Yu Li, Shi Dachuan, Li Junling, Kong Yingzhen, Yu Yanchong, Chai Guohua, Hu Ruibo, Wang Juan, Hahn Michael G, Zhou Gongke
Key Laboratory of Biofuels, Shandong Provincial Key Laboratory of Energy Genetics, Qingdao Institute of Bioenergy and Bioprocess Technology, Chinese Academy of Sciences, Qingdao, 266101, P.R. China.
Plant Physiol. 2014 Apr;164(4):1842-56. doi: 10.1104/pp.114.236596. Epub 2014 Feb 25.
Mannans are hemicellulosic polysaccharides that are considered to have both structural and storage functions in the plant cell wall. However, it is not yet known how mannans function in Arabidopsis (Arabidopsis thaliana) seed mucilage. In this study, CELLULOSE SYNTHASE-LIKE A2 (CSLA2; At5g22740) expression was observed in several seed tissues, including the epidermal cells of developing seed coats. Disruption of CSLA2 resulted in thinner adherent mucilage halos, although the total amount of the adherent mucilage did not change compared with the wild type. This suggested that the adherent mucilage in the mutant was more compact compared with that of the wild type. In accordance with the role of CSLA2 in glucomannan synthesis, csla2-1 mucilage contained 30% less mannosyl and glucosyl content than did the wild type. No appreciable changes in the composition, structure, or macromolecular properties were observed for nonmannan polysaccharides in mutant mucilage. Biochemical analysis revealed that cellulose crystallinity was substantially reduced in csla2-1 mucilage; this was supported by the removal of most mucilage cellulose through treatment of csla2-1 seeds with endo-β-glucanase. Mutation in CSLA2 also resulted in altered spatial distribution of cellulose and an absence of birefringent cellulose microfibrils within the adherent mucilage. As with the observed changes in crystalline cellulose, the spatial distribution of pectin was also modified in csla2-1 mucilage. Taken together, our results demonstrate that glucomannans synthesized by CSLA2 are involved in modulating the structure of adherent mucilage, potentially through altering cellulose organization and crystallization.
甘露聚糖是半纤维素多糖,被认为在植物细胞壁中兼具结构和储存功能。然而,甘露聚糖在拟南芥种子黏液中的作用尚不清楚。在本研究中,在包括发育中的种皮表皮细胞在内的几种种子组织中观察到类纤维素合酶A2(CSLA2;At5g22740)的表达。CSLA2的破坏导致附着黏液晕变薄,尽管附着黏液的总量与野生型相比没有变化。这表明突变体中的附着黏液比野生型的更致密。与CSLA2在葡甘露聚糖合成中的作用一致,csla2-1黏液中的甘露糖基和葡萄糖基含量比野生型少30%。在突变体黏液中的非甘露聚糖多糖的组成、结构或大分子特性未观察到明显变化。生化分析表明,csla2-1黏液中的纤维素结晶度显著降低;用内切β-葡聚糖酶处理csla2-1种子去除大部分黏液纤维素,这支持了这一结果。CSLA2的突变还导致纤维素的空间分布改变,并且在附着黏液中不存在双折射纤维素微纤丝。与观察到的结晶纤维素变化一样,csla2-1黏液中果胶的空间分布也发生了改变。综上所述,我们的结果表明,由CSLA2合成的葡甘露聚糖可能通过改变纤维素的组织和结晶参与调节附着黏液的结构。