Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Carotenoid biosynthesis and overproduction in Corynebacterium glutamicum

View through CrossRef
Abstract Background Corynebacterium glutamicum contains the glycosylated C50 carotenoid decaprenoxanthin as yellow pigment. Starting from isopentenyl pyrophosphate, which is generated in the non-mevalonate pathway, decaprenoxanthin is synthesized via the intermediates farnesyl pyrophosphate, geranylgeranyl pyrophosphate, lycopene and flavuxanthin. Results Here, we showed that the genes of the carotenoid gene cluster crtE-cg0722-crtBIY e Y f Eb are co-transcribed and characterized defined gene deletion mutants. Gene deletion analysis revealed that c rtI, crtEb, and crtY e Y f , respectively, code for the only phytoene desaturase, lycopene elongase, and carotenoid C45/C50 ɛ-cyclase, respectively. However, the genome of C. glutamicum also encodes a second carotenoid gene cluster comprising crtB2I2-1/2 shown to be co-transcribed, as well. Ectopic expression of crtB2 could compensate for the lack of phytoene synthase CrtB in C. glutamicum Δ crtB , thus, C. glutamicum possesses two functional phytoene synthases, namely CrtB and CrtB2. Genetic evidence for a crtI2-1/2 encoded phytoene desaturase could not be obtained since plasmid-borne expression of crtI2-1/2 did not compensate for the lack of phytoene desaturase CrtI in C. glutamicum Δ crtI . The potential of C. glutamicum to overproduce carotenoids was estimated with lycopene as example. Deletion of the gene crtEb prevented conversion of lycopene to decaprenoxanthin and entailed accumulation of lycopene to 0.03 ± 0.01 mg/g cell dry weight (CDW). When the genes crtE, crtB and crtI for conversion of geranylgeranyl pyrophosphate to lycopene were overexpressed in C. glutamicum Δ crtEb intensely red-pigmented cells and an 80 fold increased lycopene content of 2.4 ± 0.3 mg/g CDW were obtained . Conclusion C. glutamicum possesses a certain degree of redundancy in the biosynthesis of the C50 carotenoid decaprenoxanthin as it possesses two functional phytoene synthase genes. Already metabolic engineering of only the terminal reactions leading to lycopene resulted in considerable lycopene production indicating that C. glutamicum may serve as a potential host for carotenoid production.
Title: Carotenoid biosynthesis and overproduction in Corynebacterium glutamicum
Description:
Abstract Background Corynebacterium glutamicum contains the glycosylated C50 carotenoid decaprenoxanthin as yellow pigment.
Starting from isopentenyl pyrophosphate, which is generated in the non-mevalonate pathway, decaprenoxanthin is synthesized via the intermediates farnesyl pyrophosphate, geranylgeranyl pyrophosphate, lycopene and flavuxanthin.
Results Here, we showed that the genes of the carotenoid gene cluster crtE-cg0722-crtBIY e Y f Eb are co-transcribed and characterized defined gene deletion mutants.
Gene deletion analysis revealed that c rtI, crtEb, and crtY e Y f , respectively, code for the only phytoene desaturase, lycopene elongase, and carotenoid C45/C50 ɛ-cyclase, respectively.
However, the genome of C.
glutamicum also encodes a second carotenoid gene cluster comprising crtB2I2-1/2 shown to be co-transcribed, as well.
Ectopic expression of crtB2 could compensate for the lack of phytoene synthase CrtB in C.
glutamicum Δ crtB , thus, C.
glutamicum possesses two functional phytoene synthases, namely CrtB and CrtB2.
Genetic evidence for a crtI2-1/2 encoded phytoene desaturase could not be obtained since plasmid-borne expression of crtI2-1/2 did not compensate for the lack of phytoene desaturase CrtI in C.
glutamicum Δ crtI .
The potential of C.
glutamicum to overproduce carotenoids was estimated with lycopene as example.
Deletion of the gene crtEb prevented conversion of lycopene to decaprenoxanthin and entailed accumulation of lycopene to 0.
03 ± 0.
01 mg/g cell dry weight (CDW).
When the genes crtE, crtB and crtI for conversion of geranylgeranyl pyrophosphate to lycopene were overexpressed in C.
glutamicum Δ crtEb intensely red-pigmented cells and an 80 fold increased lycopene content of 2.
4 ± 0.
3 mg/g CDW were obtained .
Conclusion C.
glutamicum possesses a certain degree of redundancy in the biosynthesis of the C50 carotenoid decaprenoxanthin as it possesses two functional phytoene synthase genes.
Already metabolic engineering of only the terminal reactions leading to lycopene resulted in considerable lycopene production indicating that C.
glutamicum may serve as a potential host for carotenoid production.

Related Results

Production of the Marine Carotenoid Astaxanthin by Metabolically Engineered Corynebacterium glutamicum
Production of the Marine Carotenoid Astaxanthin by Metabolically Engineered Corynebacterium glutamicum
Astaxanthin, a red C40 carotenoid, is one of the most abundant marine carotenoids. It is currently used as a food and feed additive in a hundred-ton scale and is furthermore an att...
Enhanced Biosynthesis of Hyaluronic Acid Using Engineered Corynebacterium glutamicum Via Metabolic Pathway Regulation
Enhanced Biosynthesis of Hyaluronic Acid Using Engineered Corynebacterium glutamicum Via Metabolic Pathway Regulation
Hyaluronic acid (HA) is a polysaccharide used in many industries such as medicine, surgery, cosmetics, and food. To avoid potential pathogenicity caused by its native producer, Str...
The atypical kinase ABC1K1 / PGR6 allocates geranylgeranyldiphosphate to the carotenoid biosynthesis pathway
The atypical kinase ABC1K1 / PGR6 allocates geranylgeranyldiphosphate to the carotenoid biosynthesis pathway
Crop fruit species play an important role in life on Earth. Indeed, fruits provide essential nutrients and vitamins which are not synthesized by humans but are necessary for their ...
Secretive glutamate decarboxylase of Corynebacterium glutamicum catalyzes an efficient conversion of glutamic acid to γ-aminobutyric acid
Secretive glutamate decarboxylase of Corynebacterium glutamicum catalyzes an efficient conversion of glutamic acid to γ-aminobutyric acid
γ-Aminobutyric acid (GABA) is a non-protein amino acid produced from the decarboxylation of glutamate by glutamate decarboxylase. Corynebacterium glutamicum is the most promising h...
CRISPRi-Library-Guided Target Identification for Engineering Carotenoid Production by Corynebacterium glutamicum
CRISPRi-Library-Guided Target Identification for Engineering Carotenoid Production by Corynebacterium glutamicum
Corynebacterium glutamicum is a prominent production host for various value-added compounds in white biotechnology. Gene repression by dCas9/clustered regularly interspaced short p...

Back to Top