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首页> 外文期刊>Journal of Theoretical Biology >Substitution impact of highly conserved arginine residue at position 75 in GJB1 gene in association with X-linked Charcot–Marie-tooth disease: A computational study
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Substitution impact of highly conserved arginine residue at position 75 in GJB1 gene in association with X-linked Charcot–Marie-tooth disease: A computational study

机译:高度保守精氨酸残基的替代在X型Charcot-Marie-Touth疾病结合结合GJB1基因的替代对GJB1基因的影响:计算研究

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Highlights ? Significance of three highly conserved mutations of GJB1 gene at position 75. ? Investigated using MD simulation analysis. ? The three mutants displayed a lesser protein stability with respect to native. ? Mutants alter the hydrophobicity and hydrophilicity balance of ion channel. Abstract X-linked Charcot-Marie-Tooth type 1 X (CMTX1) disease is a subtype of Charcot-Marie-Tooth (CMT), which is mainly caused by mutations in the GJB1 gene. It is also known as connexin 32 (Cx32) that leads to Schwann cell abnormalities and peripheral neuropathy. CMTX1 is considered as the second most common form of CMT disease. The aim of this study is to computationally predict the potential impact of different single amino acid substitutions at position 75 of Cx32, from arginine (R) to proline (P), glutamine (Q) and tryptophan (W). This position is known to be highly conserved among the family of connexin. To understand the structural and functional changes due to these single amino acid substitutions, we employed a homology-modeling technique to build the three-dimensional structure models for the native and mutant proteins. The protein structures were further embedded into a POPC lipid bilayer, inserted into a water box, and subjected to molecular dynamics simulation for 50?ns. Our results show that the mutants R75P, R75Q and R75W display variable structural conformation and dynamic behavior compared to the native protein. Our data proves useful in predicting the potential pathogenicity of the mutant proteins and is expected to serve as a platform for drug discovery for patients with CMT.
机译:强调 ? 75次高度保守的GJB1基因突变的意义。使用MD仿真分析研究。还三个突变体相对于天然呈现出较小的蛋白质稳定性。还突变体改变离子通道的疏水性和亲水性平衡。摘要X-Linked Charcot-Marie-Tooth型1 x(CMTX1)疾病是Charcot-Marie-tooth(CMT)的亚型,主要由GJB1基因中的突变引起。它也称为Connexin 32(CX32),其导致Schwann细胞异常和周围神经病变。 CMTX1被认为是第二种最常见的CMT疾病形式。本研究的目的是计算从精氨酸(R),脯氨酸(P),谷氨酰胺(Q)和色氨酸(W)的精氨酸(R),计算地预测不同单氨基酸取代在CX32的位置75处的潜在影响。已知该位置在Connexin家族中受到高度保守。为了了解由于这些单一氨基酸取代引起的结构和功能变化,我们采用了一种同源性建模技术来构建原生和突变蛋白的三维结构模型。将蛋白质结构进一步嵌入popc脂质双层中,插入水箱中,并进行分子动力学模拟50μs。我们的结果表明,与天然蛋白相比,突变体R75P,R75Q和R75W显示可变结构构象和动态行为。我们的数据证明可用于预测突变蛋白的潜在致病性,并且预计将作为CMT患者的药物发现平台。

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