Section of Molecular Biology, Division of Biological Sciences, University of California-San Diego, 9500 Gilman Drive, La Jolla, CA 92093, USA.
Antioxid Redox Signal. 2011 Sep 15;15(6):1669-78. doi: 10.1089/ars.2010.3644. Epub 2011 Feb 7.
Mammalian aging is associated with elevated levels of oxidative damage of DNA, proteins, and lipids as a result of unbalanced prooxidant and antioxidant activities. Accumulating evidence indicates that oxidative stress is a major physiological inducer of aging. p53, the guardian of the genome that is important for cellular responses to oxidative stresses, might be a key coordinator of oxidative stress and aging. In response to low levels of oxidative stresses, p53 exhibits antioxidant activities to eliminate oxidative stress and ensure cell survival; in response to high levels of oxidative stresses, p53 exhibits pro-oxidative activities that further increase the levels of stresses, leading to cell death. p53 accomplishes these context-dependent roles by regulating the expression of a panel of genes involved in cellular responses to oxidative stresses and by modulating other pathways important for oxidative stress responses. The mechanism that switches p53 function from antioxidant to prooxidant remains unclear, but could account for the findings that increased p53 activities have been linked to both accelerated aging and increased life span in mice. Therefore, a balance of p53 antioxidant and prooxidant activities in response to oxidative stresses could be important for longevity by suppressing the accumulation of oxidative stresses and DNA damage.
哺乳动物的衰老与 DNA、蛋白质和脂质的氧化损伤水平升高有关,这是由于促氧化剂和抗氧化剂活性失衡所致。越来越多的证据表明,氧化应激是衰老的主要生理诱因。p53 是基因组的守护者,对细胞应对氧化应激至关重要,它可能是氧化应激和衰老的关键协调者。p53 对低水平的氧化应激表现出抗氧化活性,以消除氧化应激并确保细胞存活;对高水平的氧化应激表现出促氧化活性,进一步增加应激水平,导致细胞死亡。p53 通过调节涉及细胞对氧化应激反应的基因表达和调节其他对氧化应激反应重要的途径来完成这些依赖于背景的作用。将 p53 功能从抗氧化剂切换为促氧化剂的机制尚不清楚,但可以解释以下发现:增加 p53 活性与小鼠的加速衰老和寿命延长有关。因此,p53 抗氧化和促氧化活性在应对氧化应激时的平衡可能通过抑制氧化应激和 DNA 损伤的积累对长寿很重要。