
Mathematical kinetic modelling followed by in vitro and in vivo assays reveal the bifunctional rice GTPCHII/DHBPS enzymes and demonstrate the key roles of OsRibA proteins in the vitamin B2 pathway
- Author
- Maria Vicente Faustino (UGent) , Tiago Lourenço, Simon Strobbe (UGent) , Da Cao (UGent) , André Fonseca, Isabel Rocha, Dominique Van Der Straeten (UGent) and M. Margarida Oliveira
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- Abstract
- Background: Riboflavin is the precursor of several cofactors essential for normal physical and cognitive development, but only plants and some microorganisms can produce it. Humans thus rely on their dietary intake, which at a global level is mainly constituted by cereals (> 50%). Understanding the riboflavin biosynthesis players is key for advancing our knowledge on this essential pathway and can hold promise for biofortification strategies in major crop species. In some bacteria and in Arabidopsis, it is known that RibA1 is a bifunctional protein with distinct GTP cyclohydrolase II (GTPCHII) and 3,4-dihydroxy-2-butanone-4-phosphate synthase (DHBPS) domains. Arabidopsis harbors three RibA isoforms, but only one retained its bifunctionality. In rice, however, the identification and characterization of RibA has not yet been described. Results: Through mathematical kinetic modeling, we identified RibA as the rate-limiting step of riboflavin pathway and by bioinformatic analysis we confirmed that rice RibA proteins carry both domains, DHBPS and GTPCHII. Phylogenetic analysis revealed that OsRibA isoforms 1 and 2 are similar to Arabidopsis bifunctional RibA1. Heterologous expression of OsRibA1 completely restored the growth of the rib3∆ yeast mutant, lacking DHBPS expression, while causing a 60% growth improvement of the rib1∆ mutant, lacking GTPCHII activity. Regarding OsRibA2, its heterologous expression fully complemented GTPCHII activity, and improved rib3∆ growth by 30%. In vitro activity assays confirmed that both OsRibA1 and OsRibA2 proteins carry GTPCHII/DHBPS activities, but that OsRibA1 has higher DHBPS activity. The overexpression of OsRibA1 in rice callus resulted in a 28% increase in riboflavin content. Conclusions: Our study elucidates the critical role of RibA in rice riboflavin biosynthesis pathway, establishing it as the rate-limiting step in the pathway. By identifying and characterizing OsRibA1 and OsRibA2, showcasing their GTPCHII and DHBPS activities, we have advanced the understanding of riboflavin biosynthesis in this staple crop. We further demonstrated that OsRibA1 overexpression in rice callus increases its riboflavin content, providing supporting information for bioengineering efforts.
- Keywords
- Biofortification, 2,5-diamin-6-ribosylamino-4(3H)-pyrimidinone-5-phosphate, 3,4-dihydroxy-2-butanone-4-phosphate, Limiting step, Oryza sativa, RibA, AGROBACTERIUM-MEDIATED TRANSFORMATION, MULTIPLE SEQUENCE ALIGNMENT, GTP CYCLOHYDROLASE II, RIBOFLAVIN BIOSYNTHESIS, BACILLUS-SUBTILIS, 3,4-DIHYDROXY-2-BUTANONE-4-PHOSPHATE SYNTHASE, FMN HYDROLASE, EXPRESSION, GENE, IDENTIFICATION
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Please use this url to cite or link to this publication: http://hdl.handle.net/1854/LU-01HYJGPH9MW056NMPTADFP5BR3
- MLA
- Vicente Faustino, Maria, et al. “Mathematical Kinetic Modelling Followed by in Vitro and in Vivo Assays Reveal the Bifunctional Rice GTPCHII/DHBPS Enzymes and Demonstrate the Key Roles of OsRibA Proteins in the Vitamin B2 Pathway.” BMC PLANT BIOLOGY, vol. 24, no. 1, 2024, doi:10.1186/s12870-024-04878-z.
- APA
- Vicente Faustino, M., Lourenço, T., Strobbe, S., Cao, D., Fonseca, A., Rocha, I., … Oliveira, M. M. (2024). Mathematical kinetic modelling followed by in vitro and in vivo assays reveal the bifunctional rice GTPCHII/DHBPS enzymes and demonstrate the key roles of OsRibA proteins in the vitamin B2 pathway. BMC PLANT BIOLOGY, 24(1). https://doi.org/10.1186/s12870-024-04878-z
- Chicago author-date
- Vicente Faustino, Maria, Tiago Lourenço, Simon Strobbe, Da Cao, André Fonseca, Isabel Rocha, Dominique Van Der Straeten, and M. Margarida Oliveira. 2024. “Mathematical Kinetic Modelling Followed by in Vitro and in Vivo Assays Reveal the Bifunctional Rice GTPCHII/DHBPS Enzymes and Demonstrate the Key Roles of OsRibA Proteins in the Vitamin B2 Pathway.” BMC PLANT BIOLOGY 24 (1). https://doi.org/10.1186/s12870-024-04878-z.
- Chicago author-date (all authors)
- Vicente Faustino, Maria, Tiago Lourenço, Simon Strobbe, Da Cao, André Fonseca, Isabel Rocha, Dominique Van Der Straeten, and M. Margarida Oliveira. 2024. “Mathematical Kinetic Modelling Followed by in Vitro and in Vivo Assays Reveal the Bifunctional Rice GTPCHII/DHBPS Enzymes and Demonstrate the Key Roles of OsRibA Proteins in the Vitamin B2 Pathway.” BMC PLANT BIOLOGY 24 (1). doi:10.1186/s12870-024-04878-z.
- Vancouver
- 1.Vicente Faustino M, Lourenço T, Strobbe S, Cao D, Fonseca A, Rocha I, et al. Mathematical kinetic modelling followed by in vitro and in vivo assays reveal the bifunctional rice GTPCHII/DHBPS enzymes and demonstrate the key roles of OsRibA proteins in the vitamin B2 pathway. BMC PLANT BIOLOGY. 2024;24(1).
- IEEE
- [1]M. Vicente Faustino et al., “Mathematical kinetic modelling followed by in vitro and in vivo assays reveal the bifunctional rice GTPCHII/DHBPS enzymes and demonstrate the key roles of OsRibA proteins in the vitamin B2 pathway,” BMC PLANT BIOLOGY, vol. 24, no. 1, 2024.
@article{01HYJGPH9MW056NMPTADFP5BR3, abstract = {{Background: Riboflavin is the precursor of several cofactors essential for normal physical and cognitive development, but only plants and some microorganisms can produce it. Humans thus rely on their dietary intake, which at a global level is mainly constituted by cereals (> 50%). Understanding the riboflavin biosynthesis players is key for advancing our knowledge on this essential pathway and can hold promise for biofortification strategies in major crop species. In some bacteria and in Arabidopsis, it is known that RibA1 is a bifunctional protein with distinct GTP cyclohydrolase II (GTPCHII) and 3,4-dihydroxy-2-butanone-4-phosphate synthase (DHBPS) domains. Arabidopsis harbors three RibA isoforms, but only one retained its bifunctionality. In rice, however, the identification and characterization of RibA has not yet been described. Results: Through mathematical kinetic modeling, we identified RibA as the rate-limiting step of riboflavin pathway and by bioinformatic analysis we confirmed that rice RibA proteins carry both domains, DHBPS and GTPCHII. Phylogenetic analysis revealed that OsRibA isoforms 1 and 2 are similar to Arabidopsis bifunctional RibA1. Heterologous expression of OsRibA1 completely restored the growth of the rib3∆ yeast mutant, lacking DHBPS expression, while causing a 60% growth improvement of the rib1∆ mutant, lacking GTPCHII activity. Regarding OsRibA2, its heterologous expression fully complemented GTPCHII activity, and improved rib3∆ growth by 30%. In vitro activity assays confirmed that both OsRibA1 and OsRibA2 proteins carry GTPCHII/DHBPS activities, but that OsRibA1 has higher DHBPS activity. The overexpression of OsRibA1 in rice callus resulted in a 28% increase in riboflavin content. Conclusions: Our study elucidates the critical role of RibA in rice riboflavin biosynthesis pathway, establishing it as the rate-limiting step in the pathway. By identifying and characterizing OsRibA1 and OsRibA2, showcasing their GTPCHII and DHBPS activities, we have advanced the understanding of riboflavin biosynthesis in this staple crop. We further demonstrated that OsRibA1 overexpression in rice callus increases its riboflavin content, providing supporting information for bioengineering efforts.}}, articleno = {{220}}, author = {{Vicente Faustino, Maria and Lourenço, Tiago and Strobbe, Simon and Cao, Da and Fonseca, André and Rocha, Isabel and Van Der Straeten, Dominique and Oliveira, M. Margarida}}, issn = {{1471-2229}}, journal = {{BMC PLANT BIOLOGY}}, keywords = {{Biofortification,2,5-diamin-6-ribosylamino-4(3H)-pyrimidinone-5-phosphate,3,4-dihydroxy-2-butanone-4-phosphate,Limiting step,Oryza sativa,RibA,AGROBACTERIUM-MEDIATED TRANSFORMATION,MULTIPLE SEQUENCE ALIGNMENT,GTP CYCLOHYDROLASE II,RIBOFLAVIN BIOSYNTHESIS,BACILLUS-SUBTILIS,3,4-DIHYDROXY-2-BUTANONE-4-PHOSPHATE SYNTHASE,FMN HYDROLASE,EXPRESSION,GENE,IDENTIFICATION}}, language = {{eng}}, number = {{1}}, pages = {{16}}, title = {{Mathematical kinetic modelling followed by in vitro and in vivo assays reveal the bifunctional rice GTPCHII/DHBPS enzymes and demonstrate the key roles of OsRibA proteins in the vitamin B2 pathway}}, url = {{http://doi.org/10.1186/s12870-024-04878-z}}, volume = {{24}}, year = {{2024}}, }
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