Switching ATP‐Forming Phosphoryl‐Transfer Chemistry With a Restricted Set of Amino Acids

ABSTRACT Restricting amino acid diversity is expected to impair enzyme catalysis, but whether such constraints simply diminish catalytic activity or generate distinct catalytic chemistry remains unclear. We reconstructed an ancestral nucleoside diphosphate kinase (NDK) scaffold using 10 prebiotically plausible residues plus lysine and arginine. The resulting variant, Arc1‐12KR, retained the canonical NDK fold in its crystal structure despite lacking the catalytic histidine. Chromatographic and mass spectrometric analyses showed ADP disproportionation to ATP and AMP, an activity undetectable in the NDK scaffold prior to amino acid reduction. Kinetic analysis showed nonlinear dependence on ADP concentration, and docking/molecular dynamics simulations indicated that the putative active‐site region can accommodate two ADP molecules. These structural, computational, and mutational analyses suggest that compositional constraints reshape ATP‐forming phosphoryl‐transfer chemistry through a reorganized active site in which aspartate and arginine, together with coordinated Mg 2+ , may enable phosphoryl transfer via a noncanonical, histidine‐independent mechanism. Despite modest catalytic efficiency, this activity represents a viable catalytic solution under compositional constraints, demonstrating that ATP formation can be supported by minimal amino acid repertoires. Thus, restricting amino acid diversity can generate distinct yet convergent ATP‐forming catalytic solutions, which may represent chemically plausible early routes to ATP formation under primitive conditions.

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Publication Details

Journal
Angewandte Chemie
Published
2026-10-09
DOI
https://doi.org/10.1002/ange.2166480
Primary Topic
Origins and Evolution of Life
Type
article
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article

Switching ATP‐Forming Phosphoryl‐Transfer Chemistry With a Restricted Set of Amino Acids

Sota Yagi, Shunsuke Tagami, Subrata Dasgupta, Satoshi Akanuma
Angewandte Chemie
Origins and Evolution of Life
article

Switching ATP‐Forming Phosphoryl‐Transfer Chemistry With a Restricted Set of Amino Acids

Sota Yagi, Shunsuke Tagami, Subrata Dasgupta, Satoshi Akanuma
article en

Abstract

ABSTRACT Restricting amino acid diversity is expected to impair enzyme catalysis, but whether such constraints simply diminish catalytic activity or generate distinct catalytic chemistry remains unclear. We reconstructed an ancestral nucleoside diphosphate kinase (NDK) scaffold using 10 prebiotically plausible residues plus lysine and arginine. The resulting variant, Arc1‐12KR, retained the canonical NDK fold in its crystal structure despite lacking the catalytic histidine. Chromatographic and mass spectrometric analyses showed ADP disproportionation to ATP and AMP, an activity undetectable in the NDK scaffold prior to amino acid reduction. Kinetic analysis showed nonlinear dependence on ADP concentration, and docking/molecular dynamics simulations indicated that the putative active‐site region can accommodate two ADP molecules. These structural, computational, and mutational analyses suggest that compositional constraints reshape ATP‐forming phosphoryl‐transfer chemistry through a reorganized active site in which aspartate and arginine, together with coordinated Mg 2+ , may enable phosphoryl transfer via a noncanonical, histidine‐independent mechanism. Despite modest catalytic efficiency, this activity represents a viable catalytic solution under compositional constraints, demonstrating that ATP formation can be supported by minimal amino acid repertoires. Thus, restricting amino acid diversity can generate distinct yet convergent ATP‐forming catalytic solutions, which may represent chemically plausible early routes to ATP formation under primitive conditions.

Angewandte Chemie
Waseda University (JP), RIKEN Center for Biosystems Dynamics Research (JP), RIKEN Center for Integrative Medical Sciences (JP)
Openalex Percentile: Top 14%
Origins and Evolution of Life
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Switching ATP‐Forming Phosphoryl‐Transfer Chemistry With a Restricted Set of Amino Acids — Sota Yagi, Shunsuke Tagami, et al. · Angewandte Chemie (2026) | TGRS Research Map | TGRS