Suppr超能文献

通过人工转录因子恢复内源性Dlg4/PSD95表达可改善亨廷顿舞蹈病R6/2小鼠模型的认知和运动学习缺陷。

Restoring endogenous Dlg4/PSD95 expression by an artificial transcription factor ameliorates cognitive and motor learning deficits in the R6/2 mouse model of Huntington's disease.

作者信息

Fernández Germán, Leiva Kevin, Bustos Fernando J, van Zundert Brigitte

机构信息

Faculty of Medicine and Faculty of Life Sciences, Institute of Biomedical Sciences (ICB), Universidad Andres Bello, Santiago, Chile.

Millennium Nucleus of Neuroepigenetics and Plasticity (EpiNeuro), Santiago, Chile.

出版信息

Clin Epigenetics. 2025 Jun 12;17(1):100. doi: 10.1186/s13148-025-01903-2.

Abstract

BACKGROUND

Huntington's disease (HD) is an incurable hereditary disorder caused by an expansion of CAG repeats in exon 1 of the Huntingtin gene (HTT). HD is characterized by motor dysfunction and cognitive decline. The pathophysiology of HD begins in cortico-striatal circuits and later spreads to other brain regions, notably the hippocampus. At the cellular level, structural changes in synapses have been observed prior to neuronal degeneration, significantly disrupting the formation and maintenance of neuronal circuits. The postsynaptic density protein 95 (PSD-95, hereafter Dlg4/PSD95) is a key synaptic plasticity protein reduced in HD and other neurodegenerative diseases such as Alzheimer's disease (AD). Epigenetic silencing of plasticity and memory genes contributes to AD pathology and cognitive impairment. To restore endogenous Dlg4/PSD95 expression in AD, we previously developed an epigenetic editing strategy where a zinc finger DNA-binding domain targeting the Dlg4/PSD95 gene promoter was fused to the transactivation domain VP64 and driven under a CMV promoter. AAV-PhP.B-mediated delivery of this artificial transcription factor (ATF) CMV-PSD95-6ZF-VP64 improved cognition in an AD mouse model. Here, we assessed the therapeutic potential of AAV9-mediated delivery of the synapsin-driven ATF PSD95-6ZF-VP64 in the R6/2 HD mouse model.

RESULTS

Consistent with the previous studies, R6/2 mice exhibited reduced hippocampal Dlg4/PSD95 mRNA and protein levels in young adulthood (7 weeks), which persisted into early adulthood (14 weeks). Starting at adolescents (4 weeks), the R6/2 mice also displayed motor (i.e., accelerated rotarod) and cognitive (i.e., Barnes maze and object location memory) impairments. In wild-type primary hippocampal cultures, AAV9-PSD95-6ZF-VP64 led to an increase in synaptic PSD-95 clusters and spine size. Intracerebroventricular injections of neonatal R6/2 mice with AAV9-PSD95-6ZF-VP64 elevated hippocampal Dlg4/PSD95 expression levels to those observed in control non-transgenic mice. Importantly, AAV9-PSD95-6ZF-VP64 effectively improved hippocampal-dependent deficits in spatial learning and memory in young adult HD mice, as well as impairments in motor coordination and motor skill learning, with these benefits persisting into adulthood.

CONCLUSION

This work validates Dlg4/PSD95 as a key player in the prodromal phase of HD pathology and establishes the ATF PSD95-6ZF-VP64 as an attractive therapeutic tool for treating the disease's early phase.

摘要

背景

亨廷顿舞蹈症(HD)是一种无法治愈的遗传性疾病,由亨廷顿基因(HTT)外显子1中的CAG重复序列扩增引起。HD的特征是运动功能障碍和认知能力下降。HD的病理生理学始于皮质-纹状体回路,随后扩散到其他脑区,尤其是海马体。在细胞水平上,在神经元变性之前就已观察到突触的结构变化,这显著破坏了神经元回路的形成和维持。突触后致密蛋白95(PSD-95,以下简称Dlg4/PSD95)是一种关键的突触可塑性蛋白,在HD和其他神经退行性疾病如阿尔茨海默病(AD)中含量降低。可塑性和记忆基因的表观遗传沉默导致AD病理和认知障碍。为了在AD中恢复内源性Dlg4/PSD95表达,我们之前开发了一种表观遗传编辑策略,即将靶向Dlg4/PSD95基因启动子的锌指DNA结合结构域与反式激活结构域VP64融合,并在CMV启动子的驱动下表达。通过AAV-PhP.B介导递送这种人工转录因子(ATF)CMV-PSD95-6ZF-VP64可改善AD小鼠模型的认知能力。在此,我们评估了AAV9介导递送突触素驱动的ATF PSD95-6ZF-VP64在R6/2 HD小鼠模型中的治疗潜力。

结果

与之前的研究一致,R6/2小鼠在成年早期(7周)海马Dlg4/PSD95 mRNA和蛋白水平降低,并持续到成年早期(14周)。从青少年期(4周)开始,R6/2小鼠还表现出运动(即加速转棒试验)和认知(即巴恩斯迷宫和物体位置记忆)障碍。在野生型原代海马培养物中,AAV9-PSD95-6ZF-VP64导致突触PSD-95簇增加和棘突大小增大。对新生R6/2小鼠进行脑室内注射AAV9-PSD95-6ZF-VP64可使海马Dlg4/PSD95表达水平升高至对照非转基因小鼠的水平。重要的是,AAV9-PSD95-6ZF-VP64有效改善了成年早期HD小鼠海马依赖性空间学习和记忆缺陷以及运动协调和运动技能学习障碍,且这些益处持续到成年期。

结论

这项工作证实Dlg4/PSD95是HD病理前驱期的关键因素,并确立了ATF PSD95-6ZF-VP64作为治疗该疾病早期阶段的有吸引力的治疗工具。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5133/12164150/754d0cc50ed7/13148_2025_1903_Fig1_HTML.jpg

文献检索

告别复杂PubMed语法,用中文像聊天一样搜索,搜遍4000万医学文献。AI智能推荐,让科研检索更轻松。

立即免费搜索

文件翻译

保留排版,准确专业,支持PDF/Word/PPT等文件格式,支持 12+语言互译。

免费翻译文档

深度研究

AI帮你快速写综述,25分钟生成高质量综述,智能提取关键信息,辅助科研写作。

立即免费体验