Literature DB >> 24747046

Production of the sesquiterpenoid (+)-nootkatone by metabolic engineering of Pichia pastoris.

Tamara Wriessnegger1, Peter Augustin2, Matthias Engleder3, Erich Leitner4, Monika Müller5, Iwona Kaluzna6, Martin Schürmann7, Daniel Mink8, Günther Zellnig9, Helmut Schwab10, Harald Pichler11.   

Abstract

The sesquiterpenoid (+)-nootkatone is a highly demanded and highly valued aroma compound naturally found in grapefruit, pummelo or Nootka cypress tree. Extraction of (+)-nootkatone from plant material or its production by chemical synthesis suffers from low yields and the use of environmentally harmful methods, respectively. Lately, major attention has been paid to biotechnological approaches, using cell extracts or whole-cell systems for the production of (+)-nootkatone. In our study, the yeast Pichia pastoris initially was applied as whole-cell biocatalyst for the production of (+)-nootkatone from (+)-valencene, the abundant aroma compound of oranges. Therefore, we generated a strain co-expressing the premnaspirodiene oxygenase of Hyoscyamus muticus (HPO) and the Arabidopsis thaliana cytochrome P450 reductase (CPR) that hydroxylated extracellularly added (+)-valencene. Intracellular production of (+)-valencene by co-expression of valencene synthase from Callitropsis nootkatensis resolved the phase-transfer issues of (+)-valencene. Bi-phasic cultivations of P. pastoris resulted in the production of trans-nootkatol, which was oxidized to (+)-nootkatone by an intrinsic P. pastoris activity. Additional overexpression of a P. pastoris alcohol dehydrogenase and truncated hydroxy-methylglutaryl-CoA reductase (tHmg1p) significantly enhanced the (+)-nootkatone yield to 208mg L(-1) cell culture in bioreactor cultivations. Thus, metabolically engineered yeast P. pastoris represents a valuable, whole-cell system for high-level production of (+)-nootkatone from simple carbon sources.
Copyright © 2014 International Metabolic Engineering Society. Published by Elsevier Inc. All rights reserved.

Entities:  

Keywords:  Cytochrome P450; Membrane protein; Metabolic engineering; Nootkatone; Pichia pastoris; Terpenoid

Mesh:

Substances:

Year:  2014        PMID: 24747046     DOI: 10.1016/j.ymben.2014.04.001

Source DB:  PubMed          Journal:  Metab Eng        ISSN: 1096-7176            Impact factor:   9.783


  27 in total

Review 1.  Yellow-Cedar, Callitropsis (Chamaecyparis) nootkatensis, Secondary Metabolites, Biological Activities, and Chemical Ecology.

Authors:  Joseph J Karchesy; Rick G Kelsey; M P González-Hernández
Journal:  J Chem Ecol       Date:  2018-04-14       Impact factor: 2.626

2.  Cell-free one-pot conversion of (+)-valencene to (+)-nootkatone by a unique dye-decolorizing peroxidase combined with a laccase from Funalia trogii.

Authors:  Julia Kolwek; Christoph Behrens; Diana Linke; Ulrich Krings; Ralf G Berger
Journal:  J Ind Microbiol Biotechnol       Date:  2017-12-22       Impact factor: 3.346

Review 3.  Recent advances of molecular toolbox construction expand Pichia pastoris in synthetic biology applications.

Authors:  Zhen Kang; Hao Huang; Yunfeng Zhang; Guocheng Du; Jian Chen
Journal:  World J Microbiol Biotechnol       Date:  2016-11-30       Impact factor: 3.312

4.  Aerobic Utilization of Methanol for Microbial Growth and Production.

Authors:  Volker F Wendisch; Gregor Kosec; Stéphanie Heux; Trygve Brautaset
Journal:  Adv Biochem Eng Biotechnol       Date:  2022       Impact factor: 2.635

5.  Methanol biotransformation toward high-level production of fatty acid derivatives by engineering the industrial yeast Pichia pastoris.

Authors:  Peng Cai; Xiaoyan Wu; Jun Deng; Linhui Gao; Yiwei Shen; Lun Yao; Yongjin J Zhou
Journal:  Proc Natl Acad Sci U S A       Date:  2022-07-11       Impact factor: 12.779

6.  Plasmid-Based Gene Knockout Strategy with Subsequent Marker Recycling in Pichia pastoris.

Authors:  Simon Kobalter; Astrid Radkohl; Helmut Schwab; Anita Emmerstorfer-Augustin; Harald Pichler
Journal:  Methods Mol Biol       Date:  2022

7.  Light-Controlled Cell Factories: Employing Photocaged Isopropyl-β-d-Thiogalactopyranoside for Light-Mediated Optimization of lac Promoter-Based Gene Expression and (+)-Valencene Biosynthesis in Corynebacterium glutamicum.

Authors:  Dennis Binder; Jonas Frohwitter; Regina Mahr; Claus Bier; Alexander Grünberger; Anita Loeschcke; Petra Peters-Wendisch; Dietrich Kohlheyer; Jörg Pietruszka; Julia Frunzke; Karl-Erich Jaeger; Volker F Wendisch; Thomas Drepper
Journal:  Appl Environ Microbiol       Date:  2016-09-30       Impact factor: 4.792

8.  Iterative carotenogenic screens identify combinations of yeast gene deletions that enhance sclareol production.

Authors:  Fotini A Trikka; Alexandros Nikolaidis; Anastasia Athanasakoglou; Aggeliki Andreadelli; Codruta Ignea; Konstantia Kotta; Anagnostis Argiriou; Sotirios C Kampranis; Antonios M Makris
Journal:  Microb Cell Fact       Date:  2015-04-24       Impact factor: 5.328

9.  Engineering Pichia pastoris for improved NADH regeneration: A novel chassis strain for whole-cell catalysis.

Authors:  Martina Geier; Christoph Brandner; Gernot A Strohmeier; Mélanie Hall; Franz S Hartner; Anton Glieder
Journal:  Beilstein J Org Chem       Date:  2015-09-25       Impact factor: 2.883

10.  Non-canonical integration events in Pichia pastoris encountered during standard transformation analysed with genome sequencing.

Authors:  Jan-Philipp Schwarzhans; Daniel Wibberg; Anika Winkler; Tobias Luttermann; Jörn Kalinowski; Karl Friehs
Journal:  Sci Rep       Date:  2016-12-13       Impact factor: 4.379

View more

北京卡尤迪生物科技股份有限公司 © 2022-2023.