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FoxO3a 通过调节 ROS 介导的细胞周期抑制心脏微血管内皮细胞衰老。

FoxO3a suppresses the senescence of cardiac microvascular endothelial cells by regulating the ROS-mediated cell cycle.

机构信息

Key Laboratory for Regenerative Medicine of Ministry of Education and Department of Developmental & Regenerative Biology, Ji Nan University, Guangzhou 510632, China.

Key Laboratory for Regenerative Medicine of Ministry of Education and Department of Developmental & Regenerative Biology, Ji Nan University, Guangzhou 510632, China.

出版信息

J Mol Cell Cardiol. 2015 Apr;81:114-26. doi: 10.1016/j.yjmcc.2015.01.022. Epub 2015 Feb 2.

Abstract

FoxO3a plays an important role in the aging process and decreases with age. However, the potential regulatory roles of FoxO3a in processes involved in cardiac microvascular endothelial cell (CMEC) senescence, and its underlying molecular mechanisms have not been elucidated. This study demonstrates that FoxO3a is deactivated in senescent CMECs together with the inhibition of proliferation and tube formation. Furthermore, the activation of the antioxidant enzymes catalase and SOD, downstream FoxO3a targets, was significantly decreased, thereby leading to cell cycle arrest in G1-phase by increased ROS generation and subsequently the activation of the p27(Kip1) pathway. However, FoxO3a overexpression in primary low-passage CMECs not only significantly suppressed the senescence process by increasing the activation of catalase and SOD but also markedly inhibited ROS generation and p27(Kip1) activation, although it failed to reverse cellular senescence. Moreover, both cell viability and tube formation were greatly increased by FoxO3a overexpression in primary CMECs during continuous passage. In addition, FoxO3a, deficiency in low-passage CMECs, accelerated the senescence process. Collectively, our data suggest that FoxO3a suppresses the senescence process in CMECs by regulating the antioxidant/ROS/p27(Kip1) pathways, although it fails to reverse the cellular senescent phenotype.

摘要

FoxO3a 在衰老过程中发挥重要作用,并随着年龄的增长而减少。然而,FoxO3a 在心脏微血管内皮细胞(CMEC)衰老过程中所涉及的潜在调节作用及其潜在的分子机制尚未阐明。本研究表明,FoxO3a 在衰老的 CMEC 中失活,同时伴随着增殖和管形成的抑制。此外,FoxO3a 的下游抗氧化酶过氧化氢酶和 SOD 的活性显著降低,导致 ROS 生成增加和细胞周期停滞在 G1 期,从而激活 p27(Kip1)途径。然而,FoxO3a 在原代低传代 CMEC 中的过表达不仅通过增加过氧化氢酶和 SOD 的激活显著抑制衰老过程,而且显著抑制 ROS 生成和 p27(Kip1)的激活,尽管它未能逆转细胞衰老。此外,FoxO3a 的过表达在原代 CMEC 中的连续传代过程中大大增加了细胞活力和管形成。此外,FoxO3a 在低传代 CMEC 中的缺失加速了衰老过程。总之,我们的数据表明,FoxO3a 通过调节抗氧化/ROS/p27(Kip1)途径抑制 CMECs 的衰老过程,尽管它未能逆转细胞衰老表型。

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