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Biology subjects

Lanster, D.

Publications and source records attributed to Lanster, D..

2 recordsLinked to original sources

Efficient Genetic Code Expansion Without Host Genome Modifications

Supplementing translation with non-canonical amino acids (ncAAs) can yield protein sequences with new-to-nature functions, but existing ncAA incorporation strategies suffer from low efficiency and context dependence. We uncover codon usage as a previously unrecognized contributor to efficient genetic code expansion using non-native codons. Relying only on conventional E. coli strains with native ribosomes, we develop a novel plasmid-based codon compression strategy that minimizes context dependence and improves ncAA incorporation at quadruplet codons. We confirm that this strategy is compatible with all known genetic code expansion resources, which allows us to identify 12 mutually orthogonal tRNA-synthetase pairs. Enabled by these findings, we evolve and optimize five tRNA-synthetase pairs to incorporate a broad repertoire of ncAAs at orthogonal quadruplet codons. Finally, we extend these resources to an in vivo biosynthesis platform that can readily create >100 new-to-nature peptide macrocycles bearing up to three unique ncAAs. Given the generality of our approach and streamlined resources, our findings will accelerate innovations in multiplexed genetic code expansion and enable the discovery of chemically diverse biomolecules for researcher-defined applications.

synthetic biology↗

A Genetically Encoded System to Quantify and Evolve RuBisCO-Catalyzed Carbon Fixation

Strategies to study and alter the biochemical properties of RuBisCO often couple CO2 fixation to bacterial growth. However, these viability-coupled strategies are not quantitative and are limited by toxicity of the RuBisCO substrate RuBP, the slow kinetics of RuBisCO, and differences in RuBisCO expression. We report the development of the first genetically encoded system capable of accurately quantifying RuBisCO-dependent CO2 fixation in cellulo using a tripartite approach that combines bacterial strains which insulate RuBisCO-derived products, an engineered pathway that eliminates RuBP toxicity, and biosensors to concurrently monitor RuBisCO abundance and catalysis. We extended this biosensing strategy to 43 Form II and II/III RuBisCO homologs, finding strong agreement with in vitro-derived enzyme kinetics in living cells for the first time. Finally, we show how this system can be used to rapidly evolve functional RuBisCO enzymes. Our approach overcomes prior limitations by streamlining intracellular RuBisCO analyses and will enable the development of enzymes with improved CO2 fixation capabilities.

synthetic biology↗