Towards Biorefinery Production of Microalgal Biofuels and Bioproducts: Production of Acetic Acid from the Fermentation of <i>Chlorella</i> sp. and <i>Tetraselmis suecica</i> Hydrolysates — Oak Academic Publishing
Research ArticleOpen AccessGoogle Scholar indexed
Towards Biorefinery Production of Microalgal Biofuels and Bioproducts: Production of Acetic Acid from the Fermentation of <i>Chlorella</i> sp. and <i>Tetraselmis suecica</i> Hydrolysates
Bioprocess Technology Divisions, School of Industrial Technology, Universiti Sains Malaysia, Pulau Pinang, Malaysia
,
Crop and Soil Science Research Centre (SS), Malaysian Agriculture Research and Development Institute (MARDI), Serdang, Malaysia
,
Department of Chemical and Biomolecular Engineering, The University of Melbourne, Victoria, Australia
,
Department of Chemical Engineering, Monash University, Victoria, Australia
1 Bioprocess Technology Divisions, School of Industrial Technology, Universiti Sains Malaysia, Pulau Pinang, Malaysia
2 Crop and Soil Science Research Centre (SS), Malaysian Agriculture Research and Development Institute (MARDI), Serdang, Malaysia
3 Department of Chemical and Biomolecular Engineering, The University of Melbourne, Victoria, Australia
4 Department of Chemical Engineering, Monash University, Victoria, Australia
Successful commercialization of microalgal bio-industry requires the design of an integrated microalgal biorefinery system that facilitates the co-production of biofuels, high-value products and industrial chemicals from the biomass. In this study, we investigated the use of sugar hydrolysate obtained from enzymatic saccharification of microalgal biomass ( Chlorella sp. and T. suecica ) as fermentation feedstock to produce industrially important chemicals, in particular acetic acid and butyric acid. By using hydrolysate with low sugar content as substrate for the anaerobic fermentation (1.5 - 2.4 g/L), we were able to prevent the bacterium C. saccharoperbutylacetonicum from activating its solventogenesis pathway. As a result, the fermentation process generated a product stream that was dominated by organic acids (acetic acid and butyric acid) rather than solvents (butanol, ethanol and acetone). Acetic acid constituted up to 92 wt% of Chlorella ’s fermentation products and 80 wt% of T. suecica ’s fermentation products. For T. suecica , the fermentation consumed almost all of the sugar available in the hydrolysate (up to 92% of initial sugar) and produced a reasonable yield of fermentation products (0.08 g fermentation products/g sugar). The Gompertz equation was successfully used to predict the formation kinetics of acetic acid and other fermentation products across both species. The results in the study demonstrate the production of industrially important chemicals, such as acetic acid and butyric acid, from the fermentation of microalgal sugar. The process described in the study can potentially be used as a value-adding step to generate biochemicals from cell debris in an integrated microalgal biorefinery system.
Halim, R., Danquah, M.K. and Webley, P.A. (2012) Extraction of Oil from Microalgae for Biodiesel Production: A Review. Biotechnology Advances, 30, 709-732.
Brennan, L. and Owende, P. (2010) Biofuels from Microalgae—A Review of Technologies for Production, Processing, and Extractions of Biofuels and Co-Products. Renewable & Sustainable Energy Reviews, 14, 557-577.
Markou, G., Angelidaki, I. and Georgakakis, D. (2012) Microalgal Carbohydrates: An Overview of the Factors Influencing Carbohydrates Production, and of Main Bioconversion Technologies for Production of Biofuels. Applied Microbiology and Biotechnology, 96, 631-645. https://doi.org/10.1007/s00253-012-4398-0
De Castro Araújo, S. and Garcia, V.M.T. (2005) Growth and Biochemical Composition of the Diatom Chaetoceros cf. wighamii Brightwell under Different Temperature, Salinity and Carbon Dioxide Levels. I. Protein, Carbohydrates and Lipids. Aquaculture, 246, 405-412.
Vanthoor-Koopmans, M., Wijffels, R.H., Barbosa, M.J. and Eppink, M.H.M. (2013) Biorefinery of Microalgae for Food and Fuel. Bioresource Technology, 135, 142-149.
Van der Wal, H., Sperber, B.L.H.M., Houweling-Tan, B., Bakker, R.R.C., Brandenburg, W. and López-Contreras, A.M. (2013) Production of Acetone, Butanol, and Ethanol from Biomass of the Green Seaweed Ulva lactuca. Bioresource Technology, 128, 431-437.
Dürre, P. (2008) Fermentative Butanol Production. Annals of the New York Academy of Sciences, 1125, 353-362. https://doi.org/10.1196/annals.1419.009
Kotai, L., Szepvolgyi, J., Szilagyi, M., Zhibin, L., Baiquan, C. and Sharma, V.K.P. (2013) Biobutanol from Renewable Agricultural and Lignocellulose Resources and Its Perspectives as Alternative of Liquid Fuels. https://doi.org/10.5772/52379
Kassim, M.A. and Bhattacharya, S. (2015) Dilute Alkaline Pretreatment for Reducing Sugar Production from Tetraselmis suecica and Chlorella sp. Biomass. Process Biochem.
Ghatak, M.D. and Mahanta, P. (2014) Comparison of Kinetic Models for Biogas Production Rate from Saw Dust. International Journal of Engineering Research and Technology, 3, 248-254. https://doi.org/10.15623/ijret.2014.0307042
Zwietering, M.H., Jongenburger, I., Rombouts, F.M. and van’t Riet, K. (1990) Modeling of the Bacterial Growth Curve. Applied and Environmental Microbiology, 56, 1875-1881.
Ho, S.H., Huang, S.W., Chen, C.Y., Hasunuma, T., Kondo, A. and Chang, J.-S. (2013) Characterization and Optimization of Carbohydrate Production from an Indigenous Microalga Chlorella vulgaris FSP-E. Bioresource Technology, 135, 157-165.
Pal, D., Khozin-Goldberg, I., Cohen, Z. and Boussiba, S. (2011) The Effect of Light, Salinity, and Nitrogen Availability on Lipid Production by Nannochloropsis sp. Applied Microbiology and Biotechnology, 90, 1429-1441. https://doi.org/10.1007/s00253-011-3170-1
Neidhardt, J., Benemann, J.R., Zhang, L. and Melis, A. (1998) Photosystem-II Repair and Chloroplast Recovery from Irradiance Stress: Relationship between Chronic Photoinhibition, Light-Harvesting Chlorophyll Antenna Size and Photosynthetic Productivity in Dunaliella salina (Green Algae). Photosynthesis Research, 56, 175-184. https://doi.org/10.1023/A:1006024827225
LüRling, M., Eshetu, F., Faassen, E.J., Kosten, S. and Huszar, V.L.M. (2013) Comparison of Cyanobacterial and Green Algal Growth Rates at Different Temperatures. Freshwater Biology, 58, 552-559. https://doi.org/10.1111/j.1365-2427.2012.02866.x
Westerhoff, P., Hu, Q., Esparza-Soto, M. and Vermaas, W. (2010) Growth Parameters of Microalgae Tolerant to High Levels of Carbon Dioxide in Batch and Continuous-Flow Photobioreactors. Environmental Technology, 31, 523-532. https://doi.org/10.1080/09593330903552078
Xin, L., Hong-ying, H. and Yu-ping, Z. (2011) Growth and Lipid Accumulation Properties of a Freshwater Microalga Scenedesmus sp. under Different Cultivation Temperature. Bioresource Technology, 102, 3098-3102.
Gorain, P.C., Bagchi, S.K. and Mallick, N. (2013) Effects of Calcium, Magnesium and Sodium Chloride in Enhancing Lipid Accumulation in Two Green Microalgae. Environmental Technology, 34, 1887-1894. https://doi.org/10.1080/09593330.2013.812668
Zhila, N.O., Kalacheva, G.S. and Volova, T.G. (2011) Effect of Salinity on the Biochemical Composition of the Alga Botryococcus braunii Kütz IPPAS H-252. Journal of Applied Phycology, 23, 47-52. https://doi.org/10.1007/s10811-010-9532-8
Kaewkannetra, P., Enmak, P. and Chiu, T. (2012) The Effect of CO2 and Salinity on the Cultivation of Scenedesmus obliquus for Biodiesel Production. Biotechnology and Bioprocess Engineering, 17, 591-597. https://doi.org/10.1007/s12257-011-0533-5
Khatoon, H., Abdu Rahman, N., Banerjee, S., Harun, N., Suleiman, S.S., Zakaria, N.H., Lananan, F., Abdul Hamid, S.H. and Endut, A. (2014) Effects of Different Salinities and pH on the Growth and Proximate Composition of Nannochloropsis sp. and Tetraselmis sp. Isolated from South China Sea Cultured under Control and Natural Condition. International Biodeterioration & Biodegradation, 95, 11-18.
Renaud, S.M. and Parry, D.L. (1994) Microalgae for Use in Tropical Aquaculture II: Effect of Salinity on Growth, Gross Chemical Composition and Fatty Acid Composition of Three Species of Marine Microalgae. Journal of Applied Phycology, 6, 347-356. https://doi.org/10.1007/BF02181949
Bohutskyi, P., Betenbaugh, M.J. and Bouwer, E.J. (2014) The Effects of Alternative Pretreatment Strategies on Anaerobic Digestion and Methane Production from Different Algal Strains. Bioresource Technology, 155, 366-372.
Kapaun, E. and Reisser, W. (1995) A Chitin-Like Glycan in the Cell Wall of a Chlorella sp. (Chlorococcales, Chlorophyceae). Planta, 197, 577-582. https://doi.org/10.1007/BF00191563
Potts, T., Du, J., Paul, M., May, P., Beitle, R. and Hestekin, J. (2012) The Production of Butanol from Jamaica Bay Macro Algae. Environmental Progress & Sustainable Energy, 31, 29-36. https://doi.org/10.1002/ep.10606
Efremenko, E.N., Nikolskaya, A.B., Lyagin, I.V., Senko, O.V., Makhlis, T.A., Stepanov, N.A., Maslova, O.V., Mamedova, F. and Varfolomeev, S.D. (2012) Production of Biofuels from Pretreated Microalgae Biomass by Anaerobic Fermentation with Immobilized Clostridium acetobutylicum Cells. Bioresource Technology, 114, 342-348.
Ellis, J.T., Hengge, N.N., Sims, R.C. and Miller, C.D. (2012) Acetone, Butanol, and Ethanol Production from Wastewater Algae. Bioresource Technology, 111, 491-495.
Cheng, H.H., Whang, L.M., Chan, K.C., Chung, M.C., Wu, S.H., Liu, C.P., Tien, S.Y., Chen, S.Y., Chang, J.S. and Lee, W.J. (2015) Biological Butanol Production from Microalgae-Based Biodiesel Residues by Clostridium acetobutylicum. Bioresource Technology, 184, 379-385.
Wang, Y., Guo, W., Cheng, C.L., Ho, S.H., Chang, J.S. and Ren, N. (2016) Enhancing Bio-Butanol Production from Biomass of Chlorella vulgaris JSC-6 with Sequential Alkali Pretreatment and Acid Hydrolysis. Bioresource Technology, 200, 557-564.
Halim, R., Webley, P.A. and Martin, G.J. (2015) The CIDES Process: Fractionation of Concentrated Microalgal Paste for Co-Production of Biofuel, Nutraceuticals, and High-Grade Protein Feed. Algal Research.