Proteomic analysis illustrates the potential involvement of dysregulated ribosome-related pathways and disrupted metabolism during retinoic acid-induced cleft palate development.

IF 2.1 4区 医学 Q3 GENETICS & HEREDITY
Wancong Zhang, Liyun Chen, Aiwei Ma, Wenshi Jiang, Mengjing Xu, Xujue Bai, Jianda Zhou, Shijie Tang
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引用次数: 0

Abstract

Recent studies have unveiled disrupted metabolism in the progression of cleft palate (CP), a congenital anomaly characterized by defective fusion of facial structures. Nonetheless, the precise composition of this disrupted metabolism remains elusive, prompting us to identify these components and elucidate primary metabolic irregularities contributing to CP pathogenesis. We established a murine CP model by retinoic acid (RA) treatment and analyzed control and RA-treated embryonic palatal tissues by LC-MS-based proteomic approach. We identified 220 significantly upregulated and 224 significantly downregulated proteins. Gene Ontology (GO) and Kyoto Encyclopedia of Genes and Genomes (KEGG) enrichment analysis revealed that these differentially expressed proteins (DEPs) were involved in translation, ribosome assembly, mitochondrial function, mRNA binding, as well as key metabolic pathways like oxidative phosphorylation (OXPHOS), glycolysis/gluconeogenesis, and amino acid biosynthesis. These findings suggest that dysregulated ribosome-related pathways and disrupted metabolism play a critical role in CP development. Protein-protein interaction analysis using the STRING database revealed a tightly connected network of DEPs. Furthermore, we identified the top 10 hub proteins in CP using the Cytohubba plugin in Cytoscape. These hub proteins, including RPL8, RPS11, ALB, PA2G4, RPL23, RPS6, CCT7, EGFR, HSPD1, and RPS28, are potentially key regulators of CP pathogenesis. In conclusion, our comprehensive proteomic analysis provides insights into the molecular alterations associated with RA-induced CP in Kun Ming mice. These findings suggest potential therapeutic targets and pathways to understand and prevent congenital craniofacial anomalies.

蛋白质组学分析表明,在维甲酸诱导的腭裂发育过程中,核糖体相关途径失调和代谢紊乱可能参与其中。
最近的研究揭示了在腭裂(CP)的发展过程中代谢紊乱,这是一种以面部结构融合缺陷为特征的先天性异常。尽管如此,这种代谢紊乱的确切组成仍然难以捉摸,这促使我们识别这些成分并阐明导致CP发病的主要代谢异常。通过维甲酸(RA)处理建立小鼠CP模型,采用LC-MS-based蛋白质组学方法对对照组和RA处理的小鼠胚胎腭组织进行分析。我们发现220个蛋白显著上调,224个蛋白显著下调。基因本体(GO)和京都基因与基因组百科全书(KEGG)富集分析显示,这些差异表达蛋白(DEPs)参与了翻译、核糖体组装、线粒体功能、mRNA结合以及氧化磷酸化(OXPHOS)、糖酵解/糖异生和氨基酸生物合成等关键代谢途径。这些发现表明,核糖体相关途径失调和代谢紊乱在CP的发展中起着关键作用。利用STRING数据库进行蛋白-蛋白相互作用分析,揭示了一个紧密连接的dep网络。此外,我们使用Cytoscape中的Cytohubba插件确定了CP中排名前10位的枢纽蛋白。这些枢纽蛋白包括RPL8、RPS11、ALB、PA2G4、RPL23、RPS6、CCT7、EGFR、HSPD1和RPS28,是CP发病机制的潜在关键调节因子。总之,我们的综合蛋白质组学分析提供了与ra诱导的昆明小鼠CP相关的分子改变的见解。这些发现为了解和预防先天性颅面异常提供了潜在的治疗靶点和途径。
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来源期刊
BMC Medical Genomics
BMC Medical Genomics 医学-遗传学
CiteScore
3.90
自引率
0.00%
发文量
243
审稿时长
3.5 months
期刊介绍: BMC Medical Genomics is an open access journal publishing original peer-reviewed research articles in all aspects of functional genomics, genome structure, genome-scale population genetics, epigenomics, proteomics, systems analysis, and pharmacogenomics in relation to human health and disease.
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