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初生细胞壁代谢:追踪活植物细胞中细胞壁聚合物的历程

Primary cell wall metabolism: tracking the careers of wall polymers in living plant cells.

作者信息

Fry Stephen C

机构信息

The Edinburgh Cell Wall Group, Institute of Cell and Molecular Biology, The University of Edinburgh, Daniel Rutherford Building, The King's Buildings, Mayfield Road, Edinburgh EH9 3JH, UK.

出版信息

New Phytol. 2004 Mar;161(3):641-675. doi: 10.1111/j.1469-8137.2004.00980.x. Epub 2004 Jan 16.

Abstract

Numerous examples have been presented of enzyme activities, assayed in vitro, that appear relevant to the synthesis of structural polysaccharides, and to their assembly and subsequent degradation in the primary cell walls (PCWs) of higher plants. The accumulation of the corresponding mRNAs, and of the (immunologically recognized) proteins, has often also (or instead) been reported. However, the presence of these mRNAs, antigens and enzymic activities has rarely been shown to correspond to enzyme action in the living plant cell. In some cases, apparent enzymic action is observed in vivo for which no enzyme activity can be detected in in-vitro assays; the converse also occurs. Methods are reviewed by which reactions involving structural wall polysaccharides can be tracked in vivo. Special attention is given to xyloglucan endotransglucosylase (XET), one of the two enzymic activities exhibited in vitro by xyloglucan endotransglucosylase/hydrolase (XTH) proteins, because of its probable importance in the construction and restructuring of the PCW's major hemicellulose. Attention is also given to the possibility that some reactions observed in the PCW in vivo are not directly enzymic, possibly involving the action of hydroxyl radicals. It is concluded that some proposed wall enzymes, for example XTHs, do act in vivo, but that for other enzymes this is not proven. Contents I. Primary cell walls: composition, deposition and roles 642 II. Reactions that have been proposed to occur in primary cell walls 645 III. Tracking the careers of wall components in vivo: evidence for action of enzymes in the walls of living plant cells 656 IV. Evidence for the occurrence of nonenzymic polymer scission in vivo? 666 VI. Conclusion 667 References 667.

摘要

已经列举了许多体外测定的酶活性实例,这些活性似乎与结构多糖的合成、它们在高等植物初生细胞壁(PCW)中的组装及后续降解有关。相应mRNA以及(免疫识别的)蛋白质的积累情况也常常(或反而)有报道。然而,这些mRNA、抗原和酶活性的存在很少被证明与活植物细胞中的酶作用相对应。在某些情况下,在体内观察到明显的酶作用,但在体外测定中却检测不到酶活性;反之亦然。本文综述了在体内追踪涉及细胞壁结构多糖反应的方法。特别关注木葡聚糖内转糖基酶(XET),它是木葡聚糖内转糖基酶/水解酶(XTH)蛋白在体外表现出的两种酶活性之一,因为它可能在PCW主要半纤维素的构建和重塑中具有重要作用。还关注了在PCW体内观察到的一些反应可能不是直接由酶引起的可能性,可能涉及羟基自由基的作用。得出的结论是,一些提出的细胞壁酶,例如XTHs,确实在体内起作用,但对于其他酶而言,这一点尚未得到证实。内容 一、初生细胞壁:组成、沉积和作用 642 二、提出在初生细胞壁中发生的反应 645 三、在体内追踪细胞壁成分的历程:活植物细胞细胞壁中酶作用的证据 656 四、体内发生非酶促聚合物断裂的证据?666 六、结论 667 参考文献 667 。

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