利用 MD 模拟探索水稻 ADP-葡萄糖焦磷酸化酶亚基的结构组装

IF 2.7 4区 生物学 Q2 BIOCHEMICAL RESEARCH METHODS
Jitendra Maharana , Seon-Kap Hwang , Dhanawantari L. Singha , Debashis Panda , Salvinder Singh , Thomas W. Okita , Mahendra Kumar Modi
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引用次数: 0

摘要

ADP- 葡萄糖焦磷酸化酶是植物淀粉生物合成过程中必不可少的一种异构酶,在植物淀粉生物合成过程中起着举足轻重的作用。高等植物 AGPase 由一对大亚基和一对小亚基组成异源四聚体复合物。越来越多的证据表明,每个亚基在调节淀粉生物合成的基本机制方面都发挥着不同的作用。水稻基因组中有四个大亚基基因(OsL1-L4)和三个小亚基基因(OsS1、OsS2a 和 OsS2b)。虽然已知水稻细胞质 AGPase 亚基(OsL2:OsS2b)的结构组装,但迄今为止还没有关于水稻质体 AGPase(OsL1:OsS1)的此类研究报道。在本研究中,我们采用蛋白质建模和 MD 模拟方法深入了解了质体 AGPase 亚基的结构关联。结果表明,OsL1:OsS1与细胞质OsL2:OsS2b和马铃薯质体AGP酶异源四聚体的异源四聚体结合非常相似。此外,与马铃薯 AGPase L1:S1 相似的酵母-两杂交结果表明,OsL1:OsS1 和 OsL2:OsS2b 的蛋白质构象存在差异。因此,与主要存在于水稻胚乳中的 OsL2:OsS2b 相比,质体 AGPase(OsL1:OsS1)在水稻茎秆和发育中胚乳中的调节和催化机制可能有所不同。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Exploring the structural assembly of rice ADP-glucose pyrophosphorylase subunits using MD simulation

Exploring the structural assembly of rice ADP-glucose pyrophosphorylase subunits using MD simulation

ADP-glucose pyrophosphorylase plays a pivotal role as an allosteric enzyme, essential for starch biosynthesis in plants. The higher plant AGPase comparises of a pair of large and a pair of small subunits to form a heterotetrameric complex. Growing evidence indicates that each subunit plays a distinct role in regulating the underlying mechanism of starch biosynthesis. In the rice genome, there are four large subunit genes (OsL1-L4) and three small subunit genes (OsS1, OsS2a, and OsS2b). While the structural assembly of cytosolic rice AGPase subunits (OsL2:OsS2b) has been elucidated, there is currently no such documented research available for plastidial rice AGPases (OsL1:OsS1). In this study, we employed protein modeling and MD simulation approaches to gain insights into the structural association of plastidial rice AGPase subunits. Our results demonstrate that the heterotetrameric association of OsL1:OsS1 is very similar to that of cytosolic OsL2:OsS2b and potato AGPase heterotetramer (StLS:StSS). Moreover, the yeast-two-hybrid results on OsL1:OsS1, which resemble StLS:StSS, suggest a differential protein assembly for OsL2:OsS2b. Thus, the regulatory and catalytic mechanisms for plastidial AGPases (OsL1:OsS1) could be different in rice culm and developing endosperm compared to those of OsL2:OsS2b, which are predominantly found in rice endosperm.

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来源期刊
Journal of molecular graphics & modelling
Journal of molecular graphics & modelling 生物-计算机:跨学科应用
CiteScore
5.50
自引率
6.90%
发文量
216
审稿时长
35 days
期刊介绍: The Journal of Molecular Graphics and Modelling is devoted to the publication of papers on the uses of computers in theoretical investigations of molecular structure, function, interaction, and design. The scope of the journal includes all aspects of molecular modeling and computational chemistry, including, for instance, the study of molecular shape and properties, molecular simulations, protein and polymer engineering, drug design, materials design, structure-activity and structure-property relationships, database mining, and compound library design. As a primary research journal, JMGM seeks to bring new knowledge to the attention of our readers. As such, submissions to the journal need to not only report results, but must draw conclusions and explore implications of the work presented. Authors are strongly encouraged to bear this in mind when preparing manuscripts. Routine applications of standard modelling approaches, providing only very limited new scientific insight, will not meet our criteria for publication. Reproducibility of reported calculations is an important issue. Wherever possible, we urge authors to enhance their papers with Supplementary Data, for example, in QSAR studies machine-readable versions of molecular datasets or in the development of new force-field parameters versions of the topology and force field parameter files. Routine applications of existing methods that do not lead to genuinely new insight will not be considered.
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