Minichromosome Maintenance Complex Genes Are Candidate Biomarkers of Retinal Degeneration.

IF 2.1
Na Sun, Xu Hu, Jianhui Wang, Tengteng Yao, Zhaoyang Wang
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Abstract

Purpose: Retinal degeneration is the primary cause of blindness and is characterized by progressive dysfunction and death of retinal cells, leading to irreversible vision impairment. As far as is known, there are currently no effective treatments for this condition. The identification of novel therapeutic targets remains a critical challenge. Methods: To address this vital issue, we performed an in-depth transcriptome analysis of the sodium iodate-induced cell model (NaIO3-treated cells), further identified the differential gene expression and common pathways, performed enrichment analysis, constructed protein-protein interaction (PPI) networks, and screened for three core DNA replication-related genes (MCM4, MCM5, and MCM7). Subsequently, quantitative real-time polymerase chain reaction (qPCR) and immunohistochemistry assays were performed to verify the expression levels of hub genes in the NaIO3-treated adult retinal pigment epithelial cell line-19 and animal models. Results: The pathways were mainly focused on DNA replication in the enrichment analysis. PPI network analysis revealed that minichromosome maintenance complex genes associated with DNA replication were core genes for retinal degeneration. qPCR and immunohistochemistry assays showed that the expression levels of hub genes were downregulated in the NaIO3-treated cell and animal models. Conclusions: Collectively, our bioinformatics analysis, coupled with experimental validation, identified three core DNA replication-related genes (MCM4, MCM5, and MCM7) with potential implications in retinal degeneration, suggesting their roles in the disease process. These findings shed light on the molecular underpinnings of retinal degeneration and pave the way for the development of targeted therapies aimed at modulating DNA replication-related gene activity to treat retinal degeneration.

小染色体维持复合体基因是视网膜变性的候选生物标志物。
目的:视网膜变性是致盲的主要原因,其特点是视网膜细胞进行性功能障碍和死亡,导致不可逆的视力损害。据目前所知,目前还没有有效的治疗方法。确定新的治疗靶点仍然是一个关键的挑战。方法:为了解决这一重要问题,我们对碘酸钠诱导的细胞模型(naio3处理的细胞)进行了深入的转录组分析,进一步确定了差异基因表达和共同途径,进行了富集分析,构建了蛋白-蛋白相互作用(PPI)网络,并筛选了三个核心DNA复制相关基因(MCM4, MCM5和MCM7)。随后,采用实时定量聚合酶链反应(qPCR)和免疫组织化学方法验证了中枢基因在naio3处理的成人视网膜色素上皮细胞系19和动物模型中的表达水平。结果:富集分析的途径主要集中在DNA复制。PPI网络分析显示,与DNA复制相关的小染色体维持复合体基因是视网膜变性的核心基因。qPCR和免疫组化分析显示,naio3处理的细胞和动物模型中,hub基因的表达水平下调。结论:总的来说,我们的生物信息学分析结合实验验证,确定了三个核心DNA复制相关基因(MCM4, MCM5和MCM7)在视网膜变性中具有潜在的影响,表明它们在疾病过程中的作用。这些发现揭示了视网膜变性的分子基础,并为旨在调节DNA复制相关基因活性以治疗视网膜变性的靶向治疗的发展铺平了道路。
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