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Dysregulation of Nrf2/Keap1 Redox Pathway in Diabetes Affects Multipotency of Stromal Cells

机译:糖尿病中Nrf2 / Keap1氧化还原途径的失调影响基质细胞的多能性。

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摘要

The molecular and cellular level reaches of the metabolic dysregulations that characterize diabetes are yet to be fully discovered. As mechanisms underlying management of reactive oxygen species (ROS) gain interest as crucial factors in cell integrity, questions arise about the role of redox cues in the regulation and maintenance of bone marrow–derived multipotent stromal cells (BMSCs) that contribute to wound healing, particularly in diabetes. Through comparison of BMSCs from wild-type and diabetic mice, with a known redox and metabolic disorder, we found that the cytoprotective nuclear factor erythroid–related factor 2 (Nrf2)/kelch-like erythroid cell–derived protein 1 (Keap1) pathway is dysregulated and functionally insufficient in diabetic BMSCs (dBMSCs). Nrf2 is basally active, but in chronic ROS, we found irregular inhibition of Nrf2 by Keap1, altered metabolism, and limited BMSC multipotency. Forced upregulation of Nrf2-directed transcription, through knockdown of Keap1, restores redox homeostasis. Normalized Nrf2/Keap1 signaling restores multipotent cell properties in dBMSCs through Sox2 expression. These restored BMSCs can resume their role in regenerative tissue repair and promote healing of diabetic wounds. Knowledge of diabetes and hyperglycemia-induced deficits in BMSC regulation, and strategies to reverse them, offers translational promise. Our study establishes Nrf2/Keap1 as a cytoprotective pathway, as well as a metabolic rheostat, that affects cell maintenance and differentiation switches in BMSCs.
机译:尚未完全发现表征糖尿病的代谢异常的分子和细胞水平。随着活性氧(ROS)管理的基本机制成为细胞完整性的关键因素,人们开始关注氧化还原线索在调节和维持骨髓源性多能基质细胞(BMSC)的作用中的作用,这些作用有助于伤口愈合,特别是在糖尿病中。通过比较具有已知氧化还原和代谢异常的野生型和糖尿病小鼠的BMSC,我们发现细胞保护性核因子红系相关因子2(Nrf2)/类海藻样红系细胞衍生蛋白1(Keap1)途径是糖尿病BMSC(dBMSC)的功能失调和功能不足。 Nrf2是基础活性的,但在慢性ROS中,我们发现Keap1对Nrf2的不规则抑制,代谢改变和有限的BMSC多能性。通过敲低Keap1,Nrf2定向转录的强制上调可恢复氧化还原稳态。归一化的Nrf2 / Keap1信号通过Sox2表达恢复dBMSC中的多能细胞特性。这些恢复的骨髓间充质干细胞可以恢复其在再生组织修复中的作用,并促进糖尿病伤口的愈合。糖尿病和高血糖症引起的BMSC调节缺陷的知识以及逆转它们的策略提供了转化前景。我们的研究将Nrf2 / Keap1建立为一种细胞保护途径以及一种代谢变阻器,它影响BMSCs的细胞维持和分化转换。

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