驱动细胞骨架复合材料的脱混驱动紧急力学性能。

IF 4.2 3区 化学 Q2 POLYMER SCIENCE
Janet Sheung, Christopher Gunter, Katarina Matic, Mehrzad Sasanpour, Jennifer L Ross, Parag Katira, Megan T Valentine, Rae M Robertson-Anderson
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引用次数: 0

摘要

细胞骨架是丝状蛋白的活性复合物,通过产生力和自主重组来决定真核细胞的各种机械特性和过程。作用于组成细丝的酶马达在这一活动中发挥关键作用,驱动时空异质性的机械反应,这对细胞的多功能性至关重要,但也使机械表征具有挑战性。在这里,我们将光学镊子微流变学和荧光显微镜与模拟和数学建模相结合,以强有力地表征肌动蛋白丝和微管的活性复合材料的力学特性。研究发现,复合材料表现出丰富的力响应行为集合——弹性、屈服和强化——它们的倾向和性能由运动集中和应变速率调节。此外,中间的激酶蛋白浓度会引起出现的机械刚度和阻力,而较高和较低的浓度会表现出更柔软、更粘滞的耗散。进一步表明,复合材料从肌动蛋白和微管混合良好的互穿双网络转变为微管富集的非混合状态,周围是相对未受干扰的肌动蛋白相。正是这种分离导致了紧急的机械响应,提供了复合材料可以利用的另一种途径,通过结构和力学的耦合来提高刚度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Kinesin-Driven De-Mixing of Cytoskeleton Composites Drives Emergent Mechanical Properties.

The cytoskeleton is an active composite of filamentous proteins that dictates diverse mechanical properties and processes in eukaryotic cells by generating forces and autonomously restructuring itself. Enzymatic motors that act on the comprising filaments play key roles in this activity, driving spatiotemporally heterogeneous mechanical responses that are critical to cellular multifunctionality, but also render mechanical characterization challenging. Here, we couple optical tweezers microrheology and fluorescence microscopy with simulations and mathematical modeling to robustly characterize the mechanics of active composites of actin filaments and microtubules restructured by kinesin motors. It is discovered that composites exhibit a rich ensemble of force response behaviors-elastic, yielding, and stiffening-with their propensity and properties tuned by motor concentration and strain rate. Moreover, intermediate kinesin concentrations elicit emergent mechanical stiffness and resistance while higher and lower concentrations exhibit softer, more viscous dissipation. It is further shown that composites transition from well-mixed interpenetrating double-networks of actin and microtubules to de-mixed states of microtubule-rich aggregates surrounded by relatively undisturbed actin phases. It is this de-mixing that leads to the emergent mechanical response, offering an alternate route that composites can leverage to achieve enhanced stiffness through coupling of structure and mechanics.

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来源期刊
Macromolecular Rapid Communications
Macromolecular Rapid Communications 工程技术-高分子科学
CiteScore
7.70
自引率
6.50%
发文量
477
审稿时长
1.4 months
期刊介绍: Macromolecular Rapid Communications publishes original research in polymer science, ranging from chemistry and physics of polymers to polymers in materials science and life sciences.
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