Hossain Gazi Sakir, Liang Yuanmei, Foo Jee Loon, Chang Matthew Wook
NUS Synthetic Biology for Clinical and Technological Innovation (SynCTI), National University of Singapore, Singapore, Singapore.
Synthetic Biology Translational Research Programme, Yong Loo Lin School of Medicine, National University of Singapore, Singapore, Singapore.
Biotechnol Notes. 2024 Jan 17;5:23-26. doi: 10.1016/j.biotno.2024.01.002. eCollection 2024.
Addressing urgent environmental challenges, this commentary emphasizes the need for green, bio-based solutions in chemical production from renewable feedstocks. It highlights advanced metabolic engineering of microbial strains and the use of microbial consortia as innovative approaches for efficient resource recovery. These strategies aim to enhance the conversion of diverse renewable feedstocks, including agricultural residues, industrial by-products, and greenhouse gases, into value-added chemicals. This article discusses cutting-edge techniques in renewable feedstock upcycling, utilizing both engineered unicellular and multicellular systems. It advocates a paradigm shift in sustainable biomanufacturing, focusing on transforming renewable resources into value-added products. This approach is crucial for developing a circular bioeconomy, aligning with global efforts to mitigate environmental impacts.
针对紧迫的环境挑战,本评论强调在利用可再生原料进行化学生产中采用绿色、生物基解决方案的必要性。它突出了微生物菌株的先进代谢工程以及使用微生物群落作为高效资源回收的创新方法。这些策略旨在提高将包括农业残余物、工业副产品和温室气体在内的各种可再生原料转化为增值化学品的转化率。本文讨论了可再生原料升级循环利用中的前沿技术,包括工程化单细胞和多细胞系统的利用。它倡导可持续生物制造的范式转变,重点是将可再生资源转化为增值产品。这种方法对于发展循环生物经济至关重要,符合全球减轻环境影响的努力。