Pathophysiological significance of the p.E31G variant in RAC1 responsible for a neurodevelopmental disorder with microcephaly

IF 4.2 2区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY Biochimica et biophysica acta. Molecular basis of disease Pub Date : 2024-09-20 DOI:10.1016/j.bbadis.2024.167520
Masashi Nishikawa , Shin Hayashi , Atsushi Nakayama , Yosuke Nishio , Anna Shiraki , Hidenori Ito , Kouichi Maruyama , Yukako Muramatsu , Tomoo Ogi , Seiji Mizuno , Koh-ichi Nagata
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Abstract

RAC1 encodes a Rho family small GTPase that regulates actin cytoskeletal reorganization and intracellular signaling pathways. Pathogenic RAC1 variants lead to a neurodevelopmental disorder with diverse phenotypic manifestations, including abnormalities in brain size and facial dysmorphism. However, the underlying pathophysiological mechanisms have yet to be elucidated. Here, we present the case of a school-aged male who exhibited global developmental delay, intellectual disability, and acquired microcephaly. Through whole exome sequencing, we identified a novel de novo variant in RAC1, (NM_006908.5): c.92 A > G,p.(E31G). We then examined the pathophysiological significance of the p.E31G variant by focusing on brain development. Biochemical analyses revealed that the recombinant RAC1-E31G had no discernible impact on the intrinsic GDP/GTP exchange activity. However, it exhibited a slight inhibitory effect on GTP hydrolysis. Conversely, it demonstrated a typical response to both a guanine-nucleotide exchange factor and a GTPase-activating protein. In transient expression analyses using COS7 cells, RAC1-E31G exhibited minimal interaction with the downstream effector PAK1, even in its GTP-bound state. Additionally, overexpression of RAC1-E31G was observed to exert a weak inhibitory effect on the differentiation of primary cultured hippocampal neurons. Moreover, in vivo studies employing in utero electroporation revealed that acute expression of RAC1-E31G resulted in impairments in axonal elongation and dendritic arborization in the young adult stage. These findings suggest that the p.E31G variant functions as a dominant-negative version in the PAK1-mediated signaling pathway and is responsible for the clinical features observed in the patient under investigation, namely microcephaly and intellectual disability.
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导致小头畸形神经发育障碍的 RAC1 p.E31G 变异的病理生理学意义。
RAC1 编码一种 Rho 家族小 GTP 酶,可调节肌动蛋白细胞骨架重组和细胞内信号通路。致病性 RAC1 变体会导致神经发育障碍,具有多种表型表现,包括脑部大小异常和面部畸形。然而,其潜在的病理生理机制仍有待阐明。在此,我们介绍了一例表现出全面发育迟缓、智力障碍和获得性小头畸形的学龄男性病例。通过全外显子组测序,我们发现了 RAC1 的一个新变异 (NM_006908.5):c.92 A > G,p.(E31G)。然后,我们以大脑发育为重点,研究了 p.E31G 变异的病理生理学意义。生化分析表明,重组 RAC1-E31G 对内在 GDP/GTP 交换活性没有明显影响。不过,它对 GTP 水解有轻微的抑制作用。相反,它对鸟嘌呤核苷酸交换因子和 GTP 酶激活蛋白都表现出典型的反应。在使用 COS7 细胞进行的瞬时表达分析中,RAC1-E31G 与下游效应物 PAK1 的相互作用微乎其微,即使在 GTP 结合状态下也是如此。此外,还观察到过表达 RAC1-E31G 对原代培养的海马神经元的分化有微弱的抑制作用。此外,采用子宫内电穿孔法进行的体内研究显示,急性表达 RAC1-E31G 会导致幼年期轴突伸长和树突轴化受损。这些研究结果表明,p.E31G变异体在PAK1介导的信号通路中起显性阴性作用,是导致所研究患者出现小头畸形和智力障碍等临床特征的原因。
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来源期刊
CiteScore
12.30
自引率
0.00%
发文量
218
审稿时长
32 days
期刊介绍: BBA Molecular Basis of Disease addresses the biochemistry and molecular genetics of disease processes and models of human disease. This journal covers aspects of aging, cancer, metabolic-, neurological-, and immunological-based disease. Manuscripts focused on using animal models to elucidate biochemical and mechanistic insight in each of these conditions, are particularly encouraged. Manuscripts should emphasize the underlying mechanisms of disease pathways and provide novel contributions to the understanding and/or treatment of these disorders. Highly descriptive and method development submissions may be declined without full review. The submission of uninvited reviews to BBA - Molecular Basis of Disease is strongly discouraged, and any such uninvited review should be accompanied by a coverletter outlining the compelling reasons why the review should be considered.
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