Zhi Qing-Qing, He Lei, Li Jie-Ying, Li Jing, Wang Zhen-Long, He Guang-Yao, He Zhu-Mei
The Guangdong Province Key Laboratory for Aquatic Economic Animals, School of Life Sciences, Sun Yat-sen University, Guangzhou, China.
Cancer Hospital and Institute of Guangzhou Medical University, Guangzhou, China.
Front Microbiol. 2019 Aug 13;10:1881. doi: 10.3389/fmicb.2019.01881. eCollection 2019.
Nuclear protein LaeA is known as the global regulator of secondary metabolism in . LaeA connects with VeA and VelB to form a heterotrimeric complex, which coordinates fungal development and secondary metabolism. Here, we describe a new interaction partner of LaeA, the kinetochore protein Spc105, from the aflatoxin-producing fungus . We showed that in addition to involvement in nuclear division, Spc105 is required for normal conidiophore development and sclerotia production of . Moreover, Spc105 positively regulates the production of secondary metabolites such as aflatoxin and kojic acid, and negatively regulates the production of cyclopiazonic acid. Transcriptome analysis of the strain revealed that 23 backbone genes were differentially expressed, corresponding to 19 of the predicted 56 secondary metabolite gene clusters, suggesting a broad regulatory role of Spc105 in secondary metabolism. Notably, the reduced expression of in our transcriptome data led to the discovery of the correlation between Spc105 and LaeA, and double mutant analysis indicated a functional interdependence between Spc105 and LaeA. Further, and protein interaction assays revealed that Spc105 interacts directly with the -adenosylmethionine (SAM)-binding domain of LaeA, and that the leucine zipper motif in Spc105 is required for this interaction. The Spc105-LaeA interaction identified in our study indicates a cooperative interplay of distinct regulators in , providing new insights into fungal secondary metabolism regulation networks.
核蛋白LaeA是曲霉属真菌中次级代谢的全局调节因子。LaeA与VeA和VelB相互作用形成异源三聚体复合物,该复合物协调真菌的发育和次级代谢。在此,我们描述了来自产黄曲霉毒素真菌的LaeA的一个新的相互作用伙伴——动粒蛋白Spc105。我们发现,Spc105除了参与核分裂外,对于黄曲霉的正常分生孢子梗发育和菌核产生也是必需的。此外,Spc105正向调节黄曲霉毒素和 kojic 酸等次级代谢产物的产生,负向调节环匹阿尼酸的产生。对Spc105缺失菌株的转录组分析表明,有23个骨干基因差异表达,对应于预测的56个次级代谢产物基因簇中的19个,这表明Spc105在次级代谢中具有广泛的调节作用。值得注意的是,我们转录组数据中Spc105的表达降低导致了Spc105与LaeA之间相关性的发现,双突变分析表明Spc105与LaeA之间存在功能上的相互依赖。此外,蛋白质相互作用试验表明,Spc105直接与LaeA的S-腺苷甲硫氨酸(SAM)结合结构域相互作用,并且Spc105中的亮氨酸拉链基序对于这种相互作用是必需的。我们研究中鉴定出的Spc105-LaeA相互作用表明了曲霉属中不同调节因子之间的协同相互作用,为真菌次级代谢调控网络提供了新的见解。