Key Laboratory of Engineering Biology for Low-Carbon Manufacturing, Tianjin Institute of Industrial Biotechnology, Chinese Academy of Sciences, Tianjin, 300308, China.
National Technology Innovation Center of Synthetic Biology, Tianjin, 300308, China.
Appl Microbiol Biotechnol. 2023 Oct;107(19):5909-5922. doi: 10.1007/s00253-023-12720-z. Epub 2023 Aug 10.
Carboxylic acids containing acidic groups with additional keto/hydroxyl-groups or unsaturated bond have displayed great applicability in the food, agricultural, cosmetic, textile, and pharmaceutical industries. The traditional approach for carboxylate production through chemical synthesis is based on petroleum derivatives, resulting in concerns for the environmental complication and energy crisis, and increasing attention has been attracted to the eco-friendly and renewable bio-based synthesis for carboxylate production. The efficient and specific export of target carboxylic acids through the microbial membrane is essential for high productivity, yield, and titer of bio-based carboxylates. Therefore, understanding the characteristics, regulations, and efflux mechanisms of carboxylate transporters will efficiently increase industrial biotechnological production of carboxylic acids. Several transporters from fungi have been reported and used for improved synthesis of target products. The transport activity and substrate specificity are two key issues that need further improvement in the application of carboxylate transporters. This review presents developments in the structural and functional diversity of carboxylate transporters, focusing on the modification and regulation of carboxylate transporters to alter the transport activity and substrate specificity, providing new strategy for transporter engineering in constructing microbial cell factory for carboxylate production. KEY POINTS: • Structures of multiple carboxylate transporters have been predicted. • Carboxylate transporters can efficiently improve production. • Modification engineering of carboxylate transporters will be more popular in the future.
含酸性基团的羧酸,具有额外的酮/羟基基团或不饱和键,在食品、农业、化妆品、纺织和制药等行业具有广泛的适用性。通过化学合成生产羧酸盐的传统方法基于石油衍生物,这导致了对环境复杂性和能源危机的担忧,并且越来越关注生态友好型和可再生的基于生物的合成方法来生产羧酸盐。通过微生物膜高效且特异性地输出目标羧酸对于提高生物基羧酸盐的生产力、产量和浓度至关重要。因此,了解羧酸转运蛋白的特性、调控和外排机制将有效地提高工业生物技术生产羧酸的效率。已经报道了几种真菌来源的转运蛋白,并将其用于目标产物的改进合成。在羧酸盐转运蛋白的应用中,需要进一步改进的两个关键问题是转运活性和底物特异性。本综述介绍了羧酸盐转运蛋白的结构和功能多样性的发展,重点讨论了羧酸盐转运蛋白的修饰和调控,以改变转运活性和底物特异性,为构建用于羧酸盐生产的微生物细胞工厂的转运蛋白工程提供了新策略。
关键点:
已经预测了多种羧酸盐转运蛋白的结构。
羧酸盐转运蛋白可以有效地提高产量。
羧酸盐转运蛋白的修饰工程在未来将更加流行。