Borodkina Aleksandra V, Shatrova Alla N, Deryabin Pavel I, Griukova Anastasiia A, Abushik Polina A, Antonov Sergei M, Nikolsky Nikolay N, Burova Elena B
Department of Intracellular Signaling and Transport, Institute of Cytology, Russian Academy of Sciences, St. Petersburg, 194064, Russia.
Laboratory of Comparative Neurophysiology, Sechenov Institute of Evolutionary Physiology and Biochemistry, Russian Academy of Sciences, St. Petersburg, 194223, Russia.
Aging (Albany NY). 2016 Dec 8;8(12):3400-3418. doi: 10.18632/aging.101130.
Intracellular calcium ([Ca]) has been reported to play an important role in autophagy, apoptosis and necrosis, however, a little is known about its impact in senescence. Here we investigated [Ca] contribution to oxidative stress-induced senescence of human endometrium-derived stem cells (hMESCs). In hMESCs sublethal HO-treatment resulted in a rapid calcium release from intracellular stores mediated by the activation of PLC/IP3/IP3R pathway. Notably, further senescence development was accompanied by persistently elevated [Ca] levels. In HO-treated hMESCs, [Ca] chelation by BAPTA-AM (BAPTA) was sufficient to prevent the expansion of the senescence phenotype, to decrease endogenous reactive oxygen species levels, to avoid G0/G1 cell cycle arrest, and finally to retain proliferation. Particularly, loading with BAPTA attenuated phosphorylation of the main DNA damage response members, including ATM, 53BP1 and H2A.X and reduced activation of the p53/p21/Rb pathway in HO-stimulated cells. Next, we revealed that BAPTA induced an early onset of AMPK-dependent autophagy in HO-treated cells as confirmed by both the phosphorylation status of AMPK/mTORC1 pathway and the dynamics of the LC3 lipidization. Summarizing the obtained data we can assume that calcium chelation is able to trigger short-term autophagy and to prevent the premature senescence of hMESCs under oxidative stress.
据报道,细胞内钙([Ca])在自噬、凋亡和坏死中发挥重要作用,然而,关于其在衰老中的影响却知之甚少。在此,我们研究了[Ca]对氧化应激诱导的人子宫内膜来源干细胞(hMESCs)衰老的作用。在hMESCs中,亚致死剂量的HO处理导致通过PLC/IP3/IP3R途径的激活介导细胞内钙库快速释放钙。值得注意的是,进一步的衰老发展伴随着[Ca]水平持续升高。在HO处理的hMESCs中,BAPTA-AM(BAPTA)螯合[Ca]足以防止衰老表型的扩展,降低内源性活性氧水平,避免G0/G1细胞周期停滞,并最终维持增殖。特别是,用BAPTA处理减弱了包括ATM、53BP1和H2A.X在内的主要DNA损伤反应成员的磷酸化,并降低了HO刺激细胞中p53/p21/Rb途径的激活。接下来,我们发现BAPTA在HO处理的细胞中诱导了AMPK依赖性自噬的早期发生,这通过AMPK/mTORC1途径的磷酸化状态和LC3脂化动力学得到证实。总结所获得的数据,我们可以假设钙螯合能够触发短期自噬,并防止hMESCs在氧化应激下过早衰老。