FOXD1-dependent MICU1 expression regulates mitochondrial activity and cell differentiation.

Shanmughapriya, Santhanam; Tomar, Dhanendra; Dong, Zhiwei; Slovik, Katherine J; Nemani, Neeharika; Natarajaseenivasan, Kalimuthusamy; Carvalho, Edmund; Lu, Christy et al. · Nat Commun · 2018

basic_science · Level V

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Abstract

Although many factors contribute to cellular differentiation, the role of mitochondria Ca<sup>2+</sup> dynamics during development remains unexplored. Because mammalian embryonic epiblasts reside in a hypoxic environment, we intended to understand whether <sub>m</sub>Ca<sup>2+</sup> and its transport machineries are regulated during hypoxia. Tissues from multiple organs of developing mouse embryo evidenced a suppression of MICU1 expression with nominal changes on other MCU complex components. As surrogate models, we here utilized human embryonic stem cells (hESCs)/induced pluripotent stem cells (hiPSCs) and primary neonatal myocytes to delineate the mechanisms that control <sub>m</sub>Ca<sup>2+</sup> and bioenergetics during development. Analysis of MICU1 expression in hESCs/hiPSCs showed low abundance of MICU1 due to its direct repression by Foxd1. Experimentally, restoration of MICU1 established the periodic <sub>c</sub>Ca<sup>2+</sup> oscillations and promoted cellular differentiation and maturation. These findings establish a role of <sub>m</sub>Ca<sup>2+</sup> dynamics in regulation of cellular differentiation and reveal a molecular mechanism underlying this contribution through differential regulation of MICU1.

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