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多个拟南芥半乳糖基转移酶通过寡糖受体依赖性或从头合成合成聚合同质半乳糖醛酸聚糖。

Multiple Arabidopsis galacturonosyltransferases synthesize polymeric homogalacturonan by oligosaccharide acceptor-dependent or de novo synthesis.

机构信息

Complex Carbohydrate Research Center, University of Georgia, Athens, GA, 30602, USA.

Department of Plant Biology, University of Georgia, Athens, GA, 30602, USA.

出版信息

Plant J. 2022 Mar;109(6):1441-1456. doi: 10.1111/tpj.15640. Epub 2021 Dec 27.

DOI:10.1111/tpj.15640
PMID:34908202
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC8976717/
Abstract

Homogalacturonan (HG), the most abundant pectic glycan, functions as a cell wall structural and signaling molecule essential for plant growth, development and response to pathogens. HG exists as a component of pectic homoglycans, heteroglycans and glycoconjugates. HG is synthesized by members of the GALACTURONOSYLTRANSFERASE (GAUT) family. UDP-GalA-dependent homogalacturonan:galacturonosyltransferase (HG:GalAT) activity has previously been demonstrated for GAUTs 1, 4 and 11, as well as the GAUT1:GAUT7 complex. Here, we show that GAUTs 10, 13 and 14 are also HG:GalATs and that GAUTs 1, 10, 11, 13, 14 and 1:7 synthesize polymeric HG in vitro. Comparison of the in vitro HG:GalAT specific activities of the heterologously-expressed proteins demonstrates GAUTs 10 and 11 with the lowest, GAUT1 and GAUT13 with moderate, and GAUT14 and the GAUT1:GAUT7 complex with the highest HG:GalAT activity. GAUT13 and GAUT14 are also shown to de novo synthesize (initiate) HG synthesis in the absence of exogenous HG acceptors, an activity previously demonstrated for GAUT1:GAUT7. The rate of de novo HG synthesis by GAUT13 and GAUT14 is similar to their acceptor dependent HG synthesis, in contrast to GAUT1:GAUT7 for which de novo synthesis occurred at much lower rates than acceptor-dependent synthesis. The results suggest a unique role for de novo HG synthesis by GAUTs 13 and 14. The reducing end of GAUT13-de novo-synthesized HG has covalently attached UDP, indicating that UDP-GalA serves as both a donor and acceptor substrate during de novo HG synthesis. The functional significance of unique GAUT HG:GalAT catalytic properties in the synthesis of different pectin glycan or glycoconjugate structures is discussed.

摘要

均一型半乳糖醛酸聚糖 (HG) 是果胶聚糖中含量最丰富的糖,它作为细胞壁结构和信号分子,对于植物生长、发育和对病原体的反应至关重要。HG 存在于果胶同型聚糖、异型聚糖和糖缀合物中。HG 由半乳糖醛酸转移酶 (GAUT) 家族成员合成。先前已经证明 GAUTs1、4 和 11 以及 GAUT1:GAUT7 复合物具有依赖 UDP-GalA 的均一型半乳糖醛酸:半乳糖醛酸基转移酶 (HG:GalAT) 活性。在这里,我们表明 GAUTs10、13 和 14 也是 HG:GalAT,并且 GAUTs1、10、11、13、14 和 1:7 在体外合成聚合 HG。比较异源表达蛋白的体外 HG:GalAT 比活,表明 GAUTs10 和 11 的比活最低,GAUT1 和 GAUT13 的比活中等,GAUT14 和 GAUT1:GAUT7 复合物的比活最高。还表明 GAUT13 和 GAUT14 能够从头(起始)合成 HG 合成,而无需外源性 HG 受体,这一活性先前已经在 GAUT1:GAUT7 中证明。GAUT13 和 GAUT14 从头合成 HG 的速率与它们依赖受体的 HG 合成速率相似,而 GAUT1:GAUT7 则相反,其从头合成的速率远低于受体依赖的合成速率。结果表明 GAUT13 和 GAUT14 的从头 HG 合成具有独特的作用。GAUT13 从头合成的 HG 的还原端共价连接 UDP,表明 UDP-GalA 在从头 HG 合成过程中既是供体又是受体底物。讨论了独特的 GAUT HG:GalAT 催化特性在不同果胶聚糖或糖缀合物结构合成中的功能意义。

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