5th Conference on Constraint-Based Reconstruction and Analysis (COBRA 2018)
Laboratory Evolution Reveals a Two-Dimensional Rate-Yield Tradeoff in Microbial Metabolism
Authors
King, Z. A. - Presenter, University of California, San Diego
Cheng, C., University of California, San Diego
Growth rate (µ) and yield (Y) are fundamental features of microbial growth. However, we lack a mechanistic and quantitative understanding of the µâY relationship. Studies pairing computational predictions with experiments have shown the importance of maintenance energy and proteome allocation in explaining rate-yield tradeoffs and overflow metabolism. Recently, adaptive evolution experiments of Escherichia coli reveal a phenotypic diversity beyond what has been explained using a simple µâY relationship. Here, we identify a two-dimensional µâY tradeoff in adapted E. coli strains where the dimensions are (A) a tradeoff between µ and Y and (B) a tradeoff between substrate uptake rate (qglc) and Y. We employ a multi-scale modeling approach, combining a previously reported small-scale proteome allocation model with a genome-scale model of metabolism and gene expression (ME-model), to develop a quantitative description of this two dimensional µâY relationship using data for E. coli K-12 MG1655. The analysis provides a mechanistic explanation of the two-dimensional µâY tradeoff. Furthermore, the analysis identifies modifications to the P/O ratio as a potential mechanism that enables the qglc-Y tradeoff. Thus, the µâY tradeoffs that govern microbial adaptation to new environments are more complex than previously reported, and they can be understood in mechanistic detail using a multi-scale modeling approach.