Pyridoxal-phosphate-dependent biosynthesis of aminovaleramide by AvaS in tRNA

In eubacteria, decoding of isoleucine codon AUA requires a specialized tRNA (tRNAIle2) modified with lysidine (k2C) at the anticodon wobble position (C34), which switches decoding specificity from methionine (AUG) to isoleucine (AUA). Recently, aminovaleramide cytidine (ava2C) was discovered at the same tRNA position in several bacteria and plants and shown to support AUA decoding and Ile-specific aminoacylation. However, the enzyme catalyzing ava2C was unknown. Here, we report that tRNAIle-aminovaleramididine synthetase (AvaS) catalyzes ava2C biosynthesis in Pseudomonas aeruginosa PA14. AvaS converts k2C to ava2C through a pyridoxal-phosphate-dependent oxidative decarboxylation mechanism, supported by site-directed mutagenesis and in vitro enzymatic assays. Dual-reporter assays demonstrated that ava2C-modified tRNA exhibits lower AUA decoding efficiency than k2C-modified tRNA. Additionally, genome-wide screening revealed an unexpected link between ava2C levels and metabolic and stress response pathways influencing i6A/ms2i6A dynamics. Together, these findings define the molecular basis of ava2C biosynthesis and its broader cellular metabolic networks. Sun, Wu et al. identify AvaS as a pyridoxal-phosphate-dependent RNA-modifying enzyme, producing the tRNA modification ava2C from k2C in bacteria and plants and linking RNA chemistry to translational regulation of metabolic stress responses.

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Journal
Nature Chemical Biology
Published
2026-09-09
DOI
https://doi.org/10.1038/s41589-026-02303-0
Primary Topic
RNA modifications and cancer
Type
article
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article

Pyridoxal-phosphate-dependent biosynthesis of aminovaleramide by AvaS in tRNA

Jingjing Sun, Valérie de Crécy‐Lagard, Zeynep Baharoglu, Laurence Drouard et al.
Nature Chemical Biology
RNA modifications and cancer
article

Pyridoxal-phosphate-dependent biosynthesis of aminovaleramide by AvaS in tRNA

Jingjing Sun, Valérie de Crécy‐Lagard, Zeynep Baharoglu, Laurence Drouard, M. E. LEE, Chuan‐Fa Liu, Yifeng Yuan, Peter C. Dedon, Seetharamsing Balamkundu, Junzhou Wu, Agnieszka Dziergowska, Cui Liang, Steven D. Bruner, Grażyna Leszczyńska, Léo Hardy, Hazel Chay Suen Suen, Thomas J. Begley, Dwijapriya
article en

Abstract

In eubacteria, decoding of isoleucine codon AUA requires a specialized tRNA (tRNAIle2) modified with lysidine (k2C) at the anticodon wobble position (C34), which switches decoding specificity from methionine (AUG) to isoleucine (AUA). Recently, aminovaleramide cytidine (ava2C) was discovered at the same tRNA position in several bacteria and plants and shown to support AUA decoding and Ile-specific aminoacylation. However, the enzyme catalyzing ava2C was unknown. Here, we report that tRNAIle-aminovaleramididine synthetase (AvaS) catalyzes ava2C biosynthesis in Pseudomonas aeruginosa PA14. AvaS converts k2C to ava2C through a pyridoxal-phosphate-dependent oxidative decarboxylation mechanism, supported by site-directed mutagenesis and in vitro enzymatic assays. Dual-reporter assays demonstrated that ava2C-modified tRNA exhibits lower AUA decoding efficiency than k2C-modified tRNA. Additionally, genome-wide screening revealed an unexpected link between ava2C levels and metabolic and stress response pathways influencing i6A/ms2i6A dynamics. Together, these findings define the molecular basis of ava2C biosynthesis and its broader cellular metabolic networks. Sun, Wu et al. identify AvaS as a pyridoxal-phosphate-dependent RNA-modifying enzyme, producing the tRNA modification ava2C from k2C in bacteria and plants and linking RNA chemistry to translational regulation of metabolic stress responses.

Nature Chemical Biology
Albany State University (US), Centre National de la Recherche Scientifique (FR), Institut Pasteur (FR), Nanyang Technological University (SG), Lodz University of Technology (PL), Université Paris Cité (FR), University of Florida (US), Institut de Biologie Physico-Chimique (FR), Institut de Biologie Moléculaire des Plantes (FR), Institute of Organic Chemistry (PL), Singapore-MIT Alliance for Research and Technology (SG), Massachusetts Institute of Technology (US), Université de Strasbourg (FR)
Openalex Percentile: Top 17%
RNA modifications and cancer
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