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仿生木质纤维素薄膜,以纳米尺度理解木质化植物细胞壁的力学性能。

Bioinspired lignocellulosic films to understand the mechanical properties of lignified plant cell walls at nanoscale.

机构信息

FARE laboratory, INRA, Université de Reims Champagne-Ardenne, 51100, Reims, France.

Université de Reims-Champagne Ardenne, Laboratoire de Recherche en Nanosciences EA4682 F-51100 Reims, France.

出版信息

Sci Rep. 2017 Mar 9;7:44065. doi: 10.1038/srep44065.

Abstract

The physicochemical properties of plant fibres are determined by the fibre morphology and structural features of the cell wall, which is composed of three main layers that differ in chemical composition and architecture. This composition and hierarchical structure are responsible for many of the mechanical properties that are desirable for industrial applications. As interactions between the lignocellulosic polymers at the molecular level are the main factor governing the final cohesion and mechanical properties of plant fibres, atomic force microscopy (AFM) is well suited for the observation and measurement of their physical properties at nanoscale levels. Given the complexity of plant cell walls, we have developed a strategy based on lignocellulosic assemblies with increasing complexity to understand the influence of the different polymers on the nanomechanical properties. Measurements of the indentation moduli performed on one type of lignified cell wall compared with those performed on the corresponding lignocellulosic films clearly show the importance of the lignin in the mechanical properties of cell walls. Through this strategy, we envision a wide application of bioinspired systems in future studies of the physical properties of fibres.

摘要

植物纤维的物理化学性质取决于纤维形态和细胞壁的结构特征,细胞壁由化学成分和结构不同的三个主要层组成。这种组成和层次结构是许多工业应用所需的机械性能的原因。由于木质纤维素聚合物在分子水平上的相互作用是控制植物纤维最终内聚和机械性能的主要因素,原子力显微镜(AFM)非常适合观察和测量其纳米级水平的物理性质。鉴于植物细胞壁的复杂性,我们已经开发了一种基于木质纤维素组装体的策略,这些组装体的复杂性逐渐增加,以了解不同聚合物对纳米机械性能的影响。对一种木质化细胞壁进行压痕模量测量,并与相应的木质纤维素薄膜进行比较,这清楚地表明木质素对细胞壁机械性能的重要性。通过这种策略,我们设想在未来对纤维物理性质的研究中广泛应用仿生系统。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2268/5343475/193404038b3a/srep44065-f1.jpg

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