Gong Zihan, Zhang Song, Liu Jun
Hunan Key Laboratory of Grain-Oil Deep Process and Quality Control, National Engineering Research Center of Rice and Byproduct Deep Processing, Central South University of Forestry and Technology, Changsha 410004, China.
J Fungi (Basel). 2023 Feb 4;9(2):205. doi: 10.3390/jof9020205.
Metabolites produced by filamentous fungi are used extensively in the food and drug industries. With the development of the morphological engineering of filamentous fungi, numerous biotechnologies have been applied to alter the morphology of fungal mycelia and enhance the yields and productivity of target metabolites during submerged fermentation. Disruption of chitin biosynthesis can modify the cell growth and mycelial morphology of filamentous fungi and regulate the biosynthesis of metabolites during submerged fermentation. In this review, we present a comprehensive coverage of the categories and structures of the enzyme chitin synthase, chitin biosynthetic pathways, and the association between chitin biosynthesis and cell growth and metabolism in filamentous fungi. Through this review, we hope to increase awareness of the metabolic engineering of filamentous fungal morphology, provide insights into the molecular mechanisms of morphological control via chitin biosynthesis, and describe strategies for the application of morphological engineering to enhance the production of target metabolites in filamentous fungi during submerged fermentation.
丝状真菌产生的代谢产物在食品和制药行业中被广泛应用。随着丝状真菌形态工程的发展,众多生物技术已被应用于改变真菌菌丝体的形态,并提高深层发酵过程中目标代谢产物的产量和生产率。几丁质生物合成的破坏可改变丝状真菌的细胞生长和菌丝体形态,并在深层发酵过程中调节代谢产物的生物合成。在这篇综述中,我们全面涵盖了几丁质合酶的类别和结构、几丁质生物合成途径,以及丝状真菌中几丁质生物合成与细胞生长和代谢之间的关联。通过这篇综述,我们希望提高对丝状真菌形态代谢工程的认识,深入了解通过几丁质生物合成进行形态控制的分子机制,并描述在深层发酵过程中应用形态工程提高丝状真菌目标代谢产物产量的策略。