Genome-driven cell engineering review: in vivo and in silico metabolic and genome engineering

Author:

Landon Sophie12,Rees-Garbutt Joshua13,Marucci Lucia124,Grierson Claire13ORCID

Affiliation:

1. BrisSynBio, University of Bristol, Bristol BS8 1TQ, U.K.

2. Department of Engineering Mathematics, University of Bristol, Bristol BS8 1UB, U.K.

3. School of Biological Sciences, University of Bristol, Life Sciences Building, Bristol BS8 1TQ, U.K.

4. School of Cellular and Molecular Medicine, University of Bristol, Bristol BS8 1UB, U.K.

Abstract

Abstract Producing ‘designer cells’ with specific functions is potentially feasible in the near future. Recent developments, including whole-cell models, genome design algorithms and gene editing tools, have advanced the possibility of combining biological research and mathematical modelling to further understand and better design cellular processes. In this review, we will explore computational and experimental approaches used for metabolic and genome design. We will highlight the relevance of modelling in this process, and challenges associated with the generation of quantitative predictions about cell behaviour as a whole: although many cellular processes are well understood at the subsystem level, it has proved a hugely complex task to integrate separate components together to model and study an entire cell. We explore these developments, highlighting where computational design algorithms compensate for missing cellular information and underlining where computational models can complement and reduce lab experimentation. We will examine issues and illuminate the next steps for genome engineering.

Publisher

Portland Press Ltd.

Subject

Molecular Biology,Biochemistry

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