Zhang, Z., Chen, Y., Klausen, L. H., Skaanvik, S. A., Wang, D., Chen, J., & Dong, M. (2023). The rational design and development of microalgae-based biohybrid materials for biomedical applications. Engineering.
Gauthier, M. R., Senhorinho, G. N. A., & Scott, J. A. (2020). Microalgae under environmental stress as a source of antioxidants. Algal research, 52, 102104.
Ljubic, A., Thulesen, E. T., Jacobsen, C., & Jakobsen, J. (2021). UVB exposure stimulates production of vitamin D3 in selected microalgae. Algal Research, 59, 102472.
Ruiz, J., Olivieri, G., De Vree, J., Bosma, R., Willems, P., Reith, J. H., & Barbosa, M. J. (2016). Towards industrial products from microalgae. Energy & Environmental Science, 9(10), 3036–3043.
Benavente-Valdés, J. R., Aguilar, C., Contreras-Esquivel, J. C., Méndez-Zavala, A., & Montañez, J. (2016). Strategies to enhance the production of photosynthetic pigments and lipids in chlorophycae species. Biotechnology Reports, 10, 117–125.
Article PubMed PubMed Central Google Scholar
Jha, D., Jain, V., Sharma, B., Kant, A., & Garlapati, V. K. (2017). Microalgae-based pharmaceuticals and nutraceuticals: An emerging field with immense market potential. ChemBioEng Reviews, 4(4), 257–272.
Li, P., & Lin, J. (2012). Effect of ultraviolet radiation on photosynthesis, biomass, and fatty acid content and profile of a Scenedesmus rubescens-like microalga. Bioresource Technology, 111, 316–322.
Article CAS PubMed Google Scholar
Zhang, X., Tang, X., Wang, M., Zhang, W., Zhou, B., & Wang, Y. (2017). ROS and calcium signaling mediated pathways involved in stress responses of the marine microalgae Dunaliella salina to enhanced UV-B radiation. Journal of Photochemistry and Photobiology B: Biology, 173, 360–367.
Article CAS PubMed Google Scholar
Araújo, R. G., Alcantar-Rivera, B., Meléndez-Sánchez, E. R., Martínez-Prado, M. A., Sosa-Hernández, J. E., Iqbal, H. M., & Martínez-Ruiz, M. (2022). Effects of UV and UV-vis irradiation on the production of microalgae and macroalgae: New alternatives to produce photobioprotectors and biomedical compounds. Molecules, 27(16), 5334.
Article PubMed PubMed Central Google Scholar
Zhao, Y., Li, Q., Gu, D., Yu, L., & Yu, X. (2022). The synergistic effects of gamma-aminobutyric acid and salinity during the enhancement of microalgal lipid production in photobioreactors. Energy Conversion and Management, 267, 115928.
Seifikalhor, M., Aliniaeifard, S., Hassani, B., Niknam, V., & Lastochkina, O. (2019). Diverse role of γ-aminobutyric acid in dynamic plant cell responses. Plant cell reports, 38, 847–867.
Article CAS PubMed Google Scholar
Chakravorty, M., Jaiswal, K. K., Bhatnagar, P., Parveen, A., Upadhyay, S., Vlaskin, M. S., & Kumar, V. (2024). Exogenous GABA supplementation to facilitate Cr (III) tolerance and lipid biosynthesis in Chlorella sorokiniana. Journal of Environmental Management, 355, 120441.
Article CAS PubMed Google Scholar
Bhatnagar, P., Gururani, P., Rawat, J., Jaiswal, K. K., Gautam, P., Nanda, M., … & Kumar, V. (2024). Influence of GABA (Gamma-aminobutyric acid) supplementation on biomass, pigments, lipid and protein content of Pseudochlorella pringsheimii under salinity stress. Current Research in Biotechnology, 100223.
Li, X., Zhang, X., Zhao, Y., & Yu, X. (2020). Cross-talk between gama-aminobutyric acid and calcium ion regulates lipid biosynthesis in Monoraphidium sp. QLY-1 in response to combined treatment of fulvic acid and salinity stress. Bioresource Technology, 315, 123833.
Article CAS PubMed Google Scholar
Li, Q., Zhao, Y., Ding, W., Han, B., Geng, S., Ning, D., & Yu, X. (2021). Gamma-aminobutyric acid facilitates the simultaneous production of biomass, astaxanthin and lipids in Haematococcus pluvialis under salinity and high-light stress conditions. Bioresource Technology, 320, 124418.
Article CAS PubMed Google Scholar
Zhao, Y., Wang, Q., Gu, D., Huang, F., Liu, J., Yu, L., & Yu, X. (2024). Melatonin, a phytohormone for enhancing the accumulation of high-value metabolites and stress tolerance in microalgae: Applications, mechanisms, and challenges. Bioresource Technology, 393, 130093.
Article CAS PubMed Google Scholar
Jaiswal, K. K., Kumar, V., Gururani, P., Vlaskin, M. S., Parveen, A., Nanda, M., … & Grigorenko, A. V. (2022). Bio-flocculation of oleaginous microalgae integrated with municipal wastewater treatment and its hydrothermal liquefaction for biofuel production. Environmental Technology & Innovation, 102340.
Lichtenthaler, H. K. (1987). Chlorophylls and carotenoids: Pigments of photosynthetic biomembranes. Methods in Enzymology, 148, 350–382. https://doi.org/10.1016/0076-6879(87)48036-1
Laurens, L. M. L., Olstad, J. L., & Templeton, D. W. (2020). Total protein content determination of microalgal biomass by elemental nitrogen analysis and a dedicated nitrogen-to-protein conversion factor. Biofuels from Algae: Methods and Protocols, 233–242.
Bligh, E. G., & Dyer, W. J. (1959). A rapid method of total lipid extraction and purification. Canadian journal of biochemistry and physiology, 37(8), 911–917.
Article CAS PubMed Google Scholar
Arora, N., Patel, A., Pruthi, P. A., & Pruthi, V. (2016). Synergistic dynamics of nitrogen and phosphorous influences lipid productivity in Chlorella minutissima for biodiesel production. Bioresource Technology, 213, 79–87.
Article CAS PubMed Google Scholar
Sturgeon, R. J. (1990). Monosaccharides. In Methods in plant biochemistry (Vol. 2, pp. 1–37). Academic Press.
Rastogi, R. P., Madamwar, D., Nakamoto, H., & Incharoensakdi, A. (2020). Resilience and self-regulation processes of microalgae under UV radiation stress. Journal of Photochemistry and Photobiology C: Photochemistry Reviews, 43, 100322.
Singh, S. P., Rastogi, R. P., Sinha, R. P., & Häder, D. P. (2013). Photosynthetic performance of Anabaena variabilis PCC 7937 under simulated solar radiation. Photosynthetica, 51, 259–266.
Zhao, Y., Song, X., Zhong, D. B., Yu, L., & Yu, X. (2020). γ-Aminobutyric acid (GABA) regulates lipid production and cadmium uptake by Monoraphidium sp QLY-1 under cadmium stress. Bioresource Technology, 297, 122500.
Article CAS PubMed Google Scholar
Kumar, V., Nanda, M., Kumar, S., & Chauhan, P. K. (2018). The effects of ultraviolet radiation on growth, biomass, lipid accumulation and biodiesel properties of microalgae. Energy Sources, Part A: Recovery, Utilization, and Environmental Effects, 40(7), 787–793.
Singh, R., Upadhyay, A. K., Singh, D. V., Singh, J. S., & Singh, D. P. (2019). Photosynthetic performance, nutrient status and lipid yield of microalgae Chlorella vulgaris and Chlorococcum humicola under UV-B exposure. Current Research in Biotechnology, 1, 65–77.
Teng, C. S., Xue, C., Lin, J. Y., & Ng, I. S. (2022). Towards high-level protein, beta-carotene, and lutein production from Chlorella sorokiniana using aminobutyric acid and pseudo seawater. Biochemical Engineering Journal, 184, 108473.
Salah, A., Zhan, M., Cao, C., Han, Y., Ling, L., Liu, Z., & Jiang, Y. (2019). γ-Aminobutyric acid promotes chloroplast ultrastructure, antioxidant capacity, and growth of waterlogged maize seedlings. Scientific reports, 9(1), 484.
Article PubMed PubMed Central Google Scholar
Li, L., Chen, Z., & Huang, Q. (2020). Exogenous γ-aminobutyric acid promotes biomass and astaxanthin production in Haematococcus pluvialis. Algal research, 52, 102089.
Zhao, Y., Li, Q., Chen, D., Yang, M., Huang, F., Liu, J., & Yu, L. (2025). Exploiting synergy of dopamine and stressful conditions in enhancing Haematococcus lacustris biomass and astaxanthin yield. Bioresource Technology, 417, 131848.
Article CAS PubMed Google Scholar
Zhang, X., Tang, X., Zhou, B., Hu, S., & Wang, Y. (2015). Effect of enhanced UV-B radiation on photosynthetic characteristics of marine microalgae Dunaliella salina (Chlorophyta, Chlorophyceae). Journal of experimental marine biology and ecology, 469, 27–35.
Li, X., Gu, D., You, J., Qiao, T., & Yu, X. (2022). Gamma-aminobutyric acid coupled with copper ion stress stimulates lipid production of green microalga Monoraphidium sp. QLY-1 through multiple mechanisms. Bioresource Technology, 352, 127091.
Article CAS PubMed Google Scholar
Miranda, M. T., Sepúlveda, F. J., Arranz, J. I., Montero, I., & Rojas, C. V. (2018). Physical-energy characterization of microalgae Scenedesmus and experimental pellets. Fuel, 226, 121–126.
Arif, M., Li, Y., El-Dalatony, M. M., Zhang, C., Li, X., & Salama, E. S. (2021). A complete characterization of microalgal biomass through FTIR/TGA/CHNS analysis: An approach for biofuel generation and nutrients removal. Renewable Energy, 163, 1973–1982.
Kothari, R., Pathak, V. V., Kumar, V., & Singh, D. P. (2012). Experimental study for growth potential of unicellular alga Chlorella pyrenoidosa on dairy waste water: An integrated approach for treatment and biofuel production. Bioresource technology, 116, 466–470.
Comments (0)