4.6 Article

An Optimized Ustilago maydis for Itaconic Acid Production at Maximal Theoretical Yield

期刊

JOURNAL OF FUNGI
卷 7, 期 1, 页码 -

出版社

MDPI
DOI: 10.3390/jof7010020

关键词

itaconic acid; U; maydis; metabolic engineering; fungi; yeast

资金

  1. German Federal Ministry of Food and Agriculture (BMEL), through the Specialist agency renewable raw materials e. V. (FNR) as part of the ERA-IB project 'TTRAFFIC' [FKZ 22030515]
  2. German Federal Ministry of Education and Research (BMBF) as part of the 'BiookonomieRevier_INNO project UpRePP [FKZ 031B0918A]
  3. Bio Based Industries Joint Undertaking under the European Union's Horizon 2020 research and innovation programme [887711]
  4. German Research Foundation (DFG) under Germany's Excellence Strategy-Exzellenzcluster 2186 'The Fuel Science Center' [390919832]

向作者/读者索取更多资源

The study focused on using Ustilago maydis to produce itaconic acid, a potential bio-based building block, through metabolic and morphology engineering. By combining various modifications, the production yield was optimized to the theoretical maximum under biotechnologically relevant fed-batch fermentations.
Ustilago maydis, a member of the Ustilaginaceae family, is a promising host for the production of several metabolites including itaconic acid. This dicarboxylate has great potential as a bio-based building block in the polymer industry, and is of special interest for pharmaceutical applications. Several itaconate overproducing Ustilago strains have been generated by metabolic and morphology engineering. This yielded stabilized unicellular morphology through fuz7 deletion, reduction of by-product formation through deletion of genes responsible for itaconate oxidation and (glyco)lipid production, and the overexpression of the regulator of the itaconate cluster ria1 and the mitochondrial tricarboxylate transporter encoded by mttA from Aspergillus terreus. In this study, itaconate production was further optimized by consolidating these different optimizations into one strain. The combined modifications resulted in itaconic acid production at theoretical maximal yield, which was achieved under biotechnologically relevant fed-batch fermentations with continuous feed.

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