Fermentation of Rice Straw Hydrolyzates for Bioethanol Production and Increasing its Yield by Applying Random Physical and Chemical Mutagenesis

被引:6
作者
Ningthoujam, Reema [1 ]
Jangid, Pankaj [1 ]
Yadav, Virendra Kumar [2 ]
Ali, Daoud [3 ]
Alarifi, Saud [3 ]
Patel, Ashish [2 ]
Dhingra, Harish Kumar [1 ]
机构
[1] Mody Univ Sci & Technol, Sch Liberal Arts & Sci SLAS, Dept Biosci, Sikar 332311, Rajasthan, India
[2] Hemchandracharya North Gujarat Univ, Dept Life Sci, Patan 384265, Gujarat, India
[3] King Saud Univ, Dept Zool, Coll Sci, POB 2455, Riyadh 11451, Saudi Arabia
关键词
Fermentation; Rice straw; Pretreatment; Mutagenesis; Bioethanol; BIOLOGICAL PRETREATMENT; ETHANOL-PRODUCTION; CELLULOSE; GLUCOSE; BIOMASS; OPTIMIZATION; HYDROLYSIS; PARAMETERS;
D O I
10.1007/s12649-024-02597-y
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The increase in rice straw production and their non-utilization is a major global challenge. Even though it is an eco-friendly feedstock for the bioconversion of energy production separation of cellulose from the rice straw fiber is one of the main limitations that obstruct the application of such lignocellulosic feedstock. In the present research work, acid-alkali pretreatment technologies were applied to the rice straw to increase enzymatic accessibility and improve cellulose digestibility. The rice straw was physically and chemically treated and the chemical pretreatment with 4% sodium hydroxide released a maximum cellulose of 120.33 mg/L. The constituents of cellulose, hemicellulose, and lignin were estimated while the functional groups were identified by using Infrared spectroscopy. Further, the morphological and structural characterization between the untreated and the treated rice straw were analyzed by Scanning Electron Micrograph (SEM) analysis which demonstrated a highly distorted structure in the pretreated biomass. Rice straw was used for the production of bioethanol, with simultaneous saccharification fermentation (SSF) yielding higher ethanol (21.77%) than separate hydrolysis fermentation (SHF) (11.65%) by using commercial enzymes and yeast isolates, and optimal production conditions were determined. Pre-treating rice straw with 4% NaOH, optimized enzyme concentration (2:1:1), and SSF with Saccharomyces cerevisiae or 72-hour incubation at pH 4 yielded the highest bioethanol production. mutagenesis using UV rays and chemicals like Ethidium Bromide (EtBr) and Ethyl Methane Sulfonate (EMS) improved bioethanol yield, with EMS treatment exhibiting the most significant increase i.e. with the wild strain (21.77%) and with the mutant strain (24.29%) was achieved. Such a strategy will be eco-friendly and effective for the reduction of biomass and the production of bioethanol at a much lower cost.
引用
收藏
页码:5105 / 5123
页数:19
相关论文
共 36 条
[21]   Bioconversion process of rice straw by thermotolerant cellulolytic Streptomyces viridiochromogenes under solid-state fermentation conditions for bioethanol production [J].
El-Naggar, Noura El-Ahmady ;
Sherief, A. A. ;
Hamza, Sarah Shawky .
AFRICAN JOURNAL OF BIOTECHNOLOGY, 2011, 10 (56) :11998-12011
[22]   Potential of barley straw for high titer bioethanol production applying pre-hydrolysis and simultaneous saccharification and fermentation at high solid loading [J].
Paschos, Thomas ;
Louloudi, Argiro ;
Papayannakos, Nikolaos ;
Kekos, Dimitris ;
Mamma, Diomi .
BIOFUELS-UK, 2022, 13 (04) :467-473
[23]   Fermentation of Rice Straw and Its Hydrolysate with Sludge for Ethanol Production [J].
Lu, Ji-Liang ;
Wang, Zhen ;
Tao, Min ;
Zheng, Han ;
Lou, Chao-Gang ;
Yang, Shanshan ;
Liu, Xianli .
BIOENERGY RESEARCH, 2024, 17 (04) :2259-2267
[24]   Effect of rice bran as a nitrogen and carbohydrate source on fed-batch simultaneous saccharification and fermentation for the production of bioethanol from rice straw [J].
Mochidzuki, Kazuhiro ;
Kobayashi, Shinichi ;
Wang, Hui ;
Hatanaka, Rena ;
Hiraide, Hatsue .
Nihon Enerugi Gakkaishi/Journal of the Japan Institute of Energy, 2015, 94 (01) :151-158
[25]   Integrating genetic-engineered cellulose nanofibrils of rice straw with mild chemical treatments for enhanced bioethanol conversion and bioaerogels production [J].
Hu, Zhen ;
Peng, Hao ;
Liu, Jingyuan ;
Zhang, Huiyi ;
Li, Sufang ;
Wang, Hailang ;
Lv, Zhengyi ;
Wang, Youmei ;
Sun, Dan ;
Tang, Jingfeng ;
Peng, Liangcai ;
Wang, Yanting .
INDUSTRIAL CROPS AND PRODUCTS, 2023, 202
[26]   Complementary effect of thermotolerant yeast and cold active cellulase on simultaneous saccharification and fermentation for bioethanol production from rice straw [J].
Choudhary, Jairam ;
Singh, Surender ;
Sharma, Anamika ;
Tiwari, Rameshwar ;
Nain, Lata .
JOURNAL OF RENEWABLE AND SUSTAINABLE ENERGY, 2018, 10 (04)
[27]   Bioconversion of rice straw to sugar using multizyme complex of fungal origin and subsequent production of bioethanol by mixed fermentation of Saccharomyces cerevisiae MTCC 173 and Zymomonas mobilis MTCC 2428 [J].
Das, Arpan ;
Paul, Tanmay ;
Jana, Arijit ;
Halder, Suman K. ;
Ghosh, Kuntal ;
Maity, Chiranjit ;
Das Mohapatra, Pradeep K. ;
Pati, Bikash R. ;
Mondal, Keshab C. .
INDUSTRIAL CROPS AND PRODUCTS, 2013, 46 :217-225
[28]   Techno-economic analysis of bioethanol production from rice straw by liquid-state fermentation [J].
Hidayat, M. H. M. ;
Salleh, S. F. ;
Riayatsyah, T. M. I. ;
Aditiya, H. B. ;
Mahlia, T. M. I. ;
Shamsuddin, A. H. .
INTERNATIONAL CONFERENCE ON ADVANCES IN RENEWABLE ENERGY AND TECHNOLOGIES (ICARET 2016), 2016, 32
[29]   Statistical optimization of cellulase production and its efficacy in hesperidin extraction from orange peel and bioethanol production from rice straw by simultaneous saccharification and fermentation [J].
Kowsalya, Ramalingam ;
Prabhu, Nandhi ;
Rajamehala, Murugan ;
Singh, Mookkandi Vijay Pradhap ;
Karthikadevi, Selvaraj .
RESEARCH JOURNAL OF BIOTECHNOLOGY, 2022, 17 (08) :20-31
[30]   Bioethanol production from rice straw by simultaneous saccharification and fermentation with statistical optimized cellulase cocktail and fermenting fungus [J].
Maki Takano ;
Kazuhiro Hoshino .
Bioresources and Bioprocessing, 5