Biocatalysis in Transforming Biofuel Technologies.

Gautam Kumar Meghwanshi, Swati Verma, Rajaram Choyal, Abhishek Vashishtha, Nhung Thi Trang Trinh, Rajender Kumar
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Abstract

Recently, the importance of biocatalysis in bioenergy has been noted, with policymakers and regulatory authorities intervening at the technological level to establish more efficient, varied, and vast-scale exploitations of biocatalysis. These approaches leverage natural catalysts, primarily enzymes, to facilitate the breakdown of larger organic compounds into simpler molecules, which can be further biochemically transformed into biofuels, such as ethanol, biodiesel, and biogas, using improved versions of metabolic enzymes. Advances in enzyme engineering have significantly enhanced the stability, specificity, and activity of key enzymes involved in biofuel synthesis, such as cellulases, oxidoreductases, xylanases, glucose isomerases, butanol dehydrogenase, acetoacetate decarboxylase, ferredoxin oxidoreductases, etc. Further, synthetic biological approaches have allowed the construction of microbial cell factories with restructured integrated biocatalytic pathways, capable of converting the raw biomass directly into biofuels. Despite these advancements, challenges remain, such as the cost of enzymes, their robustness, and the scalability of their production and biotransformation processes. Ongoing research is focused on overcoming these hurdles through innovative biocatalyst design, metabolic engineering, in silico modeling, and optimization. However, changes in government policies and reduced regulatory frameworks are expected to leverage biofuel production and competitiveness with fossil fuels and gradually replace them completely. This review highlights the recent advances in the field of biocatalysis related to the production of biofuels. This review also discusses the current challenges, sustainability, promotional initiatives performed at the government level, and future directions in the field of biofuels.

生物催化转化生物燃料技术。
最近,人们注意到生物催化在生物能源中的重要性,政策制定者和监管机构在技术层面进行干预,以建立更有效、更多样化和更大规模的生物催化利用。这些方法利用天然催化剂,主要是酶,促进较大的有机化合物分解成更简单的分子,这些分子可以进一步通过生物化学转化为生物燃料,如乙醇、生物柴油和沼气,使用改进版本的代谢酶。酶工程技术的进步大大提高了生物燃料合成中关键酶的稳定性、特异性和活性,如纤维素酶、氧化还原酶、木聚糖酶、葡萄糖异构酶、丁醇脱氢酶、乙酰乙酸脱羧酶、铁氧还蛋白氧化还原酶等。此外,合成生物学方法允许构建具有重组整合生物催化途径的微生物细胞工厂,能够将原料生物质直接转化为生物燃料。尽管取得了这些进步,但挑战仍然存在,例如酶的成本,它们的稳健性以及它们的生产和生物转化过程的可扩展性。正在进行的研究重点是通过创新的生物催化剂设计、代谢工程、计算机建模和优化来克服这些障碍。然而,政府政策的变化和监管框架的减少有望利用生物燃料生产和化石燃料的竞争力,并逐步完全取代它们。本文综述了与生物燃料生产有关的生物催化领域的最新进展。本综述还讨论了当前的挑战、可持续性、政府层面的推广举措以及生物燃料领域的未来方向。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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