College of Marine Life Sciences, Ocean University of China, Yushan Road, No. 5, Qingdao, China.
College of Marine Life Sciences, Ocean University of China, Yushan Road, No. 5, Qingdao, China; Laboratory for Marine Biology and Biotechnology, Qingdao National Laboratory for Marine Science and Technology, 266003, China.
Carbohydr Polym. 2021 Jan 1;251:117076. doi: 10.1016/j.carbpol.2020.117076. Epub 2020 Sep 12.
It has been well known that different strains of Aureobasidium spp. can yield a large amount of pullulan. Although pullulan has wide applications in various sectors of biotechnology, its biosynthesis and regulation were not resolved. Lately, the molecular mechanisms of pullulan biosynthesis and regulation have been elucidated and their genes and encoding proteins have been identified using the genome-wide mutant analysis. It is found that a multidomain AmAgs2 is the key enzyme for pullulan biosynthesis and the alternative primers are required for its biosynthesis. Pullulan biosynthesis is regulated by glucose repression and signaling pathways. Elucidation of such a biosynthetic pathway and regulation is of significance in biotechnology. Therefore, the present review article mainly summaries the recent research proceedings in this field, hoping to promote further endeavors on enhanced pullulan production and improved chemical properties of pullulan via molecular modifications of the producers by using synthetic biology approaches.
众所周知,不同的金孢子菌菌株可以产生大量的普鲁兰多糖。尽管普鲁兰多糖在生物技术的各个领域有广泛的应用,但其生物合成和调控机制尚未得到解决。最近,利用全基因组突变分析阐明了普鲁兰多糖生物合成和调控的分子机制,并鉴定了其基因和编码蛋白。研究发现,多结构域 AmAgs2 是普鲁兰多糖生物合成的关键酶,其生物合成需要使用替代引物。普鲁兰多糖的生物合成受葡萄糖抑制和信号通路调控。阐明这一生物合成途径和调控机制在生物技术中具有重要意义。因此,本文主要综述了该领域的最新研究进展,希望通过合成生物学方法对产生菌进行分子修饰,促进通过增强普鲁兰多糖的生产和改善普鲁兰多糖的化学性质的进一步研究。