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Impairment of carotenoid biosynthesis through CAR1 gene mutation results in CoQ10, sterols, and phytoene accumulation in Rhodotorula mucilaginosa.
Tkácová, Jana; Zara, Giacomo; Ianiri, Giuseppe; Castoria, Raffaello; Certík, Milan; Mannazzu, Ilaria.
Afiliação
  • Tkácová J; Institute of Biotechnology, Faculty of Chemical and Food Technology, Slovak University of Technology, Radlinského 9, 812 37, Bratislava, Slovakia.
  • Zara G; Department of Agricultural Sciences, Università Degli Studi Di Sassari, Associate Member of the JRU MIRRI-IT, Viale Italia 39, 07100, Sassari, Italy.
  • Ianiri G; Department of Agricultural, Environmental and Food Sciences, Università Degli Studi del Molise, Via Francesco de Sanctis, 86100, Campobasso, Italy.
  • Castoria R; Department of Agricultural, Environmental and Food Sciences, Università Degli Studi del Molise, Via Francesco de Sanctis, 86100, Campobasso, Italy.
  • Certík M; Institute of Biotechnology, Faculty of Chemical and Food Technology, Slovak University of Technology, Radlinského 9, 812 37, Bratislava, Slovakia.
  • Mannazzu I; Department of Agricultural Sciences, Università Degli Studi Di Sassari, Associate Member of the JRU MIRRI-IT, Viale Italia 39, 07100, Sassari, Italy. imannazzu@uniss.it.
Appl Microbiol Biotechnol ; 106(1): 317-327, 2022 Jan.
Article em En | MEDLINE | ID: mdl-34910239
ABSTRACT
Red yeasts, mainly included in the genera Rhodotorula, Rhodosporidiobolus, and Sporobolomyces, are renowned biocatalysts for the production of a wide range of secondary metabolites of commercial interest, among which lipids, carotenoids, and other isoprenoids. The production of all these compounds is tightly interrelated as they share acetyl-CoA and the mevalonate pathway as common intermediates. Here, T-DNA insertional mutagenesis was applied to the wild type strain C2.5t1 of Rhodotorula mucilaginosa for the isolation of albino mutants with impaired carotenoids biosynthesis. The rationale behind this approach was that a blockage in carotenoid biosynthetic pathway could divert carbon flux toward the production of lipids and/or other molecules deriving from terpenoid precursors. One characterized albino mutant, namely, strain W4, carries a T-DNA insertion in the CAR1 gene coding for phytoene desaturase. When cultured in glycerol-containing medium, W4 strain showed significant decreases in cell density and fatty acids content in respect to the wild type strain. Conversely, it reached significantly higher productions of phytoene, CoQ10, and sterols. These were supported by an increased expression of CAR2 gene that codes for phytoene synthase/lycopene cyclase. Thus, in accordance with the starting hypothesis, the impairment of carotenoids biosynthesis can be explored to pursue the biotechnological exploitation of red yeasts for enhanced production of secondary metabolites with several commercial applications. KEY POINTS • The production of lipids, carotenoids, and other isoprenoids is tightly interrelated. • CAR1 gene mutation results in the overproduction of phytoene, CoQ10, and sterols. • Albino mutants are promising tools for the production of secondary metabolites.
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Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Assunto principal: Arginase / Rhodotorula / Proteínas Fúngicas Idioma: En Revista: Appl Microbiol Biotechnol Ano de publicação: 2022 Tipo de documento: Article

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Assunto principal: Arginase / Rhodotorula / Proteínas Fúngicas Idioma: En Revista: Appl Microbiol Biotechnol Ano de publicação: 2022 Tipo de documento: Article