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脊髓性肌萎缩症决定基因产物Smn与hnRNP-R和gry-rbp/hnRNP-Q的特异性相互作用:Smn在运动轴突RNA加工中的作用?

Specific interaction of Smn, the spinal muscular atrophy determining gene product, with hnRNP-R and gry-rbp/hnRNP-Q: a role for Smn in RNA processing in motor axons?

作者信息

Rossoll Wilfried, Kröning Ann-Kathrin, Ohndorf Uta-Maria, Steegborn Clemens, Jablonka Sibylle, Sendtner Michael

机构信息

Institut für Klinische Neurobiologie, Department of Neurology, University of Würzburg, Josef-Schneider Strasse 11, D-97080 Würzburg, Germany.

出版信息

Hum Mol Genet. 2002 Jan 1;11(1):93-105. doi: 10.1093/hmg/11.1.93.

DOI:10.1093/hmg/11.1.93
PMID:11773003
Abstract

Spinal muscular atrophy (SMA), the most common hereditary motor neuron disease in children and young adults is caused by mutations in the telomeric survival motor neuron (SMN1) gene. The human genome, in contrast to mouse, contains a second SMN gene (SMN2) which codes for a gene product which is alternatively spliced at the C-terminus, but also gives rise to low levels of full-length SMN protein. The reason why reduced levels of the ubiquitously expressed SMN protein lead to specific motor neuron degeneration without affecting other cell types is still not understood. Using yeast two-hybrid techniques, we identified hnRNP-R and the highly related gry-rbp/hnRNP-Q as novel SMN interaction partners. These proteins have previously been identified in the context of RNA processing, in particular mRNA editing, transport and splicing. hnRNP-R and gry-rbp/hnRNP-Q interact with wild-type Smn but not with truncated or mutant Smn forms identified in SMA. Both proteins are widely expressed and developmentally regulated with expression peaking at E19 in mouse spinal cord. hnRNP-R binds RNA through its RNA recognition motif domains. Interestingly, hnRNP-R is predominantly located in axons of motor neurons and co-localizes with Smn in this cellular compartment. Thus, this finding could provide a key to understand a motor neuron-specific Smn function in SMA.

摘要

脊髓性肌萎缩症(SMA)是儿童和青年中最常见的遗传性运动神经元疾病,由端粒生存运动神经元(SMN1)基因突变引起。与小鼠不同,人类基因组包含第二个SMN基因(SMN2),该基因编码一种在C末端进行可变剪接的基因产物,但也会产生低水平的全长SMN蛋白。普遍表达的SMN蛋白水平降低为何会导致特定的运动神经元变性而不影响其他细胞类型,目前仍不清楚。利用酵母双杂交技术,我们鉴定出hnRNP-R和高度相关的gry-rbp/hnRNP-Q为新的SMN相互作用伙伴。这些蛋白质先前已在RNA加工的背景下被鉴定出来,特别是mRNA编辑、运输和剪接。hnRNP-R和gry-rbp/hnRNP-Q与野生型Smn相互作用,但不与SMA中鉴定出的截短或突变Smn形式相互作用。这两种蛋白质均广泛表达,并受到发育调控,在小鼠脊髓中E19时表达达到峰值。hnRNP-R通过其RNA识别基序结构域结合RNA。有趣的是,hnRNP-R主要位于运动神经元的轴突中,并与Smn在这个细胞区室中共定位。因此,这一发现可能为理解SMA中运动神经元特异性Smn功能提供关键线索。

相似文献

1
Specific interaction of Smn, the spinal muscular atrophy determining gene product, with hnRNP-R and gry-rbp/hnRNP-Q: a role for Smn in RNA processing in motor axons?脊髓性肌萎缩症决定基因产物Smn与hnRNP-R和gry-rbp/hnRNP-Q的特异性相互作用:Smn在运动轴突RNA加工中的作用?
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2
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The RNA binding protein hnRNP Q modulates the utilization of exon 7 in the survival motor neuron 2 (SMN2) gene.RNA结合蛋白hnRNP Q调节生存运动神经元2(SMN2)基因中外显子7的利用。
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Smn, the spinal muscular atrophy-determining gene product, modulates axon growth and localization of beta-actin mRNA in growth cones of motoneurons.生存运动神经元蛋白(Smn)是脊髓性肌萎缩症的决定性基因产物,可调节运动神经元生长锥中轴突的生长以及β-肌动蛋白信使核糖核酸(β-actin mRNA)的定位。
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SMN interacts with a novel family of hnRNP and spliceosomal proteins.运动神经元存活蛋白(SMN)与一个新的异质性核糖核蛋白(hnRNP)和剪接体蛋白家族相互作用。
EMBO J. 2001 Oct 1;20(19):5443-52. doi: 10.1093/emboj/20.19.5443.
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Molecular and functional analysis of intragenic SMN1 mutations in patients with spinal muscular atrophy.脊髓性肌萎缩症患者基因内SMN1突变的分子与功能分析
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The human centromeric survival motor neuron gene (SMN2) rescues embryonic lethality in Smn(-/-) mice and results in a mouse with spinal muscular atrophy.人类着丝粒生存运动神经元基因(SMN2)可挽救Smn(-/-)小鼠的胚胎致死性,并导致小鼠患脊髓性肌萎缩症。
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A transgene carrying an A2G missense mutation in the SMN gene modulates phenotypic severity in mice with severe (type I) spinal muscular atrophy.携带SMN基因A2G错义突变的转基因可调节严重(I型)脊髓性肌萎缩症小鼠的表型严重程度。
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Loss of synaptic Munc13-1 underlies neurotransmission abnormalities in spinal muscular atrophy.突触Munc13-1的缺失是脊髓性肌萎缩症神经传递异常的基础。
Cell Mol Life Sci. 2025 Aug 29;82(1):325. doi: 10.1007/s00018-025-05859-7.
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An evolutionarily conserved tryptophan cage promotes folding of the extended RNA recognition motif in the hnRNPR-like protein family.
一种进化上保守的色氨酸笼促进了hnRNPR样蛋白家族中延伸的RNA识别基序的折叠。
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Ptbp2 re-expression rescues axon growth defects in Smn-deficient motoneurons.Ptbp2基因的重新表达可挽救运动神经元中因生存运动神经元蛋白(SMN)缺陷而导致的轴突生长缺陷。
Front Mol Neurosci. 2024 Aug 23;17:1393779. doi: 10.3389/fnmol.2024.1393779. eCollection 2024.
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hnRNP R promotes O-GlcNAcylation of eIF4G and facilitates axonal protein synthesis.hnRNP R 促进 eIF4G 的 O-GlcNAc 化,促进轴突蛋白合成。
Nat Commun. 2024 Aug 28;15(1):7430. doi: 10.1038/s41467-024-51678-y.
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SMN post-translational modifications in spinal muscular atrophy.脊髓性肌萎缩症中生存运动神经元的翻译后修饰
Front Cell Neurosci. 2023 Feb 17;17:1092488. doi: 10.3389/fncel.2023.1092488. eCollection 2023.
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The SMN Complex at the Crossroad between RNA Metabolism and Neurodegeneration.SMN 复合物位于 RNA 代谢与神经退行性变的交汇点。
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Plastin 3 rescues cell surface translocation and activation of TrkB in spinal muscular atrophy.Plastin 3 可挽救脊髓性肌萎缩症中细胞表面 TrkB 的易位和激活。
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SMN Is Physiologically Downregulated at Wild-Type Motor Nerve Terminals but Aggregates Together with Neurofilaments in SMA Mouse Models.SMN 在野生型运动神经末梢中生理下调,但在 SMA 小鼠模型中与神经丝聚集在一起。
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