Sustainable Phosphate-Catalyzed Synthesis of Non-Symmetric Pyrazines in Water - Mechanistic Insights, Biocatalytic Applications and Industrial Potential

Abstract

Pyrazines are pivotal flavor compounds with widespread applications in the food, pharmaceutical, and chemical industries.Their natural abundance is low, and traditional synthetic methods often involve hazardous conditions unsuitable for the food sector. In this study, we present a novel biocatalytic methodology for synthesizing asymmetric trisubstituted pyrazines using aminoacetone dimerization followed by electrophile incorporation under environmentally benign conditions, catalyzed by phosphate anion. The approach includes the employment of L-threonine dehydrogenase from Cupriavidus necator to generate aminoacetone in situ from natural L-threonine, integrating biocatalysis with green chemistry principles.Detailed mechanistic investigations, supported by control experiments and DFT calculations, revealed the critical role of phosphate buffering, an E1cB elimination and a tautomerization-driven pathway for product formation. The methodology demonstrates broad substrate scope and scalability, yielding pyrazines with diverse structural modifications up to 96% yields. This work establishes a starting point for the industrial production of asymmetric pyrazines, addressing current regulatory and environmental demands in the flavor and fragrance sector.

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Article information

Article type
Paper
Submitted
11 Sep 2025
Accepted
19 Nov 2025
First published
25 Nov 2025
This article is Open Access
Creative Commons BY license

Green Chem., 2025, Accepted Manuscript

Sustainable Phosphate-Catalyzed Synthesis of Non-Symmetric Pyrazines in Water - Mechanistic Insights, Biocatalytic Applications and Industrial Potential

J. González-Rodríguez, V. Jurkaš, E. Puchľová, M. Podewitz, F. Parmeggiani, M. Winkler, P. Both, P. Šiška and F. Rudroff, Green Chem., 2025, Accepted Manuscript , DOI: 10.1039/D5GC04772B

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