Department of Regenerative and Cancer Cell Biology, Albany Medical College, Albany, New York.
Department of General Surgery, Albany Medical College, Albany, New York.
Am J Physiol Renal Physiol. 2022 Apr 1;322(4):F379-F391. doi: 10.1152/ajprenal.00326.2021. Epub 2022 Jan 31.
Mammalian kidneys consist of more than 30 different types of cells. A challenging task is to identify and characterize the stem/progenitor subpopulations that establish the lineage relationships among these cellular elements during nephrogenesis in the embryonic and neonate kidneys and during tissue homeostasis and/or injury repair in the mature kidney. Moreover, the potential clinical utility of stem/progenitor cells holds promise for the development of new regenerative medicine approaches for the treatment of renal diseases. Stem cells are defined by unlimited self-renewal capacity and pluripotentiality. Progenitor cells have pluripotentiality but no or limited self-renewal potential. Cre-LoxP-based in vivo genetic lineage tracing is a powerful tool to identify stem/progenitor cells in their native environment. Hypothetically, this technique enables investigators to accurately track the progeny of a single cell or a group of cells. The Cre/LoxP system has been widely used to uncover the function of genes in various mammalian tissues and to identify stem/progenitor cells through in vivo lineage tracing analyses. In this review, we summarize the recent advances in the development and characterization of various Cre drivers and their use in identifying potential renal stem/progenitor cells in both developing and mature mouse kidneys.
哺乳动物的肾脏由 30 多种不同类型的细胞组成。一项具有挑战性的任务是鉴定和描述在胚胎和新生儿肾脏的肾发生过程中以及在成熟肾脏的组织稳态和/或损伤修复过程中建立这些细胞成分之间谱系关系的干细胞/祖细胞亚群。此外,干细胞/祖细胞的潜在临床应用为开发新的再生医学方法治疗肾脏疾病提供了希望。干细胞的定义是具有无限自我更新能力和多能性。祖细胞具有多能性,但没有或有限的自我更新潜力。基于 Cre-LoxP 的体内遗传谱系追踪是鉴定其天然环境中的干细胞/祖细胞的有力工具。从理论上讲,这项技术使研究人员能够准确追踪单个细胞或一组细胞的后代。Cre/LoxP 系统已被广泛用于揭示各种哺乳动物组织中基因的功能,并通过体内谱系追踪分析来鉴定干细胞/祖细胞。在这篇综述中,我们总结了最近在开发和表征各种 Cre 驱动子方面的进展,以及它们在鉴定发育中和成熟的小鼠肾脏中潜在的肾干细胞/祖细胞中的应用。