A centronuclear myopathy-causing mutation in dynamin-2 disrupts neuronal morphology and excitatory synaptic transmission in a murine model of the disease.

IF 4 2区 医学 Q1 CLINICAL NEUROLOGY
Jorge Arriagada-Diaz, Carolina Flores-Muñoz, Bárbara Gómez-Soto, Marjorie Labraña-Allende, Michelle Mattar-Araos, Lorena Prado-Vega, Fernando Hinostroza, Ivana Gajardo, María José Guerra-Fernández, Jorge A Bevilacqua, Ana M Cárdenas, Marc Bitoun, Alvaro O Ardiles, Arlek M Gonzalez-Jamett
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Abstract

Aims: Dynamin-2 is a large GTPase, a member of the dynamin superfamily that regulates membrane remodelling and cytoskeleton dynamics. Mutations in the dynamin-2 gene (DNM2) cause autosomal dominant centronuclear myopathy (CNM), a congenital neuromuscular disorder characterised by progressive weakness and atrophy of the skeletal muscles. Cognitive defects have been reported in some DNM2-linked CNM patients suggesting that these mutations can also affect the central nervous system (CNS). Here we studied how a dynamin-2 CNM-causing mutation influences the CNS function.

Methods: Heterozygous mice harbouring the p.R465W mutation in the dynamin-2 gene (HTZ), the most common causing autosomal dominant CNM, were used as disease model. We evaluated dendritic arborisation and spine density in hippocampal cultured neurons, analysed excitatory synaptic transmission by electrophysiological field recordings in hippocampal slices, and evaluated cognitive function by performing behavioural tests.

Results: HTZ hippocampal neurons exhibited reduced dendritic arborisation and lower spine density than WT neurons, which was reversed by transfecting an interference RNA against the dynamin-2 mutant allele. Additionally, HTZ mice showed defective hippocampal excitatory synaptic transmission and reduced recognition memory compared to the WT condition.

Conclusion: Our findings suggest that the dynamin-2 p.R465W mutation perturbs the synaptic and cognitive function in a CNM mouse model and support the idea that this GTPase plays a key role in regulating neuronal morphology and excitatory synaptic transmission in the hippocampus.

在该疾病的小鼠模型中,引起中心核肌病的动力蛋白-2突变破坏了神经元形态和兴奋性突触传递。
目的:dynamin -2是一个大的GTPase,是调节膜重塑和细胞骨架动力学的dynamin超家族的成员。动力蛋白-2基因(DNM2)突变导致常染色体显性核心性肌病(CNM),一种以骨骼肌进行性无力和萎缩为特征的先天性神经肌肉疾病。一些dnm2相关的CNM患者有认知缺陷的报道,这表明这些突变也可以影响中枢神经系统(CNS)。在这里,我们研究了引起cnm的dynamin-2突变如何影响CNS功能。方法:以常染色体显性CNM最常见的致动力蛋白-2基因(HTZ) p.R465W突变的杂合小鼠为疾病模型。我们评估了海马体培养神经元的树突树突和脊柱密度,通过海马体切片电生理场记录分析了兴奋性突触传递,并通过行为测试评估了认知功能。结果:HTZ海马神经元表现出比WT神经元更少的树突树突和更低的脊柱密度,通过转染针对dynamin-2突变等位基因的干扰RNA可以逆转这种情况。此外,与WT相比,HTZ小鼠表现出海马兴奋性突触传递缺陷和识别记忆减少。结论:我们的研究结果表明,动力蛋白2 p.R465W突变扰乱了CNM小鼠模型的突触和认知功能,并支持该GTPase在调节海马神经元形态和兴奋性突触传递中起关键作用的观点。
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来源期刊
CiteScore
8.20
自引率
2.00%
发文量
87
审稿时长
6-12 weeks
期刊介绍: Neuropathology and Applied Neurobiology is an international journal for the publication of original papers, both clinical and experimental, on problems and pathological processes in neuropathology and muscle disease. Established in 1974, this reputable and well respected journal is an international journal sponsored by the British Neuropathological Society, one of the world leading societies for Neuropathology, pioneering research and scientific endeavour with a global membership base. Additionally members of the British Neuropathological Society get 50% off the cost of print colour on acceptance of their article.
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