核仁活性和完整性的分期和细胞特异性变化与亨廷顿氏病的进展有关

Aynur Sönmez, K. Kojer, R. Mustafa, S. Spieth, Christian Litke, J. Koch, T. Hering, B. Liss, M. Orth, R. Parlato
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摘要

已知在亨廷顿舞蹈病(HD)中发生转录和代谢失调。突变的亨廷顿蛋白(mHTT)影响几种细胞功能,阻碍了原发性致病事件的鉴定。核仁(主要的非膜结合亚核区室)中核糖体DNA (rDNA)基因的转录受损代表了进行性神经退行性变的一种新兴机制目的为了确定与mHTT和疾病进展相关的敏感转录和代谢标志物,我们在HD模型和人体组织活检中验证了核仁中rDNA转录的变化是mHTT转录失调的早期迹象的假设。方法/技术采用实时定量PCR、RNA原位杂交和免疫荧光分析不同年龄zQ175敲入小鼠纹状体和骨骼肌核仁的活性和完整性,以及早期神经病理阶段的患者组织活检。结果/结果在这里,我们发现rDNA转录和核仁伴侣蛋白核磷蛋白(NPM1)的分布在HD小鼠模型的大脑和肌肉组织以及HD患者的肌肉活检中发生了差异。结论mHTT核包涵体通过改变纹状体细胞中的NPM1,以阶段和细胞特异性的方式干扰核仁功能。此外,这些研究表明,肌肉细胞中的NPM1构成了HD初始阶段的分子特征。这些发现可能有助于提供新的工具来测试正在进行的旨在降低特定细胞中mHTT水平的治疗策略的功能功效。本研究得到了EHDN种子基金项目0753,DFG PA 1529/2-1, CEMMA研究生院的支持
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A09 Stage- and cell-specific changes of nucleolar activity and integrity are associated with the progression of huntington’s disease
Background Transcriptional and metabolic dysregulation are known to occur in Huntington’s disease (HD). Mutant huntingtin (mHTT) protein affects several cellular functions hindering the identification of the primary pathogenic event. Impaired transcription of ribosomal DNA (rDNA) genes in the nucleolus – a major non-membrane bound sub-nuclear compartment – represents an emerging mechanism underlying progressive neurodegeneration Aims To identify a sensitive transcriptional and metabolic marker associated with mHTT and disease progression, we tested the hypothesis that changes in rDNA transcription in the nucleolus are early signs of transcriptional dysregulation by mHTT in HD models and human tissue biopsies. Methods/techniques We analyzed by real-time quantitative PCR, RNA in situ hybridization, and immunofluorescence the activity and integrity of the nucleolus in the striatum and skeletal muscle of zQ175 knock-in mice at various ages as well as of patient tissue biopsies at early neuropathological stages. Results/outcome Here, we show that rDNA transcription and distribution of the nucleolar chaperone protein nucleophosmin (NPM1) are differentially altered in brain and muscle tissues from HD mouse models and in muscle biopsies from HD patients. Conclusions Our results indicate that mHTT nuclear inclusions interfere with nucleolar function in a stage- and cell-specific fashion by altering NPM1 in striatal cells. Moreover these studies demonstrate that NPM1 in muscle cells constitutes a molecular signature of the initial stages of HD. These findings could help to provide novel tools to test the functional efficacy of ongoing therapeutic strategies aiming at lowering mHTT levels in specific cells. Funding This work was supported by EHDN seed-fund project 0753, DFG PA 1529/2–1, CEMMA Graduate School
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