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组织非特异性碱性磷酸酶在碱性磷酸酶超家族中的结构与功能整合:进化见解与功能意义

Structural and Functional Integration of Tissue-Nonspecific Alkaline Phosphatase Within the Alkaline Phosphatase Superfamily: Evolutionary Insights and Functional Implications.

作者信息

Imam Iliass, Rautureau Gilles Jean Philippe, Violot Sébastien, Drevet Mulard Eva, Magne David, Ballut Lionel

机构信息

Molecular Microbiology and Structural Biochemistry, UMR 5086, CNRS, University Lyon, F-69367 Lyon, France.

Institute of Chemistry and Biochemistry (ICBMS), UMR 5246, CNRS, University Lyon, F-69622 Villeurbanne, France.

出版信息

Metabolites. 2024 Nov 25;14(12):659. doi: 10.3390/metabo14120659.

Abstract

Phosphatases are enzymes that catalyze the hydrolysis of phosphate esters. They play critical roles in diverse biological processes such as extracellular nucleotide homeostasis, transport of molecules across membranes, intracellular signaling pathways, or vertebrate mineralization. Among them, tissue-nonspecific alkaline phosphatase (TNAP) is today increasingly studied, due to its ubiquitous expression and its ability to dephosphorylate a very broad range of substrates and participate in several different biological functions. For instance, TNAP hydrolyzes inorganic pyrophosphate (PP) to allow skeletal and dental mineralization. Additionally, TNAP hydrolyzes pyridoxal phosphate to allow cellular pyridoxal uptake, and stimulate vitamin B6-dependent reactions. Furthermore, TNAP has been identified as a key enzyme in non-shivering adaptive thermogenesis, by dephosphorylating phosphocreatine in the mitochondrial creatine futile cycle. This latter recent discovery and others suggest that the list of substrates and functions of TNAP may be much longer than previously thought. In the present review, we sought to examine TNAP within the alkaline phosphatase (AP) superfamily, comparing its sequence, structure, and evolutionary trajectory. The AP superfamily, characterized by a conserved central folding motif of a mixed beta-sheet flanked by alpha-helices, includes six subfamilies: AP, arylsulfatases (ARS), ectonucleotide pyrophosphatases/phosphodiesterases (ENPP), phosphoglycerate mutases (PGM), phosphonoacetate hydrolases, and phosphopentomutases. Interestingly, TNAP and several ENPP family members appear to participate in the same metabolic pathways and functions. For instance, extra-skeletal mineralization in vertebrates is inhibited by ENPP1-mediated ATP hydrolysis into the mineralization inhibitor PP, which is hydrolyzed by TNAP expressed in the skeleton. Better understanding how TNAP and other AP family members differ structurally will be very useful to clarify their complementary functions. Structurally, TNAP shares the conserved catalytic core with other AP superfamily members but has unique features affecting substrate specificity and activity. The review also aims to highlight the importance of oligomerization in enzyme stability and function, and the role of conserved metal ion coordination, particularly magnesium, in APs. By exploring the structural and functional diversity within the AP superfamily, and discussing to which extent its members exert redundant, complementary, or specific functions, this review illuminates the evolutionary pressures shaping these enzymes and their broad physiological roles, offering insights into TNAP's multifunctionality and its implications for health and disease.

摘要

磷酸酶是催化磷酸酯水解的酶。它们在多种生物过程中发挥关键作用,如细胞外核苷酸稳态、分子跨膜运输、细胞内信号通路或脊椎动物矿化。其中,组织非特异性碱性磷酸酶(TNAP)因其广泛表达以及能够使多种底物去磷酸化并参与多种不同生物学功能的能力,如今受到越来越多的研究。例如,TNAP水解无机焦磷酸(PPi)以促进骨骼和牙齿矿化。此外,TNAP水解磷酸吡哆醛以促进细胞摄取磷酸吡哆醛,并刺激维生素B6依赖性反应。此外,通过使线粒体肌酸无效循环中的磷酸肌酸去磷酸化,TNAP已被确定为非颤抖适应性产热中的关键酶。这一最新发现以及其他发现表明,TNAP的底物和功能列表可能比以前认为的要长得多。在本综述中,我们试图在碱性磷酸酶(AP)超家族中研究TNAP,比较其序列、结构和进化轨迹。AP超家族以由α螺旋侧翼的混合β折叠的保守中央折叠基序为特征,包括六个亚家族:AP、芳基硫酸酯酶(ARS)、胞外核苷酸焦磷酸酶/磷酸二酯酶(ENPP)、磷酸甘油酸变位酶(PGM)、膦酰乙酸水解酶和磷酸戊糖变位酶。有趣的是,TNAP和几个ENPP家族成员似乎参与相同的代谢途径和功能。例如,脊椎动物的骨骼外矿化受到ENPP1介导的ATP水解为矿化抑制剂PPi的抑制,而PPi由骨骼中表达的TNAP水解。更好地了解TNAP和其他AP家族成员在结构上的差异将非常有助于阐明它们的互补功能。在结构上,TNAP与其他AP超家族成员共享保守的催化核心,但具有影响底物特异性和活性的独特特征。本综述还旨在强调寡聚化在酶稳定性和功能中的重要性,以及保守的金属离子配位,特别是镁,在AP中的作用。通过探索AP超家族内的结构和功能多样性,并讨论其成员在多大程度上发挥冗余、互补或特定功能,本综述阐明了塑造这些酶的进化压力及其广泛的生理作用,为TNAP的多功能性及其对健康和疾病的影响提供了见解。

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