Department of Medicine (DAME), University of Udine, 33100 Udine, Italy.
Biomolecules. 2023 Aug 18;13(8):1265. doi: 10.3390/biom13081265.
Mitochondrial dysfunction plays a pivotal role in numerous complex diseases. Understanding the molecular mechanisms by which the "powerhouse of the cell" turns into the "factory of death" is an exciting yet challenging task that can unveil new therapeutic targets. The mitochondrial matrix protein CyPD is a peptidylprolyl - isomerase involved in the regulation of the permeability transition pore (mPTP). The mPTP is a multi-conductance channel in the inner mitochondrial membrane whose dysregulated opening can ultimately lead to cell death and whose involvement in pathology has been extensively documented over the past few decades. Moreover, several mPTP-independent CyPD interactions have been identified, indicating that CyPD could be involved in the fine regulation of several biochemical pathways. To further enrich the picture, CyPD undergoes several post-translational modifications that regulate both its activity and interaction with its clients. Here, we will dissect what is currently known about CyPD and critically review the most recent literature about its involvement in neurodegenerative disorders, focusing on Alzheimer's Disease and Parkinson's Disease, supporting the notion that CyPD could serve as a promising therapeutic target for the treatment of such conditions. Notably, significant efforts have been made to develop CyPD-specific inhibitors, which hold promise for the treatment of such complex disorders.
线粒体功能障碍在许多复杂疾病中起着关键作用。了解“细胞的动力工厂”如何变成“死亡工厂”的分子机制是一项令人兴奋但具有挑战性的任务,它可以揭示新的治疗靶点。线粒体基质蛋白 CyPD 是一种参与调节通透性转换孔(mPTP)的肽基脯氨酰异构酶。mPTP 是线粒体内膜中的多通道,其不受调节的开放最终可导致细胞死亡,其在过去几十年中的病理参与已得到广泛记录。此外,已经鉴定出几种 mPTP 独立的 CyPD 相互作用,表明 CyPD 可能参与了几个生化途径的精细调节。为了进一步丰富这一图景,CyPD 经历了几种翻译后修饰,这些修饰调节其活性及其与客户的相互作用。在这里,我们将剖析目前已知的 CyPD 情况,并批判性地回顾最近关于其在神经退行性疾病(特别是阿尔茨海默病和帕金森病)中的参与的文献,支持 CyPD 可以作为治疗此类疾病的有前途的治疗靶点的观点。值得注意的是,已经做出了巨大的努力来开发 CyPD 特异性抑制剂,这为治疗这种复杂的疾病提供了希望。
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