肾脏发育概览:肾祖细胞的代谢调节。

2区 生物学 Q1 Biochemistry, Genetics and Molecular Biology
Current Topics in Developmental Biology Pub Date : 2025-01-01 Epub Date: 2024-12-10 DOI:10.1016/bs.ctdb.2024.11.009
K Kurtzeborn, S S El-Dahr, N Pakkasjärvi, G G Tortelote, S Kuure
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引用次数: 0

摘要

肾祖细胞在肾脏发育过程中的异常调节导致先天性肾脏异常和发育不良。近年来,在了解哺乳动物肾脏发育过程中肾祖细胞的代谢需求方面取得了重大进展,有证据表明,多种代谢途径在决定不同肾祖细胞群体的细胞命运中起着重要作用。这篇综述总结了最近的发现,并探讨了将这些新信息整合到当前肾脏疾病的诊断和治疗策略中的前景。各种胚胎肾祖细胞群之间的相互作用为正常肾脏器官发生奠定了基础,肾脏的三种主要结构——肾元、集束管网络和基质——由肾元祖细胞、输尿管芽/集束管祖细胞和间质祖细胞产生。虽然能量代谢在生物体发育、生理功能调节和对环境刺激的反应中具有重要作用,但研究主要集中在肾元祖代谢上,强调其在维持自我更新中的作用。相比之下,对输尿管芽/收集管和间质祖细胞代谢需求的研究仍然有限。鉴于肾脏发育过程中祖细胞群之间相互作用的重要性,进一步研究输尿管芽和基质祖细胞自我更新和分化的代谢调节将是至关重要的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Kidney development at a glance: metabolic regulation of renal progenitor cells.

The aberrant regulation of renal progenitor cells during kidney development leads to congenital kidney anomalies and dysplasia. Recently, significant progress has been made in understanding the metabolic needs of renal progenitor cells during mammalian kidney development, with evidence indicating that multiple metabolic pathways play essential roles in determining the cell fates of distinct renal progenitor populations. This review summarizes recent findings and explores the prospects of integrating this novel information into current diagnostic and treatment strategies for renal diseases. Reciprocal interactions between various embryonic kidney progenitor populations establish the foundation for normal kidney organogenesis, with the three principal kidney structures-the nephrons, the collecting duct network, and the stroma-being generated by nephron progenitor cells, ureteric bud/collecting duct progenitor cells, and interstitial progenitor cells. While energy metabolism is well recognized for its importance in organism development, physiological function regulation, and responses to environmental stimuli, research has primarily focused on nephron progenitor metabolism, highlighting its role in maintaining self-renewal. In contrast, studies on the metabolic requirements of ureteric bud/collecting duct and stromal progenitors remain limited. Given the importance of interactions between progenitor populations during kidney development, further research into the metabolic regulation of self-renewal and differentiation in ureteric bud and stromal progenitor cells will be critical.

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CiteScore
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