Molecular dynamics simulations shed light into the donor substrate specificity of vertebrate poly-alpha-2,8-sialyltransferases ST8Sia IV

IF 2.8 3区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY Biochimica et biophysica acta. General subjects Pub Date : 2024-05-25 DOI:10.1016/j.bbagen.2024.130647
Roxana Elin Teppa , Sebastian Peter Galuska , Anne Harduin-Lepers
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引用次数: 0

Abstract

Background

Sialic acids are essential monosaccharides influencing several biological processes and disease states. The sialyltransferases catalyze the transfer of Sia residues to glycoconjugates playing critical roles in cellular recognition and signaling. Despite their importance, the molecular mechanisms underlying their substrate specificity, especially between different organisms, remain poorly understood. Recently, the human ST8Sia IV, a key enzyme in the synthesis of polysialic acids, was found to accept only CMP-Neu5Ac as a sugar-donor, whereas the whitefish Coregonus maraena enzyme showed a wider donor substrate specificity, accepting CMP-Neu5Ac, CMP-Neu5Gc, and CMP-Kdn. However, what causes these differences in donor substrate specificity is unknown.

Methods

Computational approaches were used to investigate the structural and biochemical determinants of the donor substrate specificity in ST8Sia IV. Accurate structural models of the human and fish ST8Sia IV catalytic domains and their complexes with three sialic acid donors (CMP-Neu5Ac, CMP-Neu5Gc, and CMP-Kdn) were generated. Subsequently, molecular dynamics simulations were conducted to analyze the stability and interactions within these complexes and identify differences in complex stability and substrate binding sites between the two ST8Sia IV.

Results

Our MD simulations revealed that the human enzyme effectively stabilizes CMP-Neu5Ac, whereas CMP-Neu5Gc and CMP-Kdn are unstable and explore different conformations. In contrast, the fish ST8Sia IV stabilizes all three donor substrates. Based on these data, we identified the key interacting residues for the different Sias parts of the substrate donors.

General significance

This work advances our knowledge of the enzymatic mechanisms governing sialic acid transfer, shedding light on the evolutionary adaptations of sialyltransferases.

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分子动力学模拟揭示了脊椎动物聚α-2,8-糖基转移酶 ST8Sia IV 的供体底物特异性。
背景:硅戊酸是影响多种生物过程和疾病状态的重要单糖。硅烷基转移酶催化 Sia 残基向糖共轭物的转移,在细胞识别和信号传递中发挥着关键作用。尽管硅烷基转移酶非常重要,但人们对其底物特异性的分子机制,尤其是不同生物之间的分子机制仍然知之甚少。最近,研究发现人类 ST8Sia IV 是合成多聚戊酸的关键酶,它只接受 CMP-Neu5Ac 作为糖供体,而白鲑 Coregonus maraena 酶则表现出更广泛的供体底物特异性,可接受 CMP-Neu5Ac、CMP-Neu5Gc 和 CMP-Kdn。然而,供体底物特异性差异的原因尚不清楚:计算方法被用于研究 ST8Sia IV 供体底物特异性的结构和生化决定因素。方法:采用计算方法研究了 ST8Sia IV 供体底物特异性的结构和生化决定因素。生成了人类和鱼类 ST8Sia IV 催化结构域的精确结构模型以及它们与三种硅烷酸供体(CMP-Neu5Ac、CMP-Neu5Gc 和 CMP-Kdn)的复合物。随后,我们进行了分子动力学模拟,以分析这些复合物内部的稳定性和相互作用,并确定两种 ST8Sia IV 之间复合物稳定性和底物结合位点的差异:我们的分子动力学模拟发现,人类酶有效地稳定了CMP-Neu5Ac,而CMP-Neu5Gc和CMP-Kdn则不稳定并探索不同的构象。相比之下,鱼类 ST8Sia IV 能稳定所有三种供体底物。基于这些数据,我们确定了底物供体中不同 Sias 部分的关键相互作用残基:这项工作增进了我们对唾液酸转移的酶学机制的了解,揭示了唾液酸转移酶的进化适应性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Biochimica et biophysica acta. General subjects
Biochimica et biophysica acta. General subjects 生物-生化与分子生物学
CiteScore
6.40
自引率
0.00%
发文量
139
审稿时长
30 days
期刊介绍: BBA General Subjects accepts for submission either original, hypothesis-driven studies or reviews covering subjects in biochemistry and biophysics that are considered to have general interest for a wide audience. Manuscripts with interdisciplinary approaches are especially encouraged.
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