变硬
可扩展性
细胞力学
机械生物学
细胞壁
纤维素
刚度
生物物理学
弹性(物理)
可塑性
化学
纤维
纳米技术
材料科学
生物
细胞
复合材料
计算机科学
细胞骨架
解剖
有机化学
操作系统
生物化学
作者
Yao Zhang,Jingyi Yu,Xuan Wang,Daniel M. Durachko,Sulin Zhang,Daniel J. Cosgrove
出处
期刊:Science
[American Association for the Advancement of Science]
日期:2021-05-13
卷期号:372 (6543): 706-711
被引量:209
标识
DOI:10.1126/science.abf2824
摘要
Plants have evolved complex nanofibril-based cell walls to meet diverse biological and physical constraints. How strength and extensibility emerge from the nanoscale-to-mesoscale organization of growing cell walls has long been unresolved. We sought to clarify the mechanical roles of cellulose and matrix polysaccharides by developing a coarse-grained model based on polymer physics that recapitulates aspects of assembly and tensile mechanics of epidermal cell walls. Simple noncovalent binding interactions in the model generate bundled cellulose networks resembling that of primary cell walls and possessing stress-dependent elasticity, stiffening, and plasticity beyond a yield threshold. Plasticity originates from fibril-fibril sliding in aligned cellulose networks. This physical model provides quantitative insight into fundamental questions of plant mechanobiology and reveals design principles of biomaterials that combine stiffness with yielding and extensibility.
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