Zhejiang Provincial (Wenzhou) Key Lab for Water Environment and Marine Biological Resources Protection, College of Life and Environmental Science, Wenzhou University, Wenzhou, 325035, China.
State Key Laboratory of Mycology, Institute of Microbiology, Chinese Academy of Sciences, Beijing, 100101, China.
Sci China Life Sci. 2017 Jun;60(6):656-664. doi: 10.1007/s11427-017-9068-4. Epub 2017 May 25.
The COP9 signalosome (CSN) is a highly conserved multiprotein complex in all eukaryotes and involved in regulation of organism development. In filamentous fungi, several lines of evidence indicate that fungal development and secondary metabolism (SM) are mediated by the fifth subunit of CSN, called CsnE. Here we uncover a connection with CsnE and conidial formation as well as SM regulation in the plant endophytic fungus Pestalotiopsis fici. A homology search of the P. fici genome with CsnE, involved in sexual development and SM in Aspergillus nidulans, identified PfCsnE. Deletion of PfcsnE resulted in a mutant that stopped conidial production, but the conidia are recovered in a PfcsnE complemented strain. This indicates that PfCsnE is required for the formation of conidia. Secondary metabolite analysis demonstrated that the ΔPfcsnE strain produced more chloroisosulochrin, less ficiolide A production in comparison to wild type (WT). Transcriptome analysis of WT and ΔPfcsnE strains indicated that PfcsnE impacts the expression levels of 8.37% of 14,797 annotated genes. Specifically, nine biosynthetic gene clusters (BGCs) were up-regulated and three BGCs were down-regulated by PfCsnE. Our results suggest that PfCsnE plays major roles in SM regulation and conidial development in P. fici.
COP9 信号体(CSN)是所有真核生物中高度保守的多蛋白复合物,参与调节生物发育。在丝状真菌中,有几条证据表明真菌发育和次级代谢(SM)是由 CSN 的第五个亚基,即 CsnE 介导的。在这里,我们揭示了 CsnE 与拟南芥中的无性生殖和 SM 调节相关联的证据,以及在植物内生真菌 Pestalotiopsis fici 中的联系。与涉及有性发育和 SM 的 Aspergillus nidulans 中的 CsnE 进行同源搜索,鉴定了 P. fici 基因组中的 PfCsnE。PfcsnE 的缺失导致一个突变体停止产生分生孢子,但在 PfcsnE 互补菌株中恢复了分生孢子。这表明 PfCsnE 是形成分生孢子所必需的。次生代谢产物分析表明,与野生型(WT)相比,ΔPfcsnE 菌株产生了更多的氯异硫代苏醇,而少产生了 ficiolide A。WT 和 ΔPfcsnE 菌株的转录组分析表明,PfcsnE 影响了 14797 个注释基因中 8.37%的表达水平。具体来说,九个生物合成基因簇(BGCs)被上调,三个 BGCs 被下调。我们的结果表明,PfCsnE 在 P. fici 中的 SM 调节和分生孢子发育中发挥主要作用。