Microalgal Co-cultivation for Biofuel Production and Bioremediation: Current Status and Benefits

被引:0
|
作者
Prabir Kumar Das
Jyoti Rani
Shweta Rawat
Sanjay Kumar
机构
[1] Indian Institute of Technology (BHU) Varanasi,School of Biochemical Engineering
[2] Bipin Tripathi Kumaon Institute of Technology,Biochemical Engineering Department
来源
BioEnergy Research | 2022年 / 15卷
关键词
Co-culture; Mutualism; Agro-industrial; Lipid productivity; Waste removal; Techno-economic; Feasibility;
D O I
暂无
中图分类号
学科分类号
摘要
Microalgae have been reported to exhibit mutualistic interactions with other microorganisms like bacteria, filamentous fungi, and yeast and help each other co-exist. The potential of microalgae to perform photosynthesis and accumulate lipids make them suitable candidates for lipid production. Biofuel production from various single oleaginous microorganisms is already in practice. However, the high cost of biomass harvesting, extraction of lipids, and contamination issues are significant challenges of biofuel bioprocess commercialization. Recent microalgal co-culture studies showed considerable potential for easy biomass harvesting and reduction in overall energy consumption cost. Therefore, microalgal co-culture could be an alternative to overcome these constraints and enhance biomass and lipid production. Additionally, the integration of the nutrient sequestration process from potential agro-industrial wastewater using microalgal co-culture can reduce the cost of the substrate requirement for cultivation as well as ecological load. The co-culture in wastewater has shown excellent total phosphate removal efficiencies by microalgae Chlorella sorokiniana and yeast Rhodotorula glutinis, nitrogen removal by microalgae C. sorokiniana with activated sludge, and ammonium-nitrogen removal by C. vulgaris and fungi Aspergillus sp. co-culture. This review summarized the current advances towards biofuel and its value-added production from various microalgae co-culture and compared it with monoculture fermentation. It also includes some critical challenges of co-culturing for the economically viable bioprocess development for biofuel production. Furthermore, techno-economic analysis and life-cycle assessment of co-culture technology were also discussed for biofuel production feasibility from microalgal co-culture.
引用
收藏
页码:1 / 26
页数:25
相关论文
共 42 条
  • [31] Evaluating the outcomes of submerged co-cultivation: production of lovastatin and other secondary metabolites by Aspergillus terreus in fungal co-cultures
    Boruta, Tomasz
    Milczarek, Iwona
    Bizukojc, Marcin
    APPLIED MICROBIOLOGY AND BIOTECHNOLOGY, 2019, 103 (14) : 5593 - 5605
  • [32] Enhancement of ligninolytic enzymes production and decolourising activity in Leptosphaerulina sp by co-cultivation with Trichoderma viride and Aspergillus terreus
    Copete-Pertuz, Ledys S.
    Alandete-Novoa, Felipe
    Placido, Jersson
    Correa-Londono, Guillermo A.
    Mora-Martinez, Amanda L.
    SCIENCE OF THE TOTAL ENVIRONMENT, 2019, 646 : 1536 - 1545
  • [33] Valorization of Coconut Shell and Blue Berries Seed Waste into Enhance Bacterial Enzyme Production: Co-fermentation and Co-cultivation Strategies
    Khan, Pathan Ahemad
    Singh, Tripti
    Lal, Basant
    Singh, Rajeev
    Syed, Asad
    Verma, Meenakshi
    Mishra, P. K.
    Wong, Ling Shing
    Ahmad, Irfan
    Srivastava, Neha
    INDIAN JOURNAL OF MICROBIOLOGY, 2025,
  • [34] Enhanced biodiesel production through phyco-myco co-cultivation of Chlorella minutissima and Aspergillus awamori: An integrated approach
    Dash, Archana
    Banerjee, Rintu
    BIORESOURCE TECHNOLOGY, 2017, 238 : 502 - 509
  • [35] One-pot fermentation for erythritol production from distillers grains by the co-cultivation of Yarrowia lipolytica and Trichoderma reesei
    Liu, Xiaoyan
    Yu, Xinjun
    He, Aiyong
    Xia, Jun
    He, Jianlong
    Deng, Yuanfang
    Xu, Ning
    Qiu, Zhongyang
    Wang, Xiaoyu
    Zhao, Pusu
    BIORESOURCE TECHNOLOGY, 2022, 351
  • [36] Co-cultivation enhanced microbial protein production based on autotrophic nitrogen-fixing hydrogen-oxidizing bacteria
    Hu, Xiaona
    Vandamme, Peter
    Boon, Nico
    CHEMICAL ENGINEERING JOURNAL, 2022, 429
  • [37] Efficient biobutanol production via co-cultivation of Clostridium acetobutylicum and Bacillus cereus utilizing DES pretreated rice husk
    Anuradha, A.
    Jayabalan, Sudeepan
    Sengupta, Swaraj
    Li, Si-Yu
    Sampath, Muthu Kumar
    BIOMASS CONVERSION AND BIOREFINERY, 2024, : 15113 - 15121
  • [38] High-yield production of single-cell protein from starch processing wastewater using co-cultivation of yeasts
    Tian, Yajie
    Li, Jianzheng
    Meng, Jia
    Li, Jiuling
    BIORESOURCE TECHNOLOGY, 2023, 370
  • [39] Production of microbial biomass feedstock via co-cultivation of microalgae-bacteria consortium coupled with effective wastewater treatment: A sustainable approach
    Makut, Bidhu Bhusan
    Das, Debasish
    Goswami, Gargi
    ALGAL RESEARCH-BIOMASS BIOFUELS AND BIOPRODUCTS, 2019, 37 : 228 - 239
  • [40] Enhanced hydrogen production through co-cultivation of Chlamydomonas reinhardtii CC-503 and a facultative autotrophic sulfide-oxidizing bacterium under sulfurated conditions
    He, Jiayi
    Xi, Lijun
    Sun, Xinzu
    Ge, Baosheng
    Liu, Dejian
    Han, Zhongxiang
    Pu, Xining
    Huang, Fang
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2018, 43 (32) : 15005 - 15013