生物信息学
发酵
柠檬酸
代谢工程
木质纤维素生物量
真菌毒素
水解物
生物量(生态学)
代谢途径
生物
基因组
代谢网络
生物化学
通量平衡分析
计算生物学
化学
食品科学
新陈代谢
基因
水解
农学
作者
Mehak Kaushal,Daniel J. Upton,Jai K. Gupta,A. Jamie Wood,Shireesh Srivastava
标识
DOI:10.1186/s13068-024-02506-4
摘要
Abstract Background Aspergillus tubingensis is a citric acid-producing fungus that can utilize sugars in hydrolysate of lignocellulosic biomass such as sugarcane bagasse and, unlike A. niger , does not produce mycotoxins. To date, no attempt has been made to model its metabolism at genome scale. Results Here, we utilized the whole-genome sequence (34.96 Mb length) and the measured biomass composition to reconstruct a genome-scale metabolic model (GSMM) of A. tubingensis DJU120 strain. The model, named i MK1652, consists of 1652 genes, 1657 metabolites and 2039 reactions distributed over four cellular compartments. The model has been extensively curated manually. This included removal of dead-end metabolites and generic reactions, addition of secondary metabolite pathways and several transporters. Several mycotoxin synthesis pathways were either absent or incomplete in the genome, providing a genomic basis for the non-toxinogenic nature of this species. The model was further refined based on the experimental phenotypic microarray (Biolog) data. The model closely captured DJU120 fermentative data on glucose, xylose, and phosphate consumption, as well as citric acid and biomass production, showing its applicability to capture citric acid fermentation of lignocellulosic biomass hydrolysate. Conclusions The model offers a framework to conduct metabolic systems biology investigations and can act as a scaffold for integrative modelling of A. tubingensis .
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