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单细胞 mRNA 谱分析揭示溶质载体表达的变化,并提示斑马鱼前肾发育过程中的代谢转换。

Single-cell mRNA profiling reveals changes in solute carrier expression and suggests a metabolic switch during zebrafish pronephros development.

机构信息

Renal Division, Department of Medicine, Medical Center-University of Freiburg, Faculty of Medicine, University of Freiburg, Germany.

Department of Ophthamology, Faculty of Medicine, University Freiburg Medical Center, University of Freiburg, Freiburg, Germany.

出版信息

Am J Physiol Renal Physiol. 2021 May 1;320(5):F826-F837. doi: 10.1152/ajprenal.00610.2020. Epub 2021 Mar 22.

Abstract

Developing organisms need to adapt to environmental variations as well as to rapid changes in substrate availability and energy demands imposed by fast-growing tissues and organs. Little is known about the adjustments that kidneys undergo in response to these challenges. We performed single-cell RNA sequencing of zebrafish pronephric duct cells to understand how the developing kidney responds to changes in filtered substrates and intrinsic energy requirements. We found high levels of glucose transporters early in development and increased expression of monocarboxylate transporters at later times. This indicates that the zebrafish embryonic kidney displays a high glucose transporting capacity during early development, which is replaced by the ability to absorb monocarboxylates and amino acids at later stages. This change in transport capacity was accompanied by the upregulation of mitochondrial carriers, indicating a switch to increased oxidative phosphorylation to meet the increasing energy demand of a developing kidney. The zebrafish embryonic kidney has high levels of glucose transporters during early development, which are replaced by monocarboxylate and amino acid transporters later on. Inhibition of Na-glucose cotransporter-dependent glucose transport by sotagliflozin also increased expression, supporting the idea that the glucose transport capacity is dynamically adjusted during zebrafish pronephros development. Concurrent upregulation of mitochondrial SCL25 transporters at later stages supports the idea that the pronephros adjusts to changing substrate supplies and/or energy demands during embryonic development.

摘要

发育中的生物体需要适应环境变化,以及快速增长的组织和器官所带来的基质可用性和能量需求的快速变化。对于肾脏如何应对这些挑战所经历的调整,我们知之甚少。我们对斑马鱼原肾管细胞进行了单细胞 RNA 测序,以了解发育中的肾脏如何对过滤基质和内在能量需求的变化做出反应。我们发现在发育早期存在高水平的葡萄糖转运蛋白,而在稍后的时间则表达增加的单羧酸转运蛋白。这表明斑马鱼胚胎肾脏在早期发育过程中表现出高葡萄糖转运能力,随后被吸收单羧酸和氨基酸的能力所取代。这种转运能力的变化伴随着线粒体载体的上调,表明向增加的氧化磷酸化转变以满足不断发展的肾脏的能量需求。斑马鱼胚胎肾脏在早期发育过程中具有高水平的葡萄糖转运蛋白,随后被单羧酸和氨基酸转运蛋白取代。索他格列净抑制 Na-葡萄糖共转运蛋白依赖性葡萄糖转运也增加了表达,支持了葡萄糖转运能力在斑马鱼原肾发育过程中动态调整的观点。在稍后的阶段,线粒体 SCL25 转运蛋白的同时上调支持这样的观点,即原肾在胚胎发育过程中会根据变化的基质供应和/或能量需求进行调整。

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