Human anti-apoptotic Bcl-2 and Bcl-xL proteins protect yeast cells from aging induced oxidative stress.

Biochimie Pub Date : 2025-02-01 Epub Date: 2024-10-15 DOI:10.1016/j.biochi.2024.10.009
Ayşenur Güler, Berna Kavakcıoğlu Yardımcı, Nihal Şimşek Özek
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Abstract

Aging is a degenerative, biological, and time-dependent process that affects all organisms. Yeast aging is a physiological phenomenon characterized by the progressive transformation of yeast cells, resulting in modifications to their viability and vitality. Aging in yeast cells is comparable to that in higher organisms in some respects; however, due to their straightforward and well-characterized genetic makeup, these cells present unique advantages when it comes to researching the aging process. Here, we assessed the impact of human anti-apoptotic Bcl-2 and Bcl-xL proteins on aging using a yeast model. The findings clearly showed that these proteins exhibited remarkable anti-aging properties in yeast cells. Our data indicate that the presence of both proteins enhanced the reproductive survival of aging cells, likely by effecting the components functioning as both pro- and anti-oxidants, depending on the stage of yeast cell lifespan. Both proteins partially protected yeast cells from aging-related morphological deformations and cellular damage during the aging period. In particular, Bcl-xL expressing yeast cells reached the maximum activity levels for almost all of the major antioxidant enzymes and the total antioxidant status on the 8th day of lifespan and could provide effective protection at the latest stage of the investigated aging period. The chemometric data analysis of IR spectra confirmed the findings of the morphological and biochemical analyses. In this regard, specifically, understanding the mechanism of action on the cellular redox state of Bcl-xL in yeast may facilitate comprehension of its indirect antioxidant function in higher eukaryotes.

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人类抗凋亡蛋白 Bcl-2 和 Bcl-xL 保护酵母细胞免受老化诱导的氧化应激。
衰老是一种影响所有生物的退化性、生物性和时间依赖性过程。酵母衰老是一种生理现象,其特点是酵母细胞逐渐发生转变,导致其活力和生命力发生改变。酵母细胞的衰老在某些方面可与高等生物的衰老相媲美;然而,由于酵母细胞的基因构成简单明了、特征清晰,因此在研究衰老过程方面具有独特的优势。在这里,我们利用酵母模型评估了人类抗凋亡蛋白 Bcl-2 和 Bcl-xL 对衰老的影响。研究结果清楚地表明,这些蛋白在酵母细胞中表现出显著的抗衰老特性。我们的数据表明,这两种蛋白质的存在提高了衰老细胞的繁殖存活率,这可能是通过影响作为促氧化剂和抗氧化剂的成分(取决于酵母细胞的寿命阶段)来实现的。在衰老过程中,两种蛋白都能部分保护酵母细胞免受与衰老相关的形态畸变和细胞损伤。其中,表达 Bcl-xL 的酵母细胞在寿命的第 8 天几乎所有主要抗氧化酶和总抗氧化状态的活性都达到了最高水平,并能在所研究的衰老期的最后期提供有效的保护。红外光谱的化学计量数据分析证实了形态和生化分析的结果。在这方面,了解 Bcl-xL 在酵母中对细胞氧化还原状态的作用机制可能有助于理解其在高等真核生物中的间接抗氧化功能。
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