ArticleACS synthetic biology2019
Incorporation of Modified Amino Acids by Engineered Elongation Factors with Expanded Substrate Capabilities.
Article in ACS synthetic biology, 2019. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 9 papers.
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Who cites it
9 citing papers in PubMed, 20 citations in OpenAlex.
- Selecting aminoacyl-tRNA synthetase/tRNA pairs for efficient genetic encoding of noncanonical amino acids into proteins.Nature protocols · 2026Review
- High throughput screening of eukaryotic release factor 1 variants to enhance noncanonical amino acid incorporation.bioRxiv : the preprint server for biology · 2025Article
- Reaching New Heights in Genetic Code Manipulation with High Throughput Screening.Chemical reviews · 2024Review
- Cracking the Code: Reprogramming the Genetic Script in Prokaryotes and Eukaryotes to Harness the Power of Noncanonical Amino Acids.Chemical reviews · 2024Review
- β-Amino Acids Reduce Ternary Complex Stability and Alter the Translation Elongation Mechanism.ACS central science · 2024Article
- β-amino acids reduce ternary complex stability and alter the translation elongation mechanism.bioRxiv : the preprint server for biology · 2024Article
- TwinCons: Conservation score for uncovering deep sequence similarity and divergence.PLoS computational biology · 2021Article
- Multiplex suppression of four quadruplet codons via tRNA directed evolution.Nature communications · 2021Article
- Strategies for in vitro engineering of the translation machinery.Nucleic acids research · 2020Review
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Authors and funding
3 authors at 2 institutions in 1 country.
Funding
Abstract
Noncanonical amino acid (ncAA) incorporation has led to significant advances in protein science and engineering. Traditionally, in vivo incorporation of ncAAs is achieved via amber codon suppression using an engineered orthogonal aminoacyl-tRNA synthetase:tRNA pair. However, as more complex protein products are targeted, researchers are identifying additional barriers limiting the scope of currently available ncAA systems. One barrier is elongation factor Tu (EF-Tu), a protein responsible for proofreading aa-tRNAs, which substantially restricts ncAA scope by limiting ncaa-tRNA delivery to the ribosome. Researchers have responded by engineering ncAA-compatible EF-Tus for key ncAAs. However, this approach fails to address the extent to which EF-Tu inhibits efficient ncAA incorporation. Here, we demonstrate an alternative strategy leveraging computational analysis to broaden EF-Tu's substrate specificity. Evolutionary analysis of EF-Tu and a naturally evolved specialized elongation factor, SelB, provide the opportunity to engineer EF-Tu by targeting amino acid residues that are associated with functional divergence between the two ancient paralogues. Employing amber codon suppression, in combination with mass spectrometry, we identified two EF-Tu variants with non-native substrate compatibility. Additionally, we present data showing these EF-Tu variants contribute to host organismal fitness, working cooperatively with components of native and engineered translation machinery. These results demonstrate the viability of our computational method and lend support to corresponding assumptions about molecular evolution. This work promotes enhanced polyspecific EF-Tu behavior as a viable strategy to expand ncAA scope and complements ongoing research emphasizing the importance of a comprehensive approach to further expand the genetic code.
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