College of Bioscience and Biotechnology, Yangzhou University, Yangzhou, China.
Mol Plant Pathol. 2021 Mar;22(3):348-360. doi: 10.1111/mpp.13032. Epub 2021 Jan 12.
The plant pathogen Agrobacterium tumefaciens causes crown gall disease and is a widely used tool for generating transgenic plants owing to its virulence. The pathogenic process involves a shift from an independent to a living form within a host plant. However, comprehensive analyses of metabolites, genes, and reactions contributing to this complex process are lacking. To gain new insights about the pathogenicity from the viewpoints of physiology and cellular metabolism, a genome-scale metabolic model (GSMM) was reconstructed for A. tumefaciens. The model, referred to as iNX1344, contained 1,344 genes, 1,441 reactions, and 1,106 metabolites. It was validated by analyses of in silico cell growth on 39 unique carbon or nitrogen sources and the flux distribution of carbon metabolism. A. tumefaciens metabolic characteristics under three ecological niches were modelled. A high capacity to access and metabolize nutrients is more important for rhizosphere colonization than in the soil, and substantial metabolic changes were detected during the shift from the rhizosphere to tumour environments. Furthermore, by integrating transcriptome data for tumour conditions, significant alterations in central metabolic pathways and secondary metabolite metabolism were identified. Overall, the GSMM and constraint-based analysis could decode the physiological and metabolic features of A. tumefaciens as well as interspecific interactions with hosts, thereby improving our understanding of host adaptation and infection mechanisms.
植物病原体根癌农杆菌会引起冠瘿病,由于其毒性,它被广泛用作生成转基因植物的工具。致病过程涉及从独立状态向宿主植物内的活体状态的转变。然而,对于导致这一复杂过程的代谢物、基因和反应的综合分析仍然缺乏。为了从生理学和细胞代谢的角度获得对致病性的新认识,我们为根癌农杆菌重建了一个基于基因组规模的代谢模型(GSMM)。该模型被称为 iNX1344,包含 1344 个基因、1441 个反应和 1106 种代谢物。通过分析在 39 种独特的碳源或氮源上的计算机细胞生长和碳代谢的通量分布,对其进行了验证。对三种生态位下的根癌农杆菌代谢特性进行了建模。与在土壤中相比,根际定殖对获取和代谢营养物质的能力要求更高,并且在从根际到肿瘤环境的转变过程中检测到了大量的代谢变化。此外,通过整合肿瘤条件下的转录组数据,鉴定到了中心代谢途径和次生代谢物代谢的显著改变。总的来说,GSMM 和基于约束的分析可以解码根癌农杆菌的生理和代谢特征以及与宿主的种间相互作用,从而提高我们对宿主适应和感染机制的理解。