Insights into Co-Cultivation of Photosynthetic Microorganisms for Novel Molecule Discovery and Enhanced Production of Specialized Metabolites
Abstract
1. Introduction
2. Ecological Interactions of Photosynthetic Microorganisms Related with the Production of Specialized Metabolism
3. Recent Status of Co-Cultivation of Photosynthetic Microorganisms
| Co-Culture Type | Organism | Product/Application | Co-Culture Condition | Main Findings | Compounds Discovery with Biological Activity | Reference |
|---|---|---|---|---|---|---|
| Microalgae/cyanobacteria | Botryococcus braunii/Nostoc muscorum | Biofuels | Bioreactor | 50% enhancement in nitrogen fixation. 27% enhancement in lipid content. 38% enhancement in biomass content. | Triacontanol (phytohormone) | [58] |
| Microalgae/bacteria | Chaetoceros calcitrans, Tetraselmis suecica, Nannochloropsis sp., and Thalassiosira weissflogii/Vibrio parahaemolyticus | Antimicrobial compound production | - | V. parahaemolyticus was significantly inhibited in co-culture. | Hydrophilic compounds of C. calcitrans with antibiotic activities | [65] |
| Microalgae/microalgae | Chlorella vulgaris/Scenedesmus acutus | Biomass production and nutrient removal efficiencies | Thin-layer cascade (TLC) and thin-layer raceway pond | Better nutrient removal efficiencies. Maximum biomass densities of 1.3 and 2.1 g DWL−1. | Antifungal compounds against Pythium ultimum | [66] |
| Microalgae/animalia | Porosira glacialis/zooplankton | Changes in bioactivity and metabolome | Outdoor 6000 L glass fiber vertical column open photobioreactor | Induced the production of compounds with cytotoxic activity towards normal lung fibroblasts. | Production of novels carotenoids in P. glacialis | [67] |
| Cyanobacteria/bacteria | Nostoc sp./Enterobacter aerogenes | Bioelectricity, bioactive compound production, wastewater treatment | Two-chambered microbial fuel cell (MFC) with the algae in the cathode chamber and the bacteria in the anode chamber | MFC generated a maximum power density of 168 W/m2 and removed 84% of the chemical oxygen demand from the wastewater. | FTIR analysis of the extract confirmed the presence of bioactive compounds | [60] |
| Microalgae/microalgae | Ettlia sp./Chlorella sp. | Biomass productivity and biodiesel production | Photobioreactor | Higher biomass productivity in coculture than in the monoculture of either Ettlia or Chlorella. | - | [59] |
| Microalgae/bacteria | Chlorella pyrenoidosa/Rhodobacter capsulatus | Wastewater treatment, biomass production, lipid production | Batch culture (250 mL flasks) | The co-culture produced more biomass and lipids than either monoculture. | - | [62] |
| Cyanobacteria/microalgae | Leptolyngbya tenuis/Chlorella ellipsoidea | Biodiesel production, carbon sequestration, cadmium accumulation | Batch culture (250 mL flasks) | The co-culture produced more biomass and lipids than either monoculture. It was also more effective at sequestering carbon and accumulating cadmium. | - | [70] |
| Microalgae/fungi | Chlorella sorokiniana/Rhodotorula glutinis C. vulgaris/Aspergillus sp. | Biofuel production and bioremediation | - | Enhanced phosphate removal efficiencies. Enhanced ammonium–nitrogen removal. Enhanced biomass and oil production. | - | [71,72] |
| Cyanobacteria/cyanobacteria | Anabaena cylindrica/Nostoc sp. | Polysaccharides, extracellular proteins, nitrogen fixation, biofertilizer | 400 mL bubble column photobioreactor | The co-culture produced more biomass, polysaccharides, extracellular proteins, and it had higher nitrogenase and photosynthetic activity than either monoculture. | - | [73] |
| Microalgae/fungi/bacteria | Chlorella vulgaris/Aspergillus niger/Enterobacter aerogenes | Wastewater treatment | Photobioreactor (16.8 L) | The co-culture was more effective at removing organic matter and nutrients from wastewater than either monoculture. | - | [63] |
| Microalgae/bacteria | Chlamydomonas reinhardtii/Escherichia coli, Pseudomonas stutzeri and Pseudomonas putida/unknown bacterial consortium | Hydrogen production | Bioreactors (100 mL) | Chlamydomonas could grow properly in presence of bacterial consortium and hydrogen evolution improved up to 56% in these co-cultures. | - | [61] |
| Microalgae/bacteria | Chaetoceros muelleri/Vibrio parahaemolyticus | Algicidal activity (algal bloom control) | Batch culture (250 mL flasks) | Algicidal activity against Chaetoceros muelleri due to extracellular metabolites produced by the bacteria. | - | [69] |
| Microalgae/bacteria | Streptomyces rosealbus/Chlorella vulgaris | Biodiesel production, bioflocculation formation | Batch culture (1 L flasks) | Co-culture produced more biomass and lipids, and better bioflocculation properties. | - | [74] |
| Microalgae/bacteria | Chlamydomonas reinhardtii/Escherichia coli | Biomass production, starch production | Batch culture (250 mL flasks) | The co-culture produced more biomass and starch than either monoculture. | - | [75] |
| Microalgae/fungi | Chlamydomonas reinhardtii/Saccharomyces cerevisiae | Biomass production | Batch culture (250 mL flasks) | The co-culture produced more biomass. Gene expression levels of 363 green algae and 815 yeast genes were altered through co-cultivation. | - | [76] |
| Microalgae/bacteria | Free-living Symbiodinium/Alteromonas abrolhosensis | Algal bloom control | - | Algicidal activity against free-living Symbiodinium, attributed to the production of extracellular metabolites by the bacteria. The metabolites produced oxidative stress and photosynthetic system damage in the algae. | - | [68] |
| Microalgae/fungi | Chlorella vulgaris/Aspergillus niger | Swine wastewater treatment | Batch culture (250 mL flasks) | The co-culture was able to form aggregated structures, which were mediated by extracellular polymeric substances (EPSs), simplifying the wastewater treatment. | - | [64] |
Extreme-Tolerant and Extremophilic Photosynthetic Microorganisms in Co-Cultivation Studies
4. Limitations on the Understanding of Ecological Interactions and Available Methodologies for Co-Cultivation
5. -Omics-Based Research and Standardized Methodologies as Future Directions of Co-Cultivation Methods
6. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Rojas-Villalta, D.; Gómez-Espinoza, O.; Murillo-Vega, F.; Villalta-Romero, F.; Guerrero, M.; Guillén-Watson, R.; Núñez-Montero, K. Insights into Co-Cultivation of Photosynthetic Microorganisms for Novel Molecule Discovery and Enhanced Production of Specialized Metabolites. Fermentation 2023, 9, 941. https://doi.org/10.3390/fermentation9110941
Rojas-Villalta D, Gómez-Espinoza O, Murillo-Vega F, Villalta-Romero F, Guerrero M, Guillén-Watson R, Núñez-Montero K. Insights into Co-Cultivation of Photosynthetic Microorganisms for Novel Molecule Discovery and Enhanced Production of Specialized Metabolites. Fermentation. 2023; 9(11):941. https://doi.org/10.3390/fermentation9110941
Chicago/Turabian StyleRojas-Villalta, Dorian, Olman Gómez-Espinoza, Francinie Murillo-Vega, Fabián Villalta-Romero, Maritza Guerrero, Rossy Guillén-Watson, and Kattia Núñez-Montero. 2023. "Insights into Co-Cultivation of Photosynthetic Microorganisms for Novel Molecule Discovery and Enhanced Production of Specialized Metabolites" Fermentation 9, no. 11: 941. https://doi.org/10.3390/fermentation9110941
APA StyleRojas-Villalta, D., Gómez-Espinoza, O., Murillo-Vega, F., Villalta-Romero, F., Guerrero, M., Guillén-Watson, R., & Núñez-Montero, K. (2023). Insights into Co-Cultivation of Photosynthetic Microorganisms for Novel Molecule Discovery and Enhanced Production of Specialized Metabolites. Fermentation, 9(11), 941. https://doi.org/10.3390/fermentation9110941

