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柔性果胶纳米图案化驱动植物细胞壁组织

Flexible Pectin Nanopatterning Drives Cell Wall Organization in Plants.

作者信息

Siemianowski Oskar, Rongpipi Sintu, Del Mundo Joshua T, Freychet Guillaume, Zhernenkov Mikhail, Gomez Enrique D, Gomez Esther W, Anderson Charles T

机构信息

Department of Biology, The Pennsylvania State University, University Park, Pennsylvania 16802, United States.

Faculty of Biology, Institute of Experimental Plant Biology and Biotechnology, University of Warsaw, Miecznikowa Street 1, 02-096 Warszawa, Poland.

出版信息

JACS Au. 2024 Jan 3;4(1):177-188. doi: 10.1021/jacsau.3c00616. eCollection 2024 Jan 22.

Abstract

Plant cell walls are abundant sources of materials and energy. Nevertheless, cell wall nanostructure, specifically how pectins interact with cellulose and hemicelluloses to construct a robust and flexible biomaterial, is poorly understood. X-ray scattering measurements are minimally invasive and can reveal ultrastructural, compositional, and physical properties of materials. Resonant X-ray scattering takes advantage of compositional differences by tuning the energy of the incident X-ray to absorption edges of specific elements in a material. Using Tender Resonant X-ray Scattering (TReXS) at the calcium K-edge to study hypocotyls of the model plant, , we detected distinctive Ca features that we hypothesize correspond to previously unreported Ca-Homogalacturonan (Ca-HG) nanostructures. When Ca-HG structures were perturbed by chemical and enzymatic treatments, cellulose microfibrils were also rearranged. Moreover, Ca-HG nanostructure was altered in mutants with abnormal cellulose, pectin, or hemicellulose content. Our results indicate direct structural interlinks between components of the plant cell wall at the nanoscale and reveal mechanisms that underpin both the structural integrity of these components and the molecular architecture of the plant cell wall.

摘要

植物细胞壁是丰富的物质和能量来源。然而,细胞壁的纳米结构,特别是果胶如何与纤维素和半纤维素相互作用以构建一种坚固且灵活的生物材料,目前仍知之甚少。X射线散射测量具有微创性,能够揭示材料的超微结构、组成和物理性质。共振X射线散射通过将入射X射线的能量调谐到材料中特定元素的吸收边,利用组成差异。利用钙K边的软X射线共振散射(TReXS)研究模式植物的下胚轴,我们检测到了独特的钙特征,我们推测这些特征对应于以前未报道的钙-同型半乳糖醛酸聚糖(Ca-HG)纳米结构。当Ca-HG结构受到化学和酶处理的干扰时,纤维素微纤丝也会重新排列。此外,在纤维素、果胶或半纤维素含量异常的突变体中,Ca-HG纳米结构发生了改变。我们的结果表明了植物细胞壁各组分在纳米尺度上的直接结构联系,并揭示了支撑这些组分结构完整性和植物细胞壁分子结构的机制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a667/10806874/c3f168569349/au3c00616_0001.jpg

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