Prioritizing Wild Yeast Strains for Macroalgal Bioethanol Production

被引:1
作者
Hebbale, Deepthi [1 ,2 ]
Mishra, Ravi Shankar [1 ]
Ramachandra, T. V. [1 ,2 ]
机构
[1] Indian Inst Sci, Ctr Ecol Sci, Energy & Wetlands Res Grp, CES 15,New Biosci Bldg,Third Floor,E Wing New D G, Bangalore 560012, Karnataka, India
[2] Indian Inst Sci, Ctr Sustainable Technol, Bangalore 560012, Karnataka, India
关键词
Bioethanol; Macroalgae; Fermentation; Yeast; Thermotolerant; Ethanologenic; ETHANOL-PRODUCTION; SACCHAROMYCES-CEREVISIAE; KLUYVEROMYCES-MARXIANUS; GRACILARIA-VERRUCOSA; FERMENTING YEAST; HIGH-TEMPERATURE; MARINE YEAST; ULVA-LACTUCA; BIO-ETHANOL; FERMENTATION;
D O I
10.1007/s12155-021-10283-3
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Y Macroalgal biomass for bioethanol production has proved to be a viable alternative to feedstocks of first-generation (food crops rich in starch) and second-generation biofuel (agricultural residues and woody biomasses rich in lignocellulosic components). Production of bioethanol from biomass involves fermentation of mixed monosugars such as glucose, xylose, galactose, rhamnose, mannose, and fucose, and abundant monomer is found in algal biomass as well as lignocellulosic biomass. The inability of commonly used Saccharomyces cerevisiae to ferment xylose (pentose) sugar has led to the exploration of robust yeast strains that can utilize mixed sugars to produce ethanol. This study focuses on the isolation of yeast strains from various fruits and fermented products to determine efficacy in ethanol production using synthetic and macroalgal sugar. Two strains prioritized based on ethanol yield are Meyerozyma caribbica (isolated from cashew-fermented juice) and Pichia kudriavzevii (isolated from toddy). Strain P. kudriavzevii is thermotolerant (at 45 degrees C), whereas M. caribbica is tolerant to high salinity and produced ethanol of 2.6 g/L from 5.95 g/L of sugar, achieving 88.8% fermentation efficiency. P. kudriavzevii strain exhibits ethanol tolerance up to 4%. Fermentation of synthetic glucose produced 1.35 g/L and 1.44 g/L ethanol by M. caribbica and P. kudriavzevii strains with fermentation efficiencies of 83.6% and 94.8% respectively. M. caribbica strain fermented xylose and produced 1.4 g/L of ethanol achieving 14.9% fermentation efficiency, while simultaneous saccharification and fermentation process using P. kudriavzevii strain exhibited efficiency of 65.1% and 80.9% for Enteromorpha intestinalis and Ulva lactuca respectively. Cellulolytic activity of the prioritized strains was determined to carry out consolidated bioprocess.
引用
收藏
页码:202 / 217
页数:16
相关论文
共 50 条
  • [11] Bioethanol from Macroalgal Biomass: Utilization of Marine Yeast for Production of the Same
    Yasmin Khambhaty
    Devang Upadhyay
    Yogesh Kriplani
    Nidhi Joshi
    Kalpana Mody
    M. R. Gandhi
    BioEnergy Research, 2013, 6 : 188 - 195
  • [12] Bioethanol from Macroalgal Biomass: Utilization of Marine Yeast for Production of the Same
    Khambhaty, Yasmin
    Upadhyay, Devang
    Kriplani, Yogesh
    Joshi, Nidhi
    Mody, Kalpana
    Gandhi, M. R.
    BIOENERGY RESEARCH, 2013, 6 (01) : 188 - 195
  • [13] Feasibility and Sustainability of Bioethanol Production from Starchy restaurants' Bio-wastes by New Yeast Strains
    Hashem, M.
    Asseri, Tahani Y. A.
    Alamri, S. A.
    Alrumman, S. A.
    WASTE AND BIOMASS VALORIZATION, 2019, 10 (06) : 1617 - 1626
  • [14] Bioethanol production from oil palm trunk juice by different strains of yeast and bacteria
    Norhazimah, A. H.
    Faizal, C. K. M.
    RESEARCH JOURNAL OF CHEMISTRY AND ENVIRONMENT, 2013, 17 (10): : 90 - 93
  • [15] Recent advances in conventional and genetically modified macroalgal biomass as substrates in bioethanol production: a review
    Priyadharsini, P.
    Dawn, S. S.
    Arun, J.
    Ranjan, Alok
    Jayaprabakar, J.
    BIOFUELS-UK, 2023, 14 (10): : 1103 - 1118
  • [16] Micro and macroalgal biomass: A renewable source for bioethanol
    John, Rojan P.
    Anisha, G. S.
    Nampoothiri, K. Madhavan
    Pandey, Ashok
    BIORESOURCE TECHNOLOGY, 2011, 102 (01) : 186 - 193
  • [17] Saccharification of starchy food waste through thermochemical and enzymatic pretreatment, towards enhanced bioethanol production via newly isolated non-conventional yeast strains
    Ntaikou, I.
    Alexandropoulou, M.
    Kamilari, M.
    Alamri, S. A.
    Moustafa, Y. S.
    Hashem, M.
    Antonopoulou, G.
    Lyberatos, G.
    ENERGY, 2023, 281
  • [18] Efficient bioethanol production from pomegranate peels by newly isolated Kluyveromyces marxianus
    Demiray, Ekin
    Karatay, Sevgi Ertugrul
    Donmez, Gonul
    ENERGY SOURCES PART A-RECOVERY UTILIZATION AND ENVIRONMENTAL EFFECTS, 2020, 42 (06) : 709 - 718
  • [19] Development of multiple inhibitor tolerant yeast via adaptive laboratory evolution for sustainable bioethanol production
    Hemansi
    Himanshu
    Patel, Anil Kumar
    Saini, Jitendra Kumar
    Singhania, Reeta Rani
    BIORESOURCE TECHNOLOGY, 2022, 344
  • [20] Yeast Cellular Stress: Impacts on Bioethanol Production
    Eardley, Joshua
    Timson, David J.
    FERMENTATION-BASEL, 2020, 6 (04):