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Mitochondrial Phospholipid Homeostasis Is Regulated by the i-AAA Protease PaIAP and Affects Organismic Aging

机译:线粒体磷脂稳态受 i-AAA 蛋白酶 PaIAP 调节并影响生物体衰老

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摘要

Mitochondria are ubiquitous organelles of eukaryotic organisms with a number of essential functions, including synthesis of iron-sulfur clusters, amino acids, lipids, and adenosine triphosphate (ATP). During aging of the fungal aging model Podospora anserina, the inner mitochondrial membrane (IMM) undergoes prominent morphological alterations, ultimately resulting in functional impairments. Since phospholipids (PLs) are key components of biological membranes, maintenance of membrane plasticity and integrity via regulation of PL biosynthesis is indispensable. Here, we report results from a lipidomic analysis of isolated mitochondria from P. anserina that revealed an age-related reorganization of the mitochondrial PL profile and the involvement of the i-AAA protease PaIAP in proteolytic regulation of PL metabolism. The absence of PaIAP enhances biosynthesis of characteristic mitochondrial PLs, leads to significant alterations in the acyl composition of the mitochondrial signature PL cardiolipin (CL), and induces mitophagy. These alterations presumably cause the lifespan increase of the PaIap deletion mutant under standard growth conditions. However, PaIAP is required at elevated temperatures and for degradation of superfluous CL synthase PaCRD1 during glycolytic growth. Overall, our study uncovers a prominent role of PaIAP in the regulation of PL homeostasis in order to adapt membrane plasticity to fluctuating environmental conditions as they occur in nature.
机译:线粒体是真核生物中普遍存在的细胞器,具有许多基本功能,包括合成铁硫簇、氨基酸、脂质和三磷酸腺苷 (ATP)。在真菌衰老模型 Podospora anserina 的衰老过程中,线粒体内膜 (IMM) 发生明显的形态变化,最终导致功能障碍。由于磷脂 (PLs) 是生物膜的关键成分,因此通过调节 PL 生物合成来维持膜的可塑性和完整性是必不可少的。在这里,我们报告了对 P. anserina 分离的线粒体进行脂质组学分析的结果,该分析揭示了线粒体 PL 谱的年龄相关重组以及 i-AAA 蛋白酶 PaIAP 参与 PL 代谢的蛋白水解调节。PaIAP 的缺失增强了特征性线粒体 PL 的生物合成,导致线粒体特征 PL 心磷脂 (CL) 的酰基组成发生显着改变,并诱导线粒体自噬。这些改变可能导致 PaIap 缺失突变体在标准生长条件下的寿命增加。然而,在高温下以及糖酵解生长过程中多余 CL 合酶 PaCRD1 的降解需要 PaIAP。总体而言,我们的研究揭示了 PaIAP 在调节 PL 稳态中的突出作用,以便使膜可塑性适应自然界中发生的波动环境条件。

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