Wang Fangzhong, Liu Kuimei, Han Lijuan, Jiang Baojie, Wang Mingyu, Fang Xu
State Key Laboratory of Microbial Technology, School of Life Science, Shandong University, Jinan, Shandong, China.
Sci Rep. 2015 Jul 7;5:11875. doi: 10.1038/srep11875.
The lignocellulose degradation capacity of filamentous fungi has been widely studied because of their cellulase hypersecretion. The p24 proteins in eukaryotes serve important functions in this secretory pathway. However, little is known about the functions of the p24 proteins in filamentous fungi. In this study, four p24 proteins were identified in Penicillium oxalicum. Six p24 double-deletion strains were constructed, and further studies were carried out with the ΔerpΔpδ strain. The experimental results suggested that Erp and Pδ form a p24 heterodimer in vivo. This p24 heterodimer participates in important morphogenetic events, including sporulation, hyphal growth, and lateral branching. The results suggested that the p24 heterodimer mediates protein transport, particularly that of cellobiohydrolase. Analysis of the intracellular proteome revealed that the ΔerpΔpδ double mutant is under secretion stress due to attempts to remove proteins that are jammed in the endomembrane system. These results suggest that the p24 heterodimer participates in morphogenesis and protein transport. Compared with P. oxalicum Δerp, a greater number of cellular physiological pathways were impaired in ΔerpΔpδ. This finding may provide new insights into the secretory pathways of filamentous fungi.
由于丝状真菌能超量分泌纤维素酶,其木质纤维素降解能力已得到广泛研究。真核生物中的p24蛋白在这一分泌途径中发挥着重要作用。然而,关于丝状真菌中p24蛋白的功能却知之甚少。在本研究中,草酸青霉中鉴定出了四种p24蛋白。构建了六个p24双缺失菌株,并对ΔerpΔpδ菌株进行了进一步研究。实验结果表明,Erp和Pδ在体内形成了一个p24异源二聚体。这个p24异源二聚体参与了重要的形态发生事件,包括孢子形成、菌丝生长和侧枝分支。结果表明,p24异源二聚体介导蛋白质转运,尤其是纤维二糖水解酶的转运。细胞内蛋白质组分析显示,由于试图清除滞留在内膜系统中的蛋白质,ΔerpΔpδ双突变体处于分泌应激状态。这些结果表明,p24异源二聚体参与形态发生和蛋白质转运。与草酸青霉Δerp相比,ΔerpΔpδ中有更多的细胞生理途径受损。这一发现可能为丝状真菌的分泌途径提供新的见解。