微纤维
材料科学
纤维素
横截面
散射
纤维
细胞壁
结晶学
复合材料
小角X射线散射
分子动力学
生物物理学
化学
光学
计算化学
物理
结构工程
工程类
有机化学
生物
生物化学
作者
Jingyi Yu,Joshua T. Del Mundo,Guillaume Freychet,Mikhail Zhernenkov,Eric Schaible,Esther W. Gomez,Enrique D. Gomez,Daniel J. Cosgrove
出处
期刊:Small
[Wiley]
日期:2024-02-22
卷期号:20 (30): e2311832-e2311832
被引量:13
标识
DOI:10.1002/smll.202311832
摘要
The molecular foundations of epidermal cell wall mechanics are critical for understanding structure-function relationships of primary cell walls in plants and facilitating the design of bioinspired materials. To uncover the molecular mechanisms regulating the high extensibility and strength of the cell wall, the onion epidermal wall is stretched uniaxially to various strains and cell wall structures from mesoscale to atomic scale are characterized. Upon longitudinal stretching to high strain, epidermal walls contract in the transverse direction, resulting in a reduced area. Atomic force microscopy shows that cellulose microfibrils exhibit orientation-dependent rearrangements at high strains: longitudinal microfibrils are straightened out and become highly ordered, while transverse microfibrils curve and kink. Small-angle X-ray scattering detects a 7.4 nm spacing aligned along the stretch direction at high strain, which is attributed to distances between individual cellulose microfibrils. Furthermore, wide-angle X-ray scattering reveals a widening of (004) lattice spacing and contraction of (200) lattice spacing in longitudinally aligned cellulose microfibrils at high strain, which implies longitudinal stretching of the cellulose crystal. These findings provide molecular insights into the ability of the wall to bear additional load after yielding: the aggregation of longitudinal microfibrils impedes sliding and enables further stretching of the cellulose to bear increased loads.
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