Metabolic engineering of doxorubicin biosynthesis through P450-redox partner optimization and structural analysis of DoxA
Abstract
Abstract Doxorubicin, a widely used chemotherapy drug, is produced by Streptomyces peucetius ATCC27952. The biosynthesis relies on the cytochrome P450 monooxygenase DoxA, which catalyzes three consecutive late-stage oxidation steps. However, conversion from daunorubicin to doxorubicin is inefficient, necessitating semi-synthetic industrial manufacturing. Here, we address key limitations in DoxA catalysis. We identify the natural redox partners ferredoxin Fdx4 and ferredoxin reductase FdR3 by transcriptomic analysis. We discovered the vicinal oxygen chelate family protein DnrV to prevent product inhibition by binding doxorubicin. Structural analysis of DoxA and density functional theory (DFT) calculations reveal that inefficient C14 hydroxylation results from the unfavorable anti-conformation of the methyl ketone side chain of daunorubicin. We harness these advances for rational strain engineering, leading to an 180% increase in doxorubicin yields and an improved production profile. This study provides singular insights into enzymatic constraints in anthracycline biosynthesis and facilitates cost-effective manufacturing to meet the growing global demand for doxorubicin.
Article Details
Authors (23)
Arina Koroleva
Erika Artukka
Keith Yamada
Sean A. Newmister
Ralph J. Harte
Hannah Boesger
Mikael Londen
Jacob N. Sanders
Heli Tirkkonen
Matti Kannisto
Rosan C. M. Kuin
Mandy Hulst
Rongbin Wang
Ester Leskinen
Morgane Barillec
Jarmo Niemi
Gilles P. van Wezel
Institute of Biology, Leiden University, Sylviusweg 72, Leiden 2333 BE, The Netherlands
Jacques Neefjes
Department of Cell and Chemical Biology and Oncode Institute, Leiden University Medical Center
S. Eric Nybo
Kendall N. Houk
Department of Chemistry and Biochemistry
David H. Sherman
University of Michigan
Robbert Q. Kim
Mikko Metsä-Ketelä