English

Spatial organization of bacterial transcription and translation

Subcellular Processes 2016-08-30 v3

Abstract

In bacteria such as Escherichia coli\textit{Escherichia coli}, DNA is compacted into a nucleoid near the cell center, while ribosomes-molecular complexes that translate messenger RNAs (mRNAs) into proteins-are mainly localized at the poles. We study the impact of this spatial organization using a minimal reaction-diffusion model for the cellular transcriptional-translational machinery. Our model predicts that 90%\sim 90\% of mRNAs are segregated to the poles and reveals a "circulation" of ribosomes driven by the flux of mRNAs, from synthesis in the nucleoid to degradation at the poles. To address the existence of non-specific, transient interactions between ribosomes and mRNAs, we developed a novel method to efficiently incorporate such transient interactions into reaction-diffusion equations, which allowed us to quantify the biological implications of such non-specific interactions, e.g. for ribosome efficiency.

Keywords

Cite

@article{arxiv.1503.03928,
  title  = {Spatial organization of bacterial transcription and translation},
  author = {Michele Castellana and Sophia Hsin-Jung Li and Ned S. Wingreen},
  journal= {arXiv preprint arXiv:1503.03928},
  year   = {2016}
}