首页> 美国卫生研究院文献>Plant Signaling Behavior >The FEI2-SOS5 pathway and CELLULOSE SYNTHASE 5 are required for cellulose biosynthesis in the Arabidopsis seed coat and affect pectin mucilage structure
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The FEI2-SOS5 pathway and CELLULOSE SYNTHASE 5 are required for cellulose biosynthesis in the Arabidopsis seed coat and affect pectin mucilage structure

机译:FEI2-SOS5途径和纤维素合成酶5是拟南芥种皮中纤维素生物合成所必需的并影响果胶黏液结构

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摘要

A common adaptation in angiosperms is the deposition of hydrophilic mucilage into the apoplast of seed coat epidermal cells during the course of their differentiation. Upon imbibition, seed mucilage, composed mainly of carbohydrates (i.e. pectins, hemicelluloses and glycans) expands rapidly, encapsulating the seed and aiding in seed dispersal and germination. The FEI1/FEI2 receptor-like kinases and the SOS5 extracellular GPI-anchored protein were previously shown to act on a pathway regulating cellulose biosynthesis during Arabidopsis root elongation. In the highlighted study, we demonstrated that FEI2 and SOS5 regulate the production of the cellulosic rays deposited across the inner adherent-layer of seed mucilage. Mutations in either fei2 or sos5 disrupted the formation of rays, which was associated with an increase in the soluble, outer layer of pectin mucilage and accompanied by a reduction in the inner adherent-layer. Mutations in CELLULOSE SYNTHASE 5 also led to reduced rays and mal-partitioning of the pectic component of seed mucilage, further establishing a structural role for cellulose in seed mucilage. Here, we show that FEI2 expressed from a CaMV 35S promoter complemented both root and seed mucilage defects of the fei1 fei2 double mutant. In contrast, expression of FEI1 from a 35S promoter complemented the root, but not the seed phenotype of the fei1 fei2 double mutant, suggesting that unlike in the root, FEI2 plays a unique and non-redundant role in the regulation of cellulose synthesis in seed mucilage. Altogether, these data suggest a novel role for cellulose in anchoring the pectic component of seed mucilage to the seed surface and indicate that the FEI2 protein has a function distinct from that of FEI1, despite the high sequence similarity of these RLKs.
机译:被子植物的常见适应是在其分化过程中亲水性粘液沉积到种皮表皮细胞的质外体中。吸收后,主要由碳水化合物(即果胶,半纤维素和聚糖)组成的种子粘液迅速膨胀,将种子包封,有助于种​​子的分散和发芽。以前显示FEI1 / FEI2受体样激酶和SOS5细胞外GPI锚定蛋白可在拟南芥根伸长过程中作用于调节纤维素生物合成的途径。在重点研究中,我们证明FEI2和SOS5调节沉积在种子粘液内粘附层上的纤维素射线的产生。 fei2或sos5中的突变会破坏射线的形成,这与果胶黏液的可溶性外层增加有关,并与内粘附层减少有关。纤维素合成酶5的突变还导致减少的射线和种子粘液中果胶成分的错误分配,进一步确立了纤维素在种子粘液中的结构作用。在这里,我们显示从CaMV 35S启动子表达的FEI2补充了fei1 fei2 double突变体的根和种子黏液缺陷。相反,来自35S启动子的FEI1的表达补充了根,而不是fei1 fei2 double突变体的种子表型,这表明与根不同,FEI2在调节种子中纤维素合成中起独特且非冗余的作用。粘液。总而言之,这些数据表明纤维素在将种子粘液的果胶成分锚定到种子表面方面具有新颖的作用,并且表明尽管这些RLK具有高度序列相似性,但FEI2蛋白具有不同于FEI1的功能。

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