Back in time to the Gly-rich prototype of the phosphate binding elementary function

IF 2.7 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY
Zejun Zheng , Alexander Goncearenco , Igor N. Berezovsky
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Abstract

Binding of nucleotides and their derivatives is one of the most ancient elementary functions dating back to the Origin of Life. We review here the works considering one of the key elements in binding of (di)nucleotide-containing ligands – phosphate binding. We start from a brief discussion of major participants, conditions, and events in prebiotic evolution that resulted in the Origin of Life. Tracing back to the basic functions, including metal and phosphate binding, and, potentially, formation of primitive protein-protein interactions, we focus here on the phosphate binding. Critically assessing works on the structural, functional, and evolutionary aspects of phosphate binding, we perform a simple computational experiment reconstructing its most ancient and generic sequence prototype. The profiles of the phosphate binding signatures have been derived in form of position-specific scoring matrices (PSSMs), their peculiarities depending on the type of the ligands have been analyzed, and evolutionary connections between them have been delineated. Then, the apparent prototype that gave rise to all relevant phosphate-binding signatures had also been reconstructed. We show that two major signatures of the phosphate binding that discriminate between the binding of dinucleotide- and nucleotide-containing ligands are GxGxxG and GxxGxG, respectively. It appears that the signature archetypal for dinucleotide-containing ligands is more generic, and it can frequently bind phosphate groups in nucleotide-containing ligands as well. The reconstructed prototype's key signature GxGGxG underlies the role of glycine residues in providing flexibility and interactions necessary for binding the phosphate groups. The prototype also contains other ancient amino acids, valine, and alanine, showing versatility towards evolutionary design and functional diversification.

Abstract Image

回到富含甘氨酸的磷酸盐结合基本功能原型
核苷酸及其衍生物的结合是最古老的基本功能之一,可以追溯到生命的起源。我们在此回顾了研究含(二)核苷酸配体结合的关键要素之一--磷酸盐结合的工作。我们首先简要讨论了导致生命起源的前生物进化的主要参与者、条件和事件。追溯到基本功能,包括金属和磷酸盐结合,以及可能形成的原始蛋白质-蛋白质相互作用,我们在此重点讨论磷酸盐结合。我们对磷酸盐结合的结构、功能和进化方面的研究进行了严格评估,并通过简单的计算实验重建了磷酸盐结合最古老、最通用的序列原型。我们以位置特异性评分矩阵(PSSM)的形式得出了磷酸盐结合特征的轮廓,分析了它们因配体类型而异的特殊性,并勾勒出了它们之间的进化联系。然后,还重建了产生所有相关磷酸盐结合特征的明显原型。我们发现,磷酸盐结合的两个主要特征分别是 GxGxxG 和 GxxGxG,它们可以区分二核苷酸配体和含核苷酸配体的结合。含二核苷酸配体的特征原型似乎更通用,它也能经常与含核苷酸配体中的磷酸基团结合。重建原型的关键特征 GxGGxG 说明了甘氨酸残基在提供结合磷酸基团所需的灵活性和相互作用方面的作用。该原型还包含其他古老的氨基酸、缬氨酸和丙氨酸,显示了进化设计和功能多样化的多功能性。
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来源期刊
CiteScore
4.60
自引率
0.00%
发文量
33
审稿时长
104 days
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