Synthetic amino acid elongation via transaminase engineering

Unnatural amino acids expand the chemical space of medicines, yet scalable biosynthetic routes remain limited. Here, we present a modular strategy to “grow” α-amino acids one carbon at a time by coupling directed evolution of Escherichia coli transaminases with α-ketoacid chain extension. Using a glutamate–auxotroph selection system, we revealed previously uncharacterized residues in TyrB and IlvE and identified beneficial substitutions at these positions that broaden substrate scope toward hydroxyl-, tert-butyl-, and thioether-bearing frameworks with extended side chains. When paired with an acetyl-CoA-dependent ketoacid extension module, these engineered enzymes enabled the first biosynthetic access to multiple chain-elongated unnatural α-amino acids, including neopentylglycine, C5 and C6 hydroxy amino acids, homomethionine, and homoglutamate directly from their −1 precursors. Moreover, the system demonstrates iterative capability, successfully extending homoserine through two consecutive cycles to generate both +1 and +2 derivatives. Homoglutamate, selected for its pharmaceutical relevance, reached titers up to 10 g/L in shake flasks, underscoring the scale-up potential of this approach. This work establishes a generalizable enzymatic framework for stepwise expansion of α-amino acid scaffolds and broadens access to noncanonical building blocks for peptide and bioproduction applications.

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Publication Details

Journal
Biotechnology for Biofuels and Bioproducts
Published
2026-09-13
DOI
https://doi.org/10.1186/s13068-026-02821-y
Primary Topic
Enzyme Catalysis and Immobilization
Type
article
Field-Weighted Citation Impact
0.00

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article

Synthetic amino acid elongation via transaminase engineering

Claire R. Shen, Ryan S. Wang, Rex C. Wen, Teresa P. Tsai et al.
Biotechnology for Biofuels and Bioproducts
Enzyme Catalysis and Immobilization
article

Synthetic amino acid elongation via transaminase engineering

Claire R. Shen, Ryan S. Wang, Rex C. Wen, Teresa P. Tsai, Jessica C. Wang, Patrick Y. Lin, Nancy N. Kang, Janet J. Lin, Vicky Y. Liao, Han-ting Mai
article en

Abstract

Unnatural amino acids expand the chemical space of medicines, yet scalable biosynthetic routes remain limited. Here, we present a modular strategy to “grow” α-amino acids one carbon at a time by coupling directed evolution of Escherichia coli transaminases with α-ketoacid chain extension. Using a glutamate–auxotroph selection system, we revealed previously uncharacterized residues in TyrB and IlvE and identified beneficial substitutions at these positions that broaden substrate scope toward hydroxyl-, tert-butyl-, and thioether-bearing frameworks with extended side chains. When paired with an acetyl-CoA-dependent ketoacid extension module, these engineered enzymes enabled the first biosynthetic access to multiple chain-elongated unnatural α-amino acids, including neopentylglycine, C5 and C6 hydroxy amino acids, homomethionine, and homoglutamate directly from their −1 precursors. Moreover, the system demonstrates iterative capability, successfully extending homoserine through two consecutive cycles to generate both +1 and +2 derivatives. Homoglutamate, selected for its pharmaceutical relevance, reached titers up to 10 g/L in shake flasks, underscoring the scale-up potential of this approach. This work establishes a generalizable enzymatic framework for stepwise expansion of α-amino acid scaffolds and broadens access to noncanonical building blocks for peptide and bioproduction applications.

Biotechnology for Biofuels and Bioproducts
National Yang Ming Chiao Tung University (TW), National Tsing Hua University (TW)
National Science and Technology Council
Openalex Percentile: Top 18%
Enzyme Catalysis and Immobilization
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Synthetic amino acid elongation via transaminase engineering — Claire R. Shen, Ryan S. Wang, et al. · Biotechnology for Biofuels and Bioproducts (2026) | TGRS Research Map | TGRS