Biological regulatory network analysis for targeting the mitochondrial calcium uniporter (MCU) mediated calcium (Ca2+) transport in neurodegenerative disorders

IF 2.8 3区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY
Umar Amjid, Ubair Aziz, Uzma Habib, Ishrat Jabeen
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引用次数: 0

Abstract

Calcium (Ca2+) has been observed as the most important ion involved in a series of cellular processes and its homeostasis is critical for normal cellular functions. Mitochondrial calcium uniporter (MCU) complex has been recognized as the most important calcium-specific channel located in the inner mitochondrial membrane and is one of the major players in maintaining the Ca2+ homeostasis by transporting Ca2+ across the mitochondrial membrane. Furthermore, dysregulation of the mitochondrial Ca2+ homeostasis has been orchestrated to neurodegenerative response. This necessitates quantitative evaluation of the MCU-dependent mROS production and subsequent cellular responses for more specific therapeutic interventions against neurodegenerative disorders. Towards this goal, here we present a biological regulatory network of MCU to dynamically simulate the MCU-mediated ROS production and its response in neurodegeneration. Previously, ruthenium complex RuRed and its derivatives have been reported to show low nM to high µM potency against MCU to maintain cytosolic Ca2+ (cCa2+) homeostasis by modulating mitochondrial Ca2+ (mCa2+) uptake. Therefore, structural modeling and dynamic simulation of MCU pore-forming subunit is performed to probe the interaction profiling of previously reported Ru265 and its derivatives compounds with MCU. The current study highlighted MCU as a potential drug target in neurodegenerative disorders. Furthermore, ASP261 and GLU264 amino acid residues in DIME motif of MCU pore-forming subunits are identified as crucial for modulating the activity of MCU in neurodegenerative disorders.

针对神经退行性疾病中线粒体钙单运体(MCU)介导的钙(Ca2+)转运的生物调控网络分析。
据观察,钙(Ca2+)是参与一系列细胞过程的最重要离子,其平衡对正常细胞功能至关重要。线粒体钙单通道(MCU)复合物被认为是位于线粒体内膜的最重要的钙特异性通道,是通过线粒体膜运输 Ca2+ 来维持 Ca2+ 平衡的主要角色之一。此外,线粒体 Ca2+ 稳态失调也会导致神经退行性反应。这就需要对依赖于 MCU 的 mROS 生成和随后的细胞反应进行定量评估,以便针对神经退行性疾病采取更具体的治疗干预措施。为了实现这一目标,我们在此提出了一个 MCU 生物调控网络,以动态模拟 MCU 介导的 ROS 生成及其在神经退行性病变中的反应。此前有报道称,钌络合物 RuRed 及其衍生物对 MCU 具有低 nM 到高 µM 的效力,可通过调节线粒体 Ca2+ (mCa2+) 的摄取来维持细胞膜 Ca2+ (cCa2+) 的平衡。因此,我们对 MCU 孔形成亚基进行了结构建模和动态模拟,以探究之前报道的 Ru265 及其衍生物化合物与 MCU 的相互作用谱。本研究强调 MCU 是神经退行性疾病的潜在药物靶点。此外,研究还发现 MCU 孔形成亚基 DIME 矩阵中的 ASP261 和 GLU264 氨基酸残基对调节 MCU 在神经退行性疾病中的活性至关重要。
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来源期刊
Cell Biochemistry and Function
Cell Biochemistry and Function 生物-生化与分子生物学
CiteScore
6.20
自引率
0.00%
发文量
93
审稿时长
6-12 weeks
期刊介绍: Cell Biochemistry and Function publishes original research articles and reviews on the mechanisms whereby molecular and biochemical processes control cellular activity with a particular emphasis on the integration of molecular and cell biology, biochemistry and physiology in the regulation of tissue function in health and disease. The primary remit of the journal is on mammalian biology both in vivo and in vitro but studies of cells in situ are especially encouraged. Observational and pathological studies will be considered providing they include a rational discussion of the possible molecular and biochemical mechanisms behind them and the immediate impact of these observations to our understanding of mammalian biology.
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