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Molecular insights into the complex mechanics of plant epidermal cell walls

机译:分子见解进入植物表皮细胞壁的复杂力学

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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.
机译:植物已经进化了复合纳米纤维的细胞壁,以满足不同的生物和物理限制。 如何从纳米级到Mesoscale组织的强度和可扩展性出现,长期未得到解决。 我们试图通过显影基于聚合物物理学的粗粒模型来阐明纤维素和基质多糖的机械作用,该模型概述了表皮细胞壁的组装和拉伸力学的各方面。 模型中的简单非共价结合相互作用产生类似于主细胞壁的束纤维素网络,并具有超出屈服阈值的应力依赖性弹性,加强和可塑性。 塑性源自纤维 - 原纤维在对齐的纤维素网络中滑动。 该物理模型提供了对植物力学学的基本问题的定量洞察力,并揭示了将刚度与屈服和可扩展性结合的生物材料的设计原则。

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  • 来源
    《Science》 |2021年第6543期|706-711|共6页
  • 作者单位

    Penn State Univ Dept Biol University Pk PA 16802 USA;

    Penn State Univ Dept Biol University Pk PA 16802 USA;

    Penn State Univ Dept Biol University Pk PA 16802 USA;

    Penn State Univ Dept Biol University Pk PA 16802 USA;

    Penn State Univ Dept Engn Sci & Mech University Pk PA 16802 USA|Penn State Univ Dept Biomed Engn University Pk PA 16802 USA;

    Penn State Univ Dept Biol University Pk PA 16802 USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
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