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Cambray, G.

Publications and source records attributed to Cambray, G..

2 recordsLinked to original sources

Massive Factorial Design Untangles Coding Sequences Determinants Of Translation Efficacy

Comparative analyses of natural sequences or variant libraries are often used to infer mechanisms of expression, activity and evolution. Contingent selective histories and small sample sizes can profoundly bias such approaches. Both limitations can be lifted using precise design of large-scale DNA synthesis. Here, we precisely design 5 E. coli genomes worth of synthetic DNA to untangle the relative contributions of 8 interlaced sequence properties described independently as major determinants of translation in Escherichia coli. To expose hierarchical effects, we engineer an inducible translational coupling device enabling epigenetic disruption of mRNA secondary structures. We find that properties commonly believed to modulate translation generally explain less than a third of the variation in protein production. We describe dominant effects of mRNA structures over codon composition on both initiation and elongation, and previously uncharacterized relationships among factors controlling translation. These results advance our understanding of translation efficiency and expose critical design challenges.

synthetic biology

Massive Phenotypic Measurements Reveal Complex Physiological Consequences Of Differential Translation Efficacies

AO_SCPCAPBSTRACTC_SCPCAPControl of protein biosynthesis is at the heart of resource allocation and cell adaptation to fluctuating environments. One genes translation often occurs at the expense of anothers, resulting in global energetic and fitness trade-offs during differential expression of various functions. Patterns of ribosome utilization--as controlled by initiation, elongation and release rates--are central to this balance. To disentangle their respective determinants and physiological impacts, we complemented measurements of protein production with highly parallelized quantifications of transcripts abundance and decay, ribosome loading and cellular growth rate for 244,000 precisely designed sequence variants of an otherwise standard reporter. We find highly constrained, non-monotonic relationships between measured phenotypes. We show that fitness defects derive either from protein overproduction, with efficient translation initiation and heavy ribosome flows; or from unproductive ribosome sequestration by highly structured, slowly initiated and overly stabilized transcripts. These observations demonstrate physiological impacts of key sequence features in natural and designed transcripts.

synthetic biology