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生物信息学解析罂粟中蒂巴因生物合成途径:核心基因、网络分析及微小RNA调控

Bioinformatics deciphers the thebaine biosynthesis pathway in opium poppy: Hub genes, network analysis, and miRNA regulation.

作者信息

Shirazi Zahra, Rostami Mahsa, Ghorbani Abozar, Hiram Guzzi Pietro

机构信息

Biotechnology Research Department, Research Institute of Forests and Rangelands, Agricultural Research Education and Extension Organization (AREEO), National Botanical Garden, Tehran Karaj Freeway, P.O. Box 13185-116, Tehran, Iran.

Nuclear Agriculture Research School, Nuclear Science and Technology Research Institute (NSTRI), Karaj, Iran.

出版信息

J Genet Eng Biotechnol. 2024 Dec;22(4):100422. doi: 10.1016/j.jgeb.2024.100422. Epub 2024 Aug 21.

Abstract

Thebaine, a vital precursor in the codeine and morphine pathway, shows promise in addiction treatment. We conducted a comprehensive study on the thebaine biosynthesis pathway in opium poppy, utilizing bioinformatics tools. The dataset comprising the thirteen genes associated with the thebaine biosynthesis pathway was compiled from an extensive review of published literature and validated using the NCBI BLAST tool. Utilizing STRING and Cytoscape, we analyzed gene interactions and visualized the molecular interaction network, respectively. To identify hub proteins, CytoHubba was administered. The Kyoto Encyclopedia of Genes and Genomes (KEGG) and Gene Ontology (GO) at STRING were used for the enrichment analysis of the hub genes. CytoCluster was used to analyze the network in clusters. Promoter regions of hub genes and potential miRNAs were explored using MEME and the psRNATarget database. Hub genes crucial to thebaine biosynthesis were identified, contributing to essential cellular functions like growth, development, stress response, and signal transduction. Metabolic processes emerged as pivotal for thebaine production, indicating a broader role for the thebaine pathway gene network beyond primary metabolite production. Cell component subnetwork genes demonstrated associations with anatomical units, indicating involvement in plant defense responses. Dominant molecular functions drove plant defense responses. KEGG pathway analysis highlighted the significance of metabolic pathways and biosynthesis of secondary metabolites. Cluster analysis emphasized the relevance of the biosynthesis of amino acids, confirming the link between primary and secondary metabolites. Promoter analysis suggested the potential involvement of signal transduction in thebaine production. Hub genes were targeted by 40 miRNAs, suggesting potential novel biomarkers or target genes within the thebaine biosynthesis pathway. Based on the role of miRNAs identified in connection with the hub genes of the thebaine production process, the secondary metabolite pathway of thebaine appears to be associated with several key plant pathways, e.g. growth, development and stress response. However, these findings, based on bioinformatics analysis, warrant further experimental validation and promise to advance our understanding of the biosynthesis of thebaine and its interactions with other genes and metabolic pathways that influence the production of metabolites.

摘要

蒂巴因是可待因和吗啡合成途径中的重要前体,在成瘾治疗方面显示出前景。我们利用生物信息学工具对罂粟中的蒂巴因生物合成途径进行了全面研究。从对已发表文献的广泛综述中汇编了包含与蒂巴因生物合成途径相关的13个基因的数据集,并使用NCBI BLAST工具进行了验证。利用STRING和Cytoscape,我们分别分析了基因相互作用并可视化了分子相互作用网络。为了识别枢纽蛋白,使用了CytoHubba。STRING中的京都基因与基因组百科全书(KEGG)和基因本体论(GO)用于枢纽基因的富集分析。CytoCluster用于对网络进行聚类分析。使用MEME和psRNATarget数据库探索了枢纽基因的启动子区域和潜在的miRNA。确定了对蒂巴因生物合成至关重要的枢纽基因,这些基因有助于生长、发育、应激反应和信号转导等基本细胞功能。代谢过程对于蒂巴因的产生至关重要,这表明蒂巴因途径基因网络在初级代谢产物产生之外具有更广泛的作用。细胞成分子网基因显示与解剖单位有关联,表明参与植物防御反应。主要分子功能驱动植物防御反应。KEGG途径分析突出了代谢途径和次生代谢产物生物合成的重要性。聚类分析强调了氨基酸生物合成的相关性,证实了初级和次生代谢产物之间的联系。启动子分析表明信号转导可能参与蒂巴因的产生。40个miRNA靶向枢纽基因,这表明在蒂巴因生物合成途径中可能存在新的生物标志物或靶基因。基于在蒂巴因产生过程的枢纽基因中鉴定出的miRNA的作用,蒂巴因的次生代谢产物途径似乎与几个关键的植物途径相关,例如生长、发育和应激反应。然而,这些基于生物信息学分析的发现需要进一步的实验验证,有望推进我们对蒂巴因生物合成及其与影响代谢产物产生的其他基因和代谢途径相互作用的理解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6249/11387676/754aca492f56/gr1.jpg

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