬,但机械上的异质性更高。 MPTM是一种新型的功能显微镜,可以测试活细胞的局部,速率依赖性机械和超微结构特性。

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