Primary amino acid sequences of decapod (Na+, K+)-ATPase provide evolutionary insights into osmoregulatory mechanisms

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS
Leonardo M. Fabri , Cintya M. Moraes , Daniela P. Garçon , John C. McNamara , Samuel C. Faria , Francisco A. Leone
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引用次数: 0

Abstract

Decapod Crustacea exhibit a marine origin, but many taxa have occupied environments ranging from brackish to fresh water and terrestrial habitats, overcoming their inherent osmotic challenges. Osmotic and ionic regulation is achieved by the gill epithelia, driven by two active ATP-hydrolyzing ion transporters, the basal (Na+, K+)-ATPase and the apical V(H+)-ATPase. The kinetic characteristic of gill (Na+, K+)-ATPase and the mRNA expression of its α subunit have been widely studied in various decapod species under different salinity challenges. However, the evolution of the primary structure has not been explored, especially considering the functional modifications associated with decapod phylogeny. Here, we proposed a model for the topology of the decapod α subunit, identifying the sites and motifs involved in its function and regulation, as well as the patterns of its evolution assuming a decapod phylogeny. We also examined both the amino acid substitutions and their functional implications within the context of biochemical and physiological adaptation. The α-subunit of decapod crustaceans shows greater conservation (∼94% identity) compared to the β-subunit (∼40%). While the binding sites for ATP and modulators are conserved in the decapod enzyme, the residues involved in the α-β interaction are only partially conserved. In the phylogenetic context of the complete sequence of (Na+, K+)-ATPase α-subunit, most substitutions appear to be characteristic of the entire group, with specific changes for different subgroups, especially among brachyuran crabs. Interestingly, there was no consistent separation of α-subunit partial sequences related to habitat, suggesting that the convergent evolution for freshwater or terrestrial modes of life is not correlated with similar changes in the enzyme's primary amino acid sequence.

Abstract Image

十足目动物(Na+、K+)-ATP 酶的初级氨基酸序列为渗透调节机制的进化提供了启示。
十足类甲壳动物起源于海洋,但许多类群已经占据了从咸水到淡水以及陆地栖息地的环境,克服了其固有的渗透性挑战。渗透压和离子调节由鳃上皮实现,由两个活性 ATP水解离子转运体驱动,即基底(Na+、K+)-ATP 酶和顶端 V(H+)-ATP 酶。鳃(Na+、K+)-ATPase的动力学特征及其α亚基的mRNA表达已在不同盐度挑战下的各种十足目动物中得到广泛研究。然而,对其一级结构的演化尚未进行探讨,特别是考虑到与十足目动物系统发育相关的功能变化。在此,我们提出了一个关于十足目α亚基拓扑结构的模型,确定了参与其功能和调控的位点和基团,以及假设十足目系统发育的进化模式。我们还从生化和生理适应的角度研究了氨基酸替代及其功能影响。与 β 亚基(约 40%)相比,十足目甲壳动物的 α 亚基显示出更大的保守性(约 94% 的相同性)。虽然十足类酶中 ATP 和调节剂的结合位点是保守的,但参与 α-β 相互作用的残基只有部分保守。在(Na+, K+)-ATPaseα-亚基完整序列的系统发育背景下,大多数取代似乎是整个类群的特征,不同亚群有特定的变化,特别是在臂形蟹中。有趣的是,α-亚基部分序列与栖息地没有一致的分离,这表明淡水或陆地生活模式的趋同进化与酶的主要氨基酸序列的类似变化无关。
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
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
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