Structural and functional analysis of two di-domain aromatase/cyclases from type II polyketide synthases

July 28, 2017

Title

Structural and functional analysis of two di-domain aromatase/cyclases from type II polyketide synthases

Author

Grace Caldara-Festin, David R. Jackson, Jesus F. Barajas, Timothy R. Valentic, Avinash B. Patel, Stephanie Aguilar, MyChi Nguyen, Michael Vo, Avinash Khanna, Eita Sasaki, Hung-wen Liu, Shiou-Chuan Tsai

Year

2015

Journal

PNAS

Abstract

Aromatic polyketides make up a large class of natural products with diverse bioactivity. During biosynthesis, linear poly-β-ketone intermediates are regiospecifically cyclized, yielding molecules with defined cyclization patterns that are crucial for polyketide bioactivity. The aromatase/cyclases (ARO/CYCs) are responsible for regiospecific cyclization of bacterial polyketides. The two most common cyclization patterns are C7–C12 and C9–C14 cyclizations. We have previously characterized three monodomain ARO/CYCs: ZhuI, TcmN, and WhiE. The last remaining uncharacterized class of ARO/CYCs is the di-domain ARO/CYCs, which catalyze C7–C12 cyclization and/or aromatization. Di-domain ARO/CYCs can further be separated into two subclasses: “nonreducing” ARO/CYCs, which act on nonreduced poly-β-ketones, and “reducing” ARO/CYCs, which act on cyclized C9 reduced poly-β-ketones. For years, the functional role of each domain in cyclization and aromatization for di-domain ARO/CYCs has remained a mystery. Here we present what is to our knowledge the first structural and functional analysis, along with an in-depth comparison, of the nonreducing (StfQ) and reducing (BexL) di-domain ARO/CYCs. This work completes the structural and functional characterization of mono- and di-domain ARO/CYCs in bacterial type II polyketide synthases and lays the groundwork for engineered biosynthesis of new bioactive polyketides.

Instrument

J-810

Keywords

Circular dichroism, Secondary structure, Biochemistry, Natural products