Anwar Abuelrub, Ismail Erol, Nurdeniz Nalbant Bingol, Sebnem Ozemri Sag, Sehime G Temel, Serdar Durdağı
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In addition to the GLU518LYS mutation, we conducted a comprehensive analysis of other predefined missense mutations (i.e., PRO192LEU, GLN506ARG, PRO532LEU, GLY781VAL, and GLY781GLU) found within the <i>CC2D1A</i>. Utilizing all-atom molecular dynamics (MD) simulations and neighborhood interaction analyses, we delve into the impact of these mutations on protein structure and function at an atomic level, aiming to shed light on their contribution to the pathogenesis of related diseases. The results suggest that GLU518LYS, GLY781VAL, and GLY781GLU mutations did not significantly alter overall global protein structure compared to the wild type, while PRO192LEU, GLN506ARG, and PRO532LEU exhibited slightly higher protein root-mean-square deviation (RMSD) values, which may indicate potential impacts on whole protein stability. 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引用次数: 0
摘要
CC2D1A与一系列疾病有关,包括自闭症谱系障碍、智力残疾、癫痫、常染色体隐性非综合征性智力残疾、异位和纤毛功能障碍。为了了解这些情况的分子机制,我们专注于该基因突变的结构和动态活动后果。在这项研究中,全外显子组测序在一名18岁男性的CC2D1A中发现了c.1552G > A (GLU518LYS)错义突变,将其与智力残疾和自闭症联系起来。除了GLU518LYS突变外,我们还对CC2D1A中发现的其他预定义错义突变(即PRO192LEU、GLN506ARG、PRO532LEU、GLY781VAL和GLY781GLU)进行了全面分析。利用全原子分子动力学(MD)模拟和邻域相互作用分析,我们深入研究了这些突变在原子水平上对蛋白质结构和功能的影响,旨在揭示它们对相关疾病发病机制的贡献。结果表明,与野生型相比,gl518lys、GLY781VAL和GLY781GLU突变对整体蛋白质结构的影响不显著,而PRO192LEU、GLN506ARG和PRO532LEU的蛋白质均方根偏差(RMSD)值略高,这可能对整个蛋白质的稳定性产生潜在影响。此外,邻域相互作用分析表明,ASP85作为与GLU518LYS突变特异性相关的唯一相互作用伙伴出现,而与突变形式的ASP85相互作用的LYS75在野生型中不存在。这种改变表明突变位点的局部相互作用网络发生了重要的重新配置。
Computational Analysis of CC2D1A Missense Mutations: Insight into Protein Structure and Interaction Dynamics.
CC2D1A is implicated in a range of conditions, including autism spectrum disorder, intellectual disability, seizures, autosomal recessive nonsyndromic intellectual disability, heterotaxy, and ciliary dysfunction. In order to understand the molecular mechanisms underlying these conditions, we focused on the structural and dynamic activity consequences of mutations within this gene. In this study, whole exome sequencing identified the c.1552G > A (GLU518LYS) missense mutation in the CC2D1A in an 18-year-old male, linking it to intellectual disability and autism. In addition to the GLU518LYS mutation, we conducted a comprehensive analysis of other predefined missense mutations (i.e., PRO192LEU, GLN506ARG, PRO532LEU, GLY781VAL, and GLY781GLU) found within the CC2D1A. Utilizing all-atom molecular dynamics (MD) simulations and neighborhood interaction analyses, we delve into the impact of these mutations on protein structure and function at an atomic level, aiming to shed light on their contribution to the pathogenesis of related diseases. The results suggest that GLU518LYS, GLY781VAL, and GLY781GLU mutations did not significantly alter overall global protein structure compared to the wild type, while PRO192LEU, GLN506ARG, and PRO532LEU exhibited slightly higher protein root-mean-square deviation (RMSD) values, which may indicate potential impacts on whole protein stability. Moreover, neighborhood interaction analysis indicated that ASP85 emerges as a unique interaction partner specifically associated with the GLU518LYS mutation, whereas LYS75, which interacts with the ASP85 in the mutated form, is absent in the wild type. This alteration signifies a crucial reconfiguration in the local interaction network at the site of the mutation.
期刊介绍:
ACS Chemical Neuroscience publishes high-quality research articles and reviews that showcase chemical, quantitative biological, biophysical and bioengineering approaches to the understanding of the nervous system and to the development of new treatments for neurological disorders. Research in the journal focuses on aspects of chemical neurobiology and bio-neurochemistry such as the following:
Neurotransmitters and receptors
Neuropharmaceuticals and therapeutics
Neural development—Plasticity, and degeneration
Chemical, physical, and computational methods in neuroscience
Neuronal diseases—basis, detection, and treatment
Mechanism of aging, learning, memory and behavior
Pain and sensory processing
Neurotoxins
Neuroscience-inspired bioengineering
Development of methods in chemical neurobiology
Neuroimaging agents and technologies
Animal models for central nervous system diseases
Behavioral research