Department of Biotechnology, Bhupat and Jyoti Mehta School of Biosciences, Indian Institute of Technology Madras, Chennai 600036, Tamil Nadu, India.
Department of Physics, Chuo University, Kasuga, Bunkyo-ku, Tokyo 112-8551, Japan.
Genes (Basel). 2023 Sep 14;14(9):1801. doi: 10.3390/genes14091801.
Huntington's disease (HD) is a progressive neurodegenerative disorder caused due to a CAG repeat expansion in the huntingtin () gene. The primary symptoms of HD include motor dysfunction such as chorea, dystonia, and involuntary movements. The primary motor cortex (BA4) is the key brain region responsible for executing motor/movement activities. Investigating patient and control samples from the BA4 region will provide a deeper understanding of the genes responsible for neuron degeneration and help to identify potential markers. Previous studies have focused on overall differential gene expression and associated biological functions. In this study, we illustrate the relationship between variants and differentially expressed genes/transcripts. We identified variants and their associated genes along with the quantification of genes and transcripts. We also predicted the effect of variants on various regulatory activities and found that many variants are regulating gene expression. Variants affecting miRNA and its targets are also highlighted in our study. Co-expression network studies revealed the role of novel genes. Function interaction network analysis unveiled the importance of genes involved in vesicle-mediated transport. From this unified approach, we propose that genes expressed in immune cells are crucial for reducing neuron death in HD.
亨廷顿病(HD)是一种进行性神经退行性疾病,由亨廷顿()基因中的 CAG 重复扩展引起。HD 的主要症状包括运动功能障碍,如舞蹈病、肌张力障碍和不自主运动。初级运动皮层(BA4)是负责执行运动/运动活动的关键大脑区域。对来自 BA4 区域的患者和对照样本进行研究将提供对负责神经元退化的基因的更深入了解,并有助于识别潜在的标志物。以前的研究集中在整体差异基因表达和相关的生物学功能上。在这项研究中,我们说明了变体与差异表达的基因/转录本之间的关系。我们确定了变体及其相关基因,以及基因和转录本的定量。我们还预测了变体对各种调节活动的影响,发现许多变体在调节基因表达。我们的研究还强调了影响 miRNA 及其靶标的变体。共表达网络研究揭示了新基因的作用。功能相互作用网络分析揭示了参与囊泡介导运输的基因的重要性。从这种统一的方法中,我们提出在免疫细胞中表达的基因对于减少 HD 中的神经元死亡至关重要。