Low escape-rate genome safeguards with minimal molecular perturbation ofSaccharomyces cerevisiae

Author:

Agmon Neta,Tang Zuojian,Yang Kun,Sutter Ben,Ikushima Shigehito,Cai Yizhi,Caravelli Katrina,Martin James A.,Sun Xiaoji,Choi Woo Jin,Zhang Allen,Stracquadanio Giovanni,Hao Haiping,Tu Benjamin P.,Fenyo David,Bader Joel S.,Boeke Jef D.ORCID

Abstract

As the use of synthetic biology both in industry and in academia grows, there is an increasing need to ensure biocontainment. There is growing interest in engineering bacterial- and yeast-based safeguard (SG) strains. First-generation SGs were based on metabolic auxotrophy; however, the risk of cross-feeding and the cost of growth-controlling nutrients led researchers to look for other avenues. Recent strategies include bacteria engineered to be dependent on nonnatural amino acids and yeast SG strains that have both transcriptional- and recombinational-based biocontainment. We describe improving yeastSaccharomyces cerevisiae-based transcriptional SG strains, which have near-WT fitness, the lowest possible escape rate, and nanomolar ligands controlling growth. We screened a library of essential genes, as well as the best-performing promoter and terminators, yielding the best SG strains in yeast. The best constructs were fine-tuned, resulting in two tightly controlled inducible systems. In addition, for potential use in the prevention of industrial espionage, we screened an array of possible “decoy molecules” that can be used to mask any proprietary supplement to the SG strain, with minimal effect on strain fitness.

Funder

DOD | Defense Advanced Research Projects Agency

Publisher

Proceedings of the National Academy of Sciences

Subject

Multidisciplinary

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