Conformational and dynamic properties of the KH1 domain of FMRP and its fragile X syndrome linked G266E variant

IF 2.5 4区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY Biochimica et biophysica acta. Proteins and proteomics Pub Date : 2024-04-17 DOI:10.1016/j.bbapap.2024.141019
Flavia Catalano , Daniele Santorelli , Alessandra Astegno , Filippo Favretto , Marco D'Abramo , Alessandra Del Giudice , Maria Laura De Sciscio , Francesca Troilo , Giorgio Giardina , Adele Di Matteo , Carlo Travaglini-Allocatelli
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Abstract

The Fragile X messenger ribonucleoprotein (FMRP) is a multi-domain protein involved in interactions with various macromolecules, including proteins and coding/non-coding RNAs. The three KH domains (KH0, KH1 and KH2) within FMRP are recognized for their roles in mRNA binding. In the context of Fragile X syndrome (FXS), over-and-above CGG triplet repeats expansion, three specific point mutations have been identified, each affecting one of the three KH domains (R138QKH0, G266EKH1, and I304NKH2) resulting in the expression of non-functional FMRP. This study aims to elucidate the molecular mechanism underlying the loss of function associated with the G266EKH1 pathological variant. We investigate the conformational and dynamic properties of the isolated KH1 domain and the two KH1 site-directed mutants G266EKH1 and G266AKH1. Employing a combined in vitro and in silico approach, we reveal that the G266EKH1 variant lacks the characteristic features of a folded domain. This observation provides an explanation for functional impairment observed in FMRP carrying the G266E mutation within the KH1 domain, as it renders the domain unable to fold properly. Molecular Dynamics simulations suggest a pivotal role for residue 266 in regulating the structural stability of the KH domains, primarily through stabilizing the α-helices of the domain. Overall, these findings enhance our comprehension of the molecular basis for the dysfunction associated with the G266EKH1 variant in FMRP.

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FMRP的KH1结构域及其与脆性X综合征相关的G266E变体的构象和动态特性
脆性 X 信使核糖核蛋白(FMRP)是一种多结构域蛋白质,参与与各种大分子的相互作用,包括蛋白质和编码/非编码 RNA。FMRP 中的三个 KH 结构域(KH0、KH1 和 KH2)在 mRNA 结合中的作用已得到公认。在脆性 X 综合征(FXS)、CGG 三重重复序列扩增的背景下,发现了三个特定的点突变,每个突变都会影响三个 KH 结构域中的一个(R138QKH0、G266EKH1 和 I304NKH2),从而导致 FMRP 的无功能表达。本研究旨在阐明与 G266EKH1 病理变体相关的功能缺失的分子机制。我们研究了分离的 KH1 结构域以及两个 KH1 位点定向突变体 G266EKH1 和 G266AKH1 的构象和动态特性。我们采用体外和硅学相结合的方法揭示了 G266EKH1 变体缺乏折叠结构域的特征。这一观察结果为在 KH1 结构域内携带 G266E 突变的 FMRP 中观察到的功能损伤提供了解释,因为它使该结构域无法正常折叠。分子动力学模拟表明,残基 266 在调节 KH 结构域的结构稳定性方面起着关键作用,主要是通过稳定结构域的 α-螺旋。总之,这些发现加深了我们对与 FMRP G266EKH1 变体相关的功能障碍的分子基础的理解。
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来源期刊
CiteScore
8.00
自引率
0.00%
发文量
55
审稿时长
33 days
期刊介绍: BBA Proteins and Proteomics covers protein structure conformation and dynamics; protein folding; protein-ligand interactions; enzyme mechanisms, models and kinetics; protein physical properties and spectroscopy; and proteomics and bioinformatics analyses of protein structure, protein function, or protein regulation.
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