Skip to content

Author

F. Isaacs

We have 3 of 96 papers

We haven’t gathered this author’s papers yet. Follow them and we’ll fetch their work.

Not the right person? Other researchers publish under this name.

Sep 2026

Engineered Orthogonal Translation Systems from Metagenomic Libraries Expand the Genetic Code

Genetic code expansion with noncanonical amino acids (ncAAs) opens new opportunities for the design and engineering of proteins by broadening their chemical repertoire. Unfortunately, ncAA incorporation into proteins is limited both by a small collection of orthogonal aminoacyl-tRNA synthetases (aaRSs) and tRNAs and by low-throughput methods to discover them. Here, we report the discovery, characterization, and engineering of a UGA suppressing orthogonal translation system mined from metagenomic data. We develop an integrated computational and experimental pipeline based on cell-free gene expression to screen the orthogonality of >200 tRNAs, test >1,250 combinations of aaRS/tRNA pairs, and identify the AP1 TrpRS/tRNATrpUCA as an orthogonal pair that natively encodes tryptophan at the UGA codon. We demonstrate that the AP1 TrpRS/tRNATrpUCA is highly active in cell-free and cellular contexts. We then use Ochre, a genomically recoded Escherichia coli strain that lacks UAG and UGA codons, to engineer an AP1 TrpRS variant capable of 5-hydroxytryptophan incorporation at an open UGA codon. We anticipate that our strategy of integrating metagenomic bioprospecting with cell-free screening and cell-based engineering will accelerate the discovery and optimization of orthogonal translation systems for genetic code expansion.

Kosuke Seki, Michael T. A. Nguyen, Petar I. Penev et al. · 0 citations
Open access Jul 2026

Cas3-mediated genome reduction: demonstration in Cupriavidus necator H16 improves growth on heterotrophic and autotrophic carbon sources

A Cascade–Cas3-enabled method called TRIM3 is reported that generates large deletions by targeting a randomly integrated transposon, enabling facile generation of a genome-reduced mutant library and represents a new avenue for large-scale genome modifications and the development of improved bioprocessing hosts.

E. Fulk, R. M. Swart, Akira K Nakamura et al. · 0 citations
Open access Aug 2026

Systematic prioritization of candidate genes in camptothecin biosynthesis using multi‐omics and deep learning

This study engineered an experimental callus system for inducible production of CPT, which enabled multi‐omics and deep learning analyses to identify candidate genes in CPT biosynthesis and provides a valuable foundation for the complete elucidation of the CPT biosynthetic pathway.

Shenqiu Wang, Xing Wu, Maria Moreno et al. · 0 citations

We use cookies to run the site and, with your consent, for analytics and to show ads. See our Cookie Policy.