Bacterial metabolic engineering for the production of second-generation (2 G) bioethanol and biobutanol; a review

Author:

Hussain Asif1,Liao Hui1,Ahmad Khalil2,Ahsan Muhammad3,Hussain Muhammad Iftikhar1,Iqbal Muhammad Waheed4,Aqeel Sahibzada Muhammad1,Hussain Arif5,Xia Xiaole1

Affiliation:

1. The Key Laboratory of Industrial Biotechnology of Ministry of Education, College of Biotechnology, Jiangnan University , 1800 Lihu Road, Wuxi 214122, Jiangsu , PR China

2. Laboratory of Biochemistry, Department of Biotechnology, Faculty of Biological Sciences, University of Malakand , Dir Lower, Chakdara 18800, Khyber Pakhtunkhwa , Pakistan

3. Laboratory of Organic Chemistry, Department of Chemistry, Faculty of Chemical and Biological Science, Abdul Wali Khan University , Mardan, Khyber Pakhtunkhwa 23200 , Pakistan

4. School of Food and Biological Engineering, Jiangsu University , Xuefu Road 301, Zhenjiang 212013 , PR China

5. National Engineering Research Center for Functional Food, College of Food Sciences, Jiangnan University , Wuxi 214122, Jiangsu , PR China

Abstract

AbstractsThe second generation (2 G) biofuels were introduced to solve the issues associated with first-generation biofuel (dependency on food materials) and fossil fuels, such as reservoirs diminution, high demand, price fluctuation, and lethal greenhouse gases emission. Butanol and ethanol are the main 2 G biofuels. They are used as a disinfectant, antiseptic, and chemical solvent in the pharmaceutical, plastic, textiles, cosmetics, and fuel industries. Currently, their bacterial biological production from lignocellulosic material at the industrial level with primitive microorganisms is under development and not economical and qualitative compatible as compared to that of fossil origin, due to the slow growth rate, low titer, recalcitrant nature of lignocellulose, strain intolerance to a higher amount of butanol and ethanol, and strain inability to tolerate inhibitors accumulated during pretreatment of lignocellulosic materials. Therefore, metabolic engineering strategies such as redirection of carbon flux, knocking out competing pathways, enhancing strain robustness and wide range of substrate utilization ability, and overexpression of enzymes involved in their biological synthesis have been applied to bacteria for enhancing their ability for 2 G ethanol and butanol production in a highly cost-effective amount from lignocellulosic materials. Herein, we summarized and reviewed the progress in metabolic engineering of bacterial species such as Clostridium spp,Escherichia coli, and Zymomonas mobilis for the synthesis of 2 G butanol and ethanol, especially from lignocellulosic materials.

Funder

China Scholarship Council

College of Biotechnology

School of International Education at Jiangnan University

Publisher

Oxford University Press (OUP)

Subject

Applied Microbiology and Biotechnology,General Medicine,Biotechnology

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