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均匀 13C 标记拟南芥初生细胞壁中果胶多糖的结构和动态的多维固态 NMR 研究。

Multidimensional solid-state NMR studies of the structure and dynamics of pectic polysaccharides in uniformly 13C-labeled Arabidopsis primary cell walls.

机构信息

Department of Chemistry and the Ames Laboratory, Iowa State University, Ames, IA 50011, USA.

出版信息

Magn Reson Chem. 2012 Aug;50(8):539-50. doi: 10.1002/mrc.3836. Epub 2012 Jul 8.

Abstract

Plant cell wall (CW) polysaccharides are responsible for the mechanical strength and growth of plant cells; however, the high-resolution structure and dynamics of the CW polysaccharides are still poorly understood because of the insoluble nature of these molecules. Here, we use 2D and 3D magic-angle-spinning (MAS) solid-state NMR (SSNMR) to investigate the structural role of pectins in the plant CW. Intact and partially depectinated primary CWs of Arabidopsis thaliana were uniformly labeled with (13)C and their NMR spectra were compared. Recent (13)C resonance assignment of the major polysaccharides in Arabidopsis thaliana CWs allowed us to determine the effects of depectination on the intermolecular packing and dynamics of the remaining wall polysaccharides. 2D and 3D correlation spectra show the suppression of pectin signals, confirming partial pectin removal by chelating agents and sodium carbonate. Importantly, higher cross peaks are observed in 2D and 3D (13)C spectra of the depectinated CW, suggesting higher rigidity and denser packing of the remaining wall polysaccharides compared with the intact CW. (13)C spin-lattice relaxation times and (1)H rotating-frame spin-lattice relaxation times indicate that the polysaccharides are more rigid on both the nanosecond and microsecond timescales in the depectinated CW. Taken together, these results indicate that pectic polysaccharides are highly dynamic and endow the polysaccharide network of the primary CW with mobility and flexibility, which may be important for pectin functions. This study demonstrates the capability of multidimensional SSNMR to determine the intermolecular interactions and dynamic structures of complex plant materials under near-native conditions.

摘要

植物细胞壁 (CW) 多糖负责植物细胞的机械强度和生长;然而,由于这些分子的不溶性,CW 多糖的高分辨率结构和动力学仍然知之甚少。在这里,我们使用 2D 和 3D 魔角旋转 (MAS) 固态 NMR (SSNMR) 来研究果胶在植物 CW 中的结构作用。拟南芥的完整和部分脱果胶的初生 CW 均匀标记了 (13)C,比较了它们的 NMR 谱。最近对拟南芥 CW 中主要多糖的 (13)C 共振分配允许我们确定脱果胶对剩余细胞壁多糖的分子间堆积和动力学的影响。2D 和 3D 相关谱显示出果胶信号的抑制,证实了螯合剂和碳酸钠对果胶的部分去除。重要的是,在脱果胶 CW 的 2D 和 3D (13)C 谱中观察到更高的交叉峰,表明与完整 CW 相比,剩余细胞壁多糖的刚性更高,堆积更紧密。(13)C 自旋晶格弛豫时间和 (1)H 旋转框架自旋晶格弛豫时间表明,在脱果胶 CW 中,多糖在纳秒和微秒时间尺度上的刚性都更高。综上所述,这些结果表明,果胶多糖具有高度的动态性,并赋予初生 CW 的多糖网络流动性和灵活性,这对于果胶功能可能很重要。本研究证明了多维 SSNMR 在近天然条件下确定复杂植物材料的分子间相互作用和动态结构的能力。

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