Department of Biological Sciences, Wayne State University, Detroit, MI, United States.
Department of Environmental and Occupational Health, University of Pittsburgh, Pittsburgh, PA, United States.
Biochim Biophys Acta Mol Cell Biol Lipids. 2018 Oct;1863(10):1354-1368. doi: 10.1016/j.bbalip.2018.06.016. Epub 2018 Jun 20.
Cardiolipin (CL) is a unique phospholipid localized almost exclusively within the mitochondrial membranes where it is synthesized. Newly synthesized CL undergoes acyl remodeling to produce CL species enriched with unsaturated acyl groups. Cld1 is the only identified CL-specific phospholipase in yeast and is required to initiate the CL remodeling pathway. In higher eukaryotes, peroxidation of CL, yielding CL, has been implicated in the cellular signaling events that initiate apoptosis. CL can undergo enzymatic hydrolysis, resulting in the release of lipid mediators with signaling properties. Our previous findings suggested that CLD1 expression is upregulated in response to oxidative stress, and that one of the physiological roles of CL remodeling is to remove peroxidized CL. To exploit the powerful yeast model to study functions of CLD1 in CL peroxidation, we expressed the H. brasiliensis Δ-desaturase gene in yeast, which then synthesized poly unsaturated fatty acids(PUFAs) that are incorporated into CL species. Using LC-MS based redox phospholipidomics, we identified and quantified the molecular species of CL and other phospholipids in cld1Δ vs. WT cells. Loss of CLD1 led to a dramatic decrease in chronological lifespan, mitochondrial membrane potential, and respiratory capacity; it also resulted in increased levels of mono-hydroperoxy-CLs, particularly among the highly unsaturated CL species, including tetralinoleoyl-CL. In addition, purified Cld1 exhibited a higher affinity for CL, and treatment of cells with HO increased CLD1 expression in the logarithmic growth phase. These data suggest that CLD1 expression is required to mitigate oxidative stress. The findings from this study contribute to our overall understanding of CL remodeling and its role in mitigating oxidative stress.
心磷脂(CL)是一种独特的磷脂,几乎只存在于线粒体膜中,在那里合成。新合成的 CL 经历酰基重塑,产生富含不饱和酰基的 CL 物种。Cld1 是酵母中唯一被鉴定的 CL 特异性磷脂酶,是启动 CL 重塑途径所必需的。在高等真核生物中,CL 的过氧化作用产生 CL,已被牵连到启动细胞凋亡的细胞信号事件中。CL 可以经历酶水解,导致具有信号特性的脂质介质的释放。我们之前的研究结果表明,CLD1 的表达在氧化应激下上调,CL 重塑的生理作用之一是去除过氧化 CL。为了利用强大的酵母模型研究 CLD1 在 CL 过氧化中的功能,我们在酵母中表达了 H. brasiliensis Δ-去饱和酶基因,然后合成了多不饱和脂肪酸(PUFAs),这些脂肪酸被掺入到 CL 物种中。使用基于 LC-MS 的氧化还原磷脂组学,我们鉴定和定量了 cld1Δ 与 WT 细胞中 CL 和其他磷脂的分子种类。CLD1 的缺失导致酵母的chronological lifespan、线粒体膜电位和呼吸能力显著下降;还导致单过氧酰基 CL 的水平增加,特别是在高度不饱和的 CL 物种中,包括四油酰基-CL。此外,纯化的 Cld1 对 CL 表现出更高的亲和力,并且 HO 处理增加了对数生长期细胞中 CLD1 的表达。这些数据表明 CLD1 的表达是减轻氧化应激所必需的。这项研究的结果有助于我们全面了解 CL 重塑及其在减轻氧化应激中的作用。