Rational Engineering of a Thermostable α-Oxoamine Synthase Biocatalyst Expands the Substrate Scope and Synthetic Applicability

  • Yaoyi Zhu (Creator)
  • Nikita Novikovs (Creator)
  • Jon Marles-Wright (Creator)
  • Arnaud Baslé (Creator)
  • Dominic Campopiano (Creator)
  • Ben Ashley (Creator)
  • Sam Mathew (Creator)
  • Mariyah Sajjad (Creator)

Dataset

Abstract

The dataset contains all raw data from the tables used in the manuscript, titled "Rational Engineering of a Thermostable α-Oxoamine Synthase Biocatalyst Expands the Substrate Scope and Synthetic Applicability".

Publication abstract: Carbon-carbon bond formation is one of the key pillars of organic synthesis. Green, selective and efficient biocatalytic methods for such are therefore highly desirable. The α-oxoamine synthases (AOSs) are a class of pyridoxal 5’-phosphate (PLP)-dependent, irreversible, carbon-carbon bond-forming enzymes, which have been limited previously by their narrow substrate specificity and requirement of acyl-CoA thioester substrates. We recently characterized a thermophilic enzyme from Thermus thermophilus (ThAOS) with a much broader substrate scope and described its use in a chemo-biocatalytic cascade process to generate pyrroles in good yields and timescales. Herein, we report the structure-guided engineering of ThAOS to arrive at variants able to use a greatly expanded range of amino acid and simplified N-acetylcysteamine (SNAc) acyl-thioester substrates. The crystal structure of the improved ThAOS V79A mutant with a bound PLP:l-penicillamine external aldimine ligand, provides insight into the properties of the engineered biocatalyst.
Date made available20 Apr 2025
PublisherEdinburgh DataShare

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