A new genome-scale metabolic model of oleaginous microalgae with refined lipid metabolism elucidates Microchloropsis gaditana mutant phenotypes.
Dupont-Thibert, C.; Roy, S.; Carneiro, S.; Pereira, B.; Careira, R.; Vilaca, P.; Collin, S.; Marechal, E.; Billey, E.; Curien, G.; Durot, M.; Jouhet, J.
Show abstract
The oleaginous microalga Microchloropsis gaditana (formerly Nannochloropsis gaditana) has gained large interest due to its potential to produce lipids for a wide range of biotechnological applications. To optimize M. gaditana growth conditions and develop new strains to enhance lipid synthesis and accumulation, a broad understanding of the organism metabolism is essential. Computational models such as genome-scale metabolic models constitute powerful tools for unravelling microorganism metabolism. In this work we present iMgadit23, a new genome-scale metabolic model for M. gaditana. Model covers 2330 reactions involving 1977 metabolites and associated with 889 genes. Pathways involved in membrane and storage glycerolipid biosynthesis and degradation have undergone thorough manual curation and have been comprehensively described based on current knowledge of M. gaditana lipid metabolism. Additionally, we developed a detailed 2D-pathway map of model content to provide a systems-level visualization of M. gaditana metabolism. We demonstrated the predictive capabilities of iMgadit23, validating its ability to qualitatively and quantitatively capture in vivo growth phenotypes under diverse environmental and genetic conditions. Model was also able to capture the role of the Bubblegum acyl-CoA synthetase in remodeling M. gaditana lipid metabolism. iMgadit23 and its 2D map constitute valuable tools to increase understanding of M. gaditana metabolism and deciphering mutant phenotypes, specifically in the context of lipid metabolism. The model holds significant promise in predicting M. gaditana metabolic capabilities, facilitating strain engineering, and optimizing cultivation processes for a broad range of industrial applications.
Matching journals
The top 3 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Gene expression analysis of Cyanophora paradoxa reveals conserved abiotic stress responses between basal algae and flowering plants 94%
- Flv3A facilitates O2 photoreduction and affects H2 photoproduction independently of Flv1A in diazotrophic Anabaena filaments 93%
- ppGpp influences protein protection, growth and photosynthesis in Phaeodactylum tricornutum 93%
Similar papers in this journal
- Engineered production of isoprene from the model green microalga Chlamydomonas reinhardtii 95%
- Metabolic growth coupling strategies for in vivo enzyme selection systems 94%
- A comprehensive genome-scale model for Rhodosporidium toruloides IFO0880 accounting for functional genomics and phenotypic data 93%
Similar papers in this journal
- Respiratory and C4-photosynthetic NAD-malic enzyme coexist in bundle sheath cells mitochondria and evolved via association of differentially adapted subunits 92%
- DYRKP kinase regulates cell wall degradation in Chlamydomonas by inducing matrix metalloproteinase expression 92%
- CAM emerges in a leaf metabolic model under water-saving constraints in different environments 92%
Similar papers in this journal
- Fatty acid photodecarboxylase is an ancient photoenzyme responsible for hydrocarbon formation in the thylakoid membranes of algae 95%
- Plastidic Δ6 Fatty-Acid Desaturases With Distinctive Substrate Specificity Regulate The Pool Of C18-PUFAs In The Ancestral Picoalga Ostreococcus tauri 94%
- Both major xanthophyll cycles present in nature can provide Non-Photochemical Quenching in the model diatom Phaeodactylum tricornutum 93%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.