Biosynthesis of Strained Amino Acids by a PLP‐Dependent Enzyme through Cryptic Halogenation

Author:

Sosa Max B.1,Leeman Jacob T.1,Washington Lorenzo J.23,Scheller Henrik V.23,Chang Michelle C. Y.145ORCID

Affiliation:

1. Department of Chemistry University of California, Berkeley Berkeley CA 94720–1460 USA

2. Department of Plant & Microbial Biology University of California, Berkeley Berkeley CA 94720–3102 USA

3. Joint BioEnergy Institute Lawrence Berkeley National Laboratory Berkeley CA 94720 USA

4. Department of Chemical & Biomolecular Engineering University of California, Berkeley Berkeley CA 94720–1462 USA

5. Department of Molecular & Cell Biology University of California, Berkeley Berkeley CA 94720–3200 USA

Abstract

AbstractAmino acids (AAs) are modular building blocks which nature uses to synthesize both macromolecules, such as proteins, and small molecule natural products, such as alkaloids and non‐ribosomal peptides. While the 20 main proteinogenic AAs display relatively limited side chain diversity, a wide range of non‐canonical amino acids (ncAAs) exist that are not used by the ribosome for protein synthesis, but contain a broad array of structural features and functional groups. In this communication, we report the discovery of the biosynthetic pathway for a new ncAA, pazamine, which contains a cyclopropane ring formed in two steps. In the first step, a chlorine is added onto the C4 position of lysine by a radical halogenase, PazA. The cyclopropane ring is then formed in the next step by a pyridoxal‐5′‐phosphate‐dependent enzyme, PazB, via an SN2‐like attack at C4 to eliminate chloride. Genetic studies of this pathway in the native host, Pseudomonas azotoformans, show that pazamine potentially inhibits ethylene biosynthesis in growing plants based on alterations in the root phenotype of Arabidopsis thaliana seedlings. We further show that PazB can be utilized to make an alternative cyclobutane‐containing AA. These discoveries may lead to advances in biocatalytic production of specialty chemicals and agricultural biotechnology.

Funder

National Institutes of Health

National Science Foundation Graduate Research Fellowship Program

Novo Nordisk Foundation Center for Basic Metabolic Research

Biological and Environmental Research

Publisher

Wiley

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