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Unraveling the Rapid Assembly Process of Stiff Cellulosic Fibers from Mistletoe Berries

机译:从槲寄生浆果中解开克服纤维素纤维的快速组装过程

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摘要

The mucilaginous viscin tissue within mistletoe berries possesses an extraordinary ability to be rapidly processed under ambient conditions into stiff cellulosic fibers (>14 GPa) through simple mechanical drawing. This rapid and extreme transformation process is hydration-dependent and involves an astonishing >200-fold increase in length, providing a relevant role model for efforts to produce advanced composites from cellulose-based structures such as cellulose nanocrystals or cellulose nanofibrils. Using a combination of in situ polarized light microscopy, synchrotron X-ray scattering, and humidity-controlled mechanical analysis, we examine here the dynamic transition of a viscin cell bundle from hydrogel-like tissues to high-performance fibers. Our findings indicate a massive phase transition in which cellulose microfibrils containing high-aspect-ratio crystalline domains undergo dramatic reorganization, facilitated by a water-responsive noncellulosic matrix. Transition from an aligned, yet flowing state to a stiff fiber is likely triggered by rapid water loss below 45% relative humidity. These findings not only help understanding the adaptive success of mistletoe but may also be relevant for the development of new facile processing methods for next-generation cellulosic composites.
机译:槲寄生浆内的粘膜粘菌素组织具有通过简单的机械拉伸在环境条件下快速加工成克服克服纤维素纤维(> 14GPa)的非凡能力。这种快速和极端的转化过程是水合依赖性的,并且涉及令人惊讶的时间和长度增加,提供了一种相关的职位模型,用于生产从纤维素纳米晶体如纤维素纳米晶体或纤维素纳米纤维的纤维素结构的先进复合材料。使用原位偏振光显微镜的组合,同步调节X射线散射和湿度控制的机械分析,我们检查了粘菌素细胞束从水凝胶状组织到高性能纤维的动态转变。我们的发现表明含有高纵横比结晶结构域的纤维素微纤维的大量相转变,经历了戏剧性的重组,通过水响应性非细胞基质促进。从对齐的转变,然而,流动状态可能会通过低于45%的相对湿度的快速水分损失引发。这些发现不仅有助于了解槲寄生的适应性成功,而且还可以与开发新的下一代纤维素复合材料的开发。

著录项

  • 来源
    《Biomacromolecules》 |2019年第8期|共10页
  • 作者单位

    Max Planck Inst Colloids &

    Interfaces Dept Biomat D-14424 Potsdam Germany;

    Max Planck Inst Colloids &

    Interfaces Dept Biomat D-14424 Potsdam Germany;

    Max Planck Inst Colloids &

    Interfaces Dept Biomat D-14424 Potsdam Germany;

    Max Planck Inst Colloids &

    Interfaces Dept Biomat D-14424 Potsdam Germany;

    McGill Univ Dept Chem 801 Sherbrooke St West Montreal PQ H3A 0B8 Canada;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 分子生物学;
  • 关键词

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