Li Chong, Ong Khai Lun, Cui Zhiyong, Sang Zhenyu, Li Xiaotong, Patria Raffel Dharma, Qi Qingsheng, Fickers Patrick, Yan Jianbin, Lin Carol Sze Ki
Shenzhen Branch, Guangdong Laboratory for Lingnan Modern Agriculture, Genome Analysis Laboratory of the Ministry of Agriculture, Agricultural Genomics Institute at Shenzhen, Chinese Academy of Agricultural Sciences, Shenzhen, China.
School of Energy and Environment, City University of Hong Kong, Hong Kong, China.
J Hazard Mater. 2021 Jan 5;401:123414. doi: 10.1016/j.jhazmat.2020.123414. Epub 2020 Jul 8.
As a platform chemical with various applications, succinic acid (SA) is currently produced by petrochemical processing from oil-derived substrates such as maleic acid. In order to replace the environmental unsustainable hydrocarbon economy with a renewable environmentally sound carbohydrate economy, bio-based SA production process has been developed during the past two decades. In this review, recent advances in the valorization of solid organic wastes including mixed food waste, agricultural waste and textile waste for efficient, green and sustainable SA production have been reviewed. Firstly, the application, market and key global players of bio-SA are summarized. Then achievements in SA production by several promising yeasts including Saccharomyces cerevisiae and Yarrowia lipolytica are detailed, followed by calculation and comparison of SA production costs between oil-based substrates and raw materials. Lastly, challenges in engineered microorganisms and fermentation processes are presented together with perspectives on the development of robust yeast SA producers via genome-scale metabolic optimization and application of low-cost raw materials as fermentation substrates. This review provides valuable insights for identifying useful directions for future bio-SA production improvement.
作为一种具有多种用途的平台化学品,琥珀酸(SA)目前是通过石油衍生底物(如马来酸)的石化加工生产的。为了用可再生的、环境友好的碳水化合物经济取代对环境不可持续的碳氢化合物经济,在过去二十年中开发了基于生物的SA生产工艺。在这篇综述中,回顾了包括混合食物垃圾、农业废弃物和纺织废弃物在内的固体有机废弃物用于高效、绿色和可持续SA生产的价值化研究的最新进展。首先,总结了生物基SA的应用、市场和全球主要参与者。然后详细介绍了几种有前景的酵母(包括酿酒酵母和解脂耶氏酵母)在SA生产方面的成果,随后计算并比较了基于石油的底物和原材料之间的SA生产成本。最后,介绍了工程微生物和发酵过程中的挑战,以及通过基因组规模的代谢优化和应用低成本原材料作为发酵底物来开发强大的酵母SA生产者的前景。这篇综述为确定未来生物基SA生产改进的有用方向提供了有价值的见解。