Kapoor Ashish, Tiwari Amit Kumar, Tripathi S C, Asiri Mohammed, Pal Dan Bahadur, Tripathi Manikant
Department of Chemical Engineering, Harcourt Butler Technical University, Nawabganj, Kanpur, Uttar Pradesh, 208002, India.
Department of Chemical Engineering, Birla Institute of Technology, Mesra, Ranchi, Jharkhand, 835215, India.
Mol Biotechnol. 2025 Jul 11. doi: 10.1007/s12033-025-01479-5.
The global pursuit of sustainable and renewable energy sources has intensified interest in biofuel production from lignocellulosic biomass. There are challenges for achieving sustainable biofuel production and utilization of lignocelluloses through microbial applications. The feedstock selection, pretreatment techniques, enzymatic hydrolysis, fermentation, and purification are important considerations from a sustainability perspective. Non-edible biomass sources, including agricultural and forest residues, are highlighted for their potential to reduce competition with food crops and minimize environmental impacts. Various pretreatment methods are explored for their efficacy in breaking down the complex lignocellulosic structure and enhancing enzymatic accessibility. Advances in enzyme technologies, metabolic engineering, and microbial biotechnology have significantly improved the efficiency of enzymatic hydrolysis and fermentation processes, resulting in increased sugar release and higher biofuel yields. The review emphasizes sustainability aspects, including energy security, reduced greenhouse gas emissions, and the utilization of renewable resources, in the context of microbial applications. However, overcoming technical and economic challenges, scaling up production, and ensuring commercial viability require further research and development. Continual advancements in microbial processes, coupled with innovation and comprehensive sustainability assessments, hold substantial promise for the sustainable production of biofuels from lignocellulosic biomass, contributing to a greener and more resilient energy future.
全球对可持续和可再生能源的追求,增强了人们对利用木质纤维素生物质生产生物燃料的兴趣。通过微生物应用实现木质纤维素的可持续生物燃料生产和利用面临着挑战。从可持续性角度来看,原料选择、预处理技术、酶水解、发酵和纯化都是重要的考虑因素。包括农业和森林残留物在内的非食用生物质来源,因其具有减少与粮食作物竞争以及将环境影响降至最低的潜力而受到关注。人们探索了各种预处理方法,以评估其分解复杂木质纤维素结构和提高酶可及性的效果。酶技术、代谢工程和微生物生物技术的进步显著提高了酶水解和发酵过程的效率,从而增加了糖的释放量并提高了生物燃料产量。该综述强调了在微生物应用背景下的可持续性方面,包括能源安全、减少温室气体排放以及可再生资源的利用。然而,克服技术和经济挑战、扩大生产规模以及确保商业可行性仍需要进一步的研究和开发。微生物工艺的持续进步,再加上创新和全面的可持续性评估,有望实现从木质纤维素生物质中可持续生产生物燃料,为更绿色、更具韧性的能源未来做出贡献。