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The potential of biodiesel production from grasses in Thailand through consolidated bioprocessing using a cellulolytic oleaginous yeast, Cyberlindnera rhodanensis CU-CV7

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  • Chuengcharoenphanich, Nuttha
  • Watsuntorn, Wannapawn
  • Qi, Wei
  • Wang, Zhongming
  • Hu, Yunzi
  • Chulalaksananukul, Warawut

Abstract

Biodiesel can be produced from lipids derived from the cellulolytic oleaginous yeast Cyberlindnera rhodanensis CU-CV7 when directly cultivated on undetoxified Thai-grass hydrolysates through consolidated bioprocessing (CBP). The lipid content of CU-CV7 grown on a glucose-based medium was 26.77 ± 0.56% of the cell dry weight (CDW). Strain CU-CV7 is a great CBP-enabling microbe because of its native capacity to generate lipid (22.19 ± 0.72% of CDW) while simultaneously expressing endoglucanase, exoglucanase, and β-glucosidase activities (0.33, 0.06, and 0.20 IU/mL, respectively) on carboxymethylcellulose. Strain CU-CV7 was demonstrated to be a lipase-producing strain and could potentially be employed as a biocatalyst to produce biodiesel with a maximum extracellular lipase activity of 1.47 IU/mL. The lipid production from 13 types of grass without the need for additional cellulase was evaluated. The highest lipid yield was obtained from Napier (Lampang ecotype; 1.01 ± 0.14 g/L) and was comprised of a high proportion of saturated fatty acids. The predicted biodiesel properties were found to be suitable with respect to the biodiesel international standards. Thus, lipid production from these grasses by CU-CV7 appears to open a new path for the renewable biodiesel industry and to satisfy the SDG 7 and SDG 13 goals.

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  • Chuengcharoenphanich, Nuttha & Watsuntorn, Wannapawn & Qi, Wei & Wang, Zhongming & Hu, Yunzi & Chulalaksananukul, Warawut, 2023. "The potential of biodiesel production from grasses in Thailand through consolidated bioprocessing using a cellulolytic oleaginous yeast, Cyberlindnera rhodanensis CU-CV7," Energy, Elsevier, vol. 263(PB).
  • Handle: RePEc:eee:energy:v:263:y:2023:i:pb:s0360544222026457
    DOI: 10.1016/j.energy.2022.125759
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    References listed on IDEAS

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    1. Miao, Zhengang & Tian, Xuemei & Liang, Wenxing & He, Yawen & Wang, Guangyuan, 2020. "Bioconversion of corncob hydrolysate into microbial lipid by an oleaginous yeast Rhodotorula taiwanensis AM2352 for biodiesel production," Renewable Energy, Elsevier, vol. 161(C), pages 91-97.
    2. Vasaki E, Madhu & Karri, Rama Rao & Ravindran, Gobinath & Paramasivan, Balasubramanian, 2021. "Predictive capability evaluation and optimization of sustainable biodiesel production from oleaginous biomass grown on pulp and paper industrial wastewater," Renewable Energy, Elsevier, vol. 168(C), pages 204-215.
    3. Siwina, Siraprapha & Leesing, Ratanaporn, 2021. "Bioconversion of durian (Durio zibethinus Murr.) peel hydrolysate into biodiesel by newly isolated oleaginous yeast Rhodotorula mucilaginosa KKUSY14," Renewable Energy, Elsevier, vol. 163(C), pages 237-245.
    4. Chen, Jiaxin & Zhang, Xiaolei & Tyagi, Rajeshwar Dayal, 2021. "Impact of nitrogen on the industrial feasibility of biodiesel production from lipid accumulated in oleaginous yeast with wastewater sludge and crude glycerol," Energy, Elsevier, vol. 217(C).
    5. Patel, Alok & Arora, Neha & Sartaj, Km & Pruthi, Vikas & Pruthi, Parul A., 2016. "Sustainable biodiesel production from oleaginous yeasts utilizing hydrolysates of various non-edible lignocellulosic biomasses," Renewable and Sustainable Energy Reviews, Elsevier, vol. 62(C), pages 836-855.
    6. Katre, Gouri & Raskar, Shubham & Zinjarde, Smita & Ravi Kumar, V. & Kulkarni, B.D. & RaviKumar, Ameeta, 2018. "Optimization of the in situ transesterification step for biodiesel production using biomass of Yarrowia lipolytica NCIM 3589 grown on waste cooking oil," Energy, Elsevier, vol. 142(C), pages 944-952.
    7. Xiaozan Dai & Hongwei Shen & Qiang Li & Kamal Rasool & Qian Wang & Xue Yu & Lei Wang & Jie Bao & Dayu Yu & Zongbao K. Zhao, 2019. "Microbial Lipid Production from Corn Stover by the Oleaginous Yeast Rhodosporidium toruloides Using the PreSSLP Process," Energies, MDPI, vol. 12(6), pages 1-10, March.
    8. Patel, Alok & Arora, Neha & Mehtani, Juhi & Pruthi, Vikas & Pruthi, Parul A., 2017. "Assessment of fuel properties on the basis of fatty acid profiles of oleaginous yeast for potential biodiesel production," Renewable and Sustainable Energy Reviews, Elsevier, vol. 77(C), pages 604-616.
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