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AXY3 encodes a α-xylosidase that impacts the structure and accessibility of the hemicellulose xyloglucan in Arabidopsis plant cell walls

机译:AXY3编码一个α-木糖苷酶该酶影响拟南芥植物细胞壁中半纤维素木葡聚糖的结构和可及性

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摘要

Xyloglucan is the most abundant hemicellulose in the walls of dicots such as Arabidopsis. It is part of the load-bearing structure of a plant cell and its metabolism is thought to play a major role in cell elongation. However, the molecular mechanism by which xyloglucan carries out this and other functions in planta is not well understood. We performed a forward genetic screen utilizing xyloglucan oligosaccharide mass profiling on chemically mutagenized Arabidopsis seedlings to identify mutants with altered xyloglucan structures termed axy-mutants. One of the identified mutants, axy3.1, contains xyloglucan with a higher proportion of non-fucosylated xyloglucan subunits. Mapping revealed that axy3.1 contains a point mutation in XYLOSIDASE1 (XYL1) known to encode for an apoplastic glycoside hydrolase releasing xylosyl residues from xyloglucan oligosaccharides at the non-reducing end. The data support the hypothesis that AXY3/XYL1 is an essential component of the apoplastic xyloglucan degradation machinery and as a result of the lack of function in the various axy3-alleles leads not only to an altered xyloglucan structure but also a xyloglucan that is less tightly associated with other wall components. However, the plant can cope with the excess xyloglucan relatively well as the mutant does not display any visible growth or morphological phenotypes with the notable exception of shorter siliques and reduced fitness. Taken together, these results demonstrate that plant apoplastic hydrolases have a larger impact on wall polymer structure and function than previously thought.Electronic supplementary materialThe online version of this article (doi:10.1007/s00425-010-1330-7) contains supplementary material, which is available to authorized users.
机译:木葡聚糖是双子叶植物如拟南芥中最丰富的半纤维素。它是植物细胞承载结构的一部分,其代谢被认为在细胞伸长中起主要作用。然而,木葡聚糖在植物中执行该功能和其他功能的分子机理尚不十分清楚。我们对化学诱变的拟南芥幼苗进行了利用木葡聚糖寡糖质量分析的前向遗传筛选,以鉴定具有改变的木葡聚糖结构的突变体,称为轴突变体。鉴定出的突变体之一,axy3.1,含有木葡聚糖和更高比例的非岩藻糖基化木葡聚糖亚基。作图显示,axy3.1在XYLOSIDASE1(XYL1)中包含一个点突变,该突变已知编码一种质外生糖苷水解酶,在非还原端从木糖葡聚糖寡糖释放木糖基残基。数据支持以下假设:AXY3 / XYL1是质外生木葡聚糖降解机制的重要组成部分,由于各种axy3-等位基因缺乏功能,不仅导致木葡聚糖结构发生变化,而且导致木葡聚糖的紧密度降低与其他墙壁组件相关联。但是,该植物可以较好地应对过量的木葡聚糖,因为该突变体没有明显的生长或形态表型,只有较短的长角果和降低的适宜性例外。综上所述,这些结果表明植物质外塑性水解酶对壁聚合物结构和功能的影响比以前认为的要大。电子辅助材料本文的在线版本(doi:10.1007 / s00425-010-1330-7)包含辅助材料,其中适用于授权用户。

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