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可溶性腺苷酸环化酶协调海洋动物钙化细胞内的pH稳态和生物矿化。

Soluble adenylyl cyclase coordinates intracellular pH homeostasis and biomineralization in calcifying cells of a marine animal.

作者信息

Chang William Weijen, Thies Angus B, Tresguerres Martin, Hu Marian Y

机构信息

Institute of Physiology, Christian-Albrechts-Universität zu Kiel, Kiel, Germany.

Scripps Institution of Oceanography, University of California San Diego, California, United States.

出版信息

Am J Physiol Cell Physiol. 2023 Mar 1;324(3):C777-C786. doi: 10.1152/ajpcell.00524.2022. Epub 2023 Feb 13.

DOI:10.1152/ajpcell.00524.2022
PMID:36779665
Abstract

Biomineralizing cells concentrate dissolved inorganic carbon (DIC) and remove protons from the site of mineral precipitation. However, the molecular regulatory mechanisms that orchestrate pH homeostasis and biomineralization of calcifying cells are poorly understood. Here, we report that the acid-base sensing enzyme soluble adenylyl cyclase (sAC) coordinates intracellular pH (pH) regulation in the calcifying primary mesenchyme cells (PMCs) of sea urchin larvae. Single-cell transcriptomics, in situ hybridization, and immunocytochemistry elucidated the spatiotemporal expression of sAC during skeletogenesis. Live pH imaging of PMCs revealed that the downregulation of sAC activity with two structurally unrelated small molecules inhibited pH regulation of PMCs, an effect that was rescued by the addition of cell-permeable cAMP. Pharmacological sAC inhibition also significantly reduced normal spicule growth and spicule regeneration, establishing a link between PMC pH regulation and biomineralization. Finally, increased expression of sAC mRNA was detected during skeleton remineralization and exposure to CO-induced acidification. These findings suggest that transcriptional regulation of sAC is required to promote remineralization and to compensate for acidic stress. This work highlights the central role of sAC in coordinating acid-base regulation and biomineralization in calcifying cells of a marine animal.

摘要

生物矿化细胞会浓缩溶解的无机碳(DIC),并从矿物沉淀部位去除质子。然而,协调钙化细胞pH稳态和生物矿化的分子调控机制仍知之甚少。在此,我们报告酸碱感应酶可溶性腺苷酸环化酶(sAC)在海胆幼虫钙化的初级间充质细胞(PMC)中协调细胞内pH调节。单细胞转录组学、原位杂交和免疫细胞化学阐明了sAC在骨骼形成过程中的时空表达。PMC的实时pH成像显示,用两种结构不相关的小分子下调sAC活性会抑制PMC的pH调节,添加可渗透细胞的cAMP可挽救这种效应。药理学上对sAC的抑制也显著降低了正常骨针生长和骨针再生,建立了PMC pH调节与生物矿化之间的联系。最后,在骨骼再矿化和暴露于CO诱导的酸化过程中检测到sAC mRNA表达增加。这些发现表明,sAC的转录调控对于促进再矿化和补偿酸性应激是必需的。这项工作突出了sAC在协调海洋动物钙化细胞中的酸碱调节和生物矿化方面的核心作用。

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