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首页> 外文期刊>Journal of Biomolecular Structure and Dynamics >Molecular dynamics simulations show how the FMRP Ile304Asn mutation destabilizes the KH2 domain structure and affects its function
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Molecular dynamics simulations show how the FMRP Ile304Asn mutation destabilizes the KH2 domain structure and affects its function

机译:分子动力学模拟表明FMRP Ile304Asn突变如何破坏KH2结构域结构并影响其功能

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摘要

Mutations or deletions of FMRP, involved in the regulation of mRNA metabolism in brain, lead to the Fragile X syndrome (FXS), the most frequent form of inherited intellectual disability. A severe manifestation of the disease has been associated with the Ile304Asn mutation, located on the KH2 domain of the protein. Several hypotheses have been proposed to explain the possible molecular mechanism responsible for the drastic effect of this mutation in humans. Here, we performed a molecular dynamics simulation and show that the Ile304Asn mutation destabilizes the hydrophobic core producing a partial unfolding of two -helices and a displacement of a third one. The affected regions show increased residue flexibility and motion. Molecular docking analysis revealed strongly reduced binding to a model single-stranded nucleic acid in agreement with known data that the two partially unfolded helices form the RNA-binding surface. The third helix, which we show here to be also affected, is involved in the PAK1 protein interaction. These two functional binding sites on the KH2 domain do not overlap spatially, and therefore, they can simultaneously bind their targets. Since the Ile304Asn mutation affects both binding sites, this may justify the severe clinical manifestation observed in the patient in which both mRNA metabolism activity and cytoskeleton remodeling would be affected.
机译:FMRP的突变或缺失,参与大脑中mRNA代谢的调节,导致脆性X综合征(FXS),这是遗传性智力障碍的最常见形式。该疾病的严重表现与位于蛋白质KH2结构域的Ile304Asn突变有关。已经提出了几种假说来解释造成这种突变对人类产生巨大影响的可能分子机制。在这里,我们进行了分子动力学模拟,表明Ile304Asn突变使疏水核不稳定,从而产生了两个螺旋的部分展开和第三个螺旋的置换。受影响的区域显示出增加的残留物柔韧性和运动性。分子对接分析显示与模型单链核酸的结合大大降低,这与两个部分未折叠的螺旋形成RNA结合表面的已知数据一致。我们在这里显示也受到影响的第三个螺旋与PAK1蛋白相互作用有关。 KH2结构域上的这两个功能结合位点在空间上不重叠,因此,它们可以同时结合其靶标。由于Ile304Asn突变会影响两个结合位点,因此可以证明在患者中观察到的严重临床表现是正确的,在该临床表现中,mRNA代谢活性和细胞骨架重塑均会受到影响。

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