研究 Rhodococcus jostii RHA1 中与多糖生物合成有关的两种糖基转移酶。

IF 2.4 4区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY
Biological Chemistry Pub Date : 2024-03-15 Print Date: 2024-05-27 DOI:10.1515/hsz-2023-0339
Antonela Estefania Cereijo, María Victoria Ferretti, Alberto Alvaro Iglesias, Héctor Manuel Álvarez, Matías Damian Asencion Diez
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引用次数: 0

摘要

Rhodococcus 细菌属包括在特定生长条件和碳氮供应比例下具有油脂分泌行为的生物。Rhodococcus 是生物燃料前体的杰出生产者,其中脂质和糖原代谢密切相关。因此,要更好地了解根瘤菌的碳分配,就必须确定将糖分子重新定向到储存分子的催化步骤。在这里,我们分析了来自乔氏杜鹃球菌的两种 GT4 糖基转移酶(RjoGlgAb 和 RjoGlgAc),它们被注释为 α-葡聚糖-α-1,4-葡糖基转移酶,可能参与糖原合成。这两种酶都是在大肠杆菌细胞中产生的,经过纯化达到均一,并进行了动力学表征。RjoGlgAb 和 RjoGlgAc 具有 "典型的 "糖原合成酶活性,并具有麦芽糖-1P 合成酶的活性,但活性程度不同。然后,RjoGlgAc 是霉菌 GlgM 的同源酶,具有相似的动力学行为和葡萄糖基供体偏好。RjoGlgAc 对葡萄糖-1P 的葡萄糖基化效率比对糖原的葡萄糖基化效率高两个数量级,同样使用葡萄糖胺-1P 作为催化效率高的琼脂糖。相反,RjoGlgAb 以相似的动力学效率表现出这两种活性,并偏好短支链的 α-1,4-葡聚糖。奇怪的是,RjoGlgAb 呈现出超同源构象(超过 15 个亚基),代表了一种具有独特结构-功能关系的新型酶。本文介绍的动力学结果为从酶学角度推断根瘤菌的多糖生物合成提供了提示。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Study of two glycosyltransferases related to polysaccharide biosynthesis in Rhodococcus jostii RHA1.

The bacterial genus Rhodococcus comprises organisms performing oleaginous behaviors under certain growth conditions and ratios of carbon and nitrogen availability. Rhodococci are outstanding producers of biofuel precursors, where lipid and glycogen metabolisms are closely related. Thus, a better understanding of rhodococcal carbon partitioning requires identifying catalytic steps redirecting sugar moieties to storage molecules. Here, we analyzed two GT4 glycosyl-transferases from Rhodococcus jostii (RjoGlgAb and RjoGlgAc) annotated as α-glucan-α-1,4-glucosyl transferases, putatively involved in glycogen synthesis. Both enzymes were produced in Escherichia coli cells, purified to homogeneity, and kinetically characterized. RjoGlgAb and RjoGlgAc presented the "canonical" glycogen synthase activity and were actives as maltose-1P synthases, although to a different extent. Then, RjoGlgAc is a homologous enzyme to the mycobacterial GlgM, with similar kinetic behavior and glucosyl-donor preference. RjoGlgAc was two orders of magnitude more efficient to glucosylate glucose-1P than glycogen, also using glucosamine-1P as a catalytically efficient aglycon. Instead, RjoGlgAb exhibited both activities with similar kinetic efficiency and preference for short-branched α-1,4-glucans. Curiously, RjoGlgAb presented a super-oligomeric conformation (higher than 15 subunits), representing a novel enzyme with a unique structure-to-function relationship. Kinetic results presented herein constitute a hint to infer on polysaccharides biosynthesis in rhodococci from an enzymological point of view.

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来源期刊
Biological Chemistry
Biological Chemistry 生物-生化与分子生物学
CiteScore
7.20
自引率
0.00%
发文量
63
审稿时长
4-8 weeks
期刊介绍: Biological Chemistry keeps you up-to-date with all new developments in the molecular life sciences. In addition to original research reports, authoritative reviews written by leading researchers in the field keep you informed about the latest advances in the molecular life sciences. Rapid, yet rigorous reviewing ensures fast access to recent research results of exceptional significance in the biological sciences. Papers are published in a "Just Accepted" format within approx.72 hours of acceptance.
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