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人类病原体的全基因组规模代谢模型:一个用于理解病原体代谢和识别新药物靶点的平台。

Comprehensive genome-scale metabolic model of the human pathogen : A platform for understanding pathogen metabolism and identifying new drug targets.

作者信息

Tezcan Enes Fahri, Demirtas Yigit, Cakar Zeynep Petek, Ulgen Kutlu O

机构信息

Department of Molecular Biology and Genetics, Istanbul Technical University, Istanbul, Turkey.

Department of Chemical Engineering, Bogazici University, Istanbul, Turkey.

出版信息

Front Bioinform. 2023 Jan 13;3:1121409. doi: 10.3389/fbinf.2023.1121409. eCollection 2023.

Abstract

The fungal priority pathogen causes cryptococcal meningoencephalitis in immunocompromised individuals and leads to hundreds of thousands of deaths per year. The undesirable side effects of existing treatments, the need for long application times to prevent the disease from recurring, the lack of resources for these treatment methods to spread over all continents necessitate the search for new treatment methods. Genome-scale models have been shown to be valuable in studying the metabolism of many organisms. Here we present the first genome-scale metabolic model for , iCryptococcus. This comprehensive model consists of 1,270 reactions, 1,143 metabolites, 649 genes, and eight compartments. The model was validated, proving accurate when predicting the capability of utilizing different carbon and nitrogen sources and growth rate in comparison to experimental data. The compatibility of the Cryptococcus metabolism under infection conditions was assessed. The steroid and amino acid metabolisms found in the essentiality analyses have the potential to be drug targets for the therapeutic strategies to be developed against Cryptococcus species. iCryptococcus model can be applied to explore new targets for antifungal drugs along with essential gene, metabolite and reaction analyses and provides a promising platform for elucidation of pathogen metabolism.

摘要

这种真菌重点病原体在免疫功能低下的个体中引发隐球菌性脑膜脑炎,每年导致数十万人死亡。现有治疗方法存在不良副作用,需要长时间应用以防止疾病复发,且这些治疗方法缺乏在各大洲推广的资源,因此有必要寻找新的治疗方法。基因组规模模型已被证明在研究许多生物体的代谢方面具有价值。在此,我们展示了首个针对新型隐球菌的基因组规模代谢模型。这个综合模型由1270个反应、1143种代谢物、649个基因和8个区室组成。该模型经过验证,与实验数据相比,在预测利用不同碳源和氮源的能力以及生长速率时证明是准确的。评估了新型隐球菌在感染条件下代谢的兼容性。在必需性分析中发现的类固醇和氨基酸代谢有可能成为针对新型隐球菌属开发的治疗策略的药物靶点。新型隐球菌模型可用于探索抗真菌药物的新靶点,同时进行必需基因、代谢物和反应分析,并为阐明病原体代谢提供了一个有前景的平台。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/be08/9880062/a264e264772f/fbinf-03-1121409-g001.jpg

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