Author:
Broddrick Jared T.,Rubin Benjamin E.,Welkie David G.,Du Niu,Mih Nathan,Diamond Spencer,Lee Jenny J.,Golden Susan S.,Palsson Bernhard O.
Abstract
The model cyanobacterium,Synechococcus elongatusPCC 7942, is a genetically tractable obligate phototroph that is being developed for the bioproduction of high-value chemicals. Genome-scale models (GEMs) have been successfully used to assess and engineer cellular metabolism; however, GEMs of phototrophic metabolism have been limited by the lack of experimental datasets for model validation and the challenges of incorporating photon uptake. Here, we develop a GEM of metabolism inS. elongatususing random barcode transposon site sequencing (RB-TnSeq) essential gene and physiological data specific to photoautotrophic metabolism. The model explicitly describes photon absorption and accounts for shading, resulting in the characteristic linear growth curve of photoautotrophs. GEM predictions of gene essentiality were compared with data obtained from recent dense-transposon mutagenesis experiments. This dataset allowed major improvements to the accuracy of the model. Furthermore, discrepancies between GEM predictions and the in vivo dataset revealed biological characteristics, such as the importance of a truncated, linear TCA pathway, low flux toward amino acid synthesis from photorespiration, and knowledge gaps within nucleotide metabolism. Coupling of strong experimental support and photoautotrophic modeling methods thus resulted in a highly accurate model ofS. elongatusmetabolism that highlights previously unknown areas ofS. elongatusbiology.
Funder
U.S. Department of Energy
National Science Foundation
UCSD Frontiers of Innovation Scholars Program
HHS | National Institutes of Health
Publisher
Proceedings of the National Academy of Sciences
Cited by
109 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献