State Key Laboratory of Agricultural Microbiology, Huazhong Agricultural University, Wuhan, China.
Hubei Key Laboratory of Plant Pathology, Huazhong Agricultural University, Wuhan, China.
Mol Plant Pathol. 2022 Feb;23(2):265-277. doi: 10.1111/mpp.13160. Epub 2021 Nov 29.
Long noncoding RNAs (lncRNAs) are crucial regulators of gene expression in many biological processes, but their biological functions remain largely unknown, especially in fungi. Fusarium graminearum is an important pathogen that causes the destructive disease Fusarium head blight (FHB) or head scab disease on wheat and barley. In our previous RNA sequencing (RNA-Seq) study, we discovered that lncRsp1 is an lncRNA that is located +99 bp upstream of a putative sugar transporter gene, Fgsp1, with the same transcription direction. Functional studies revealed that ΔlncRsp1 and ΔFgsp1 were normal in growth and conidiation but had defects in ascospore discharge and virulence on wheat coleoptiles. Moreover, lncRsp1 and Fgsp1 were shown to negatively regulate the expression of several deoxynivalenol (DON) biosynthesis genes, TRI4, TRI5, TRI6, and TRI13, as well as DON production. Further analysis showed that the overexpression of lncRsp1 enhanced the ability of ascospore release and increased the mRNA expression level of the Fgsp1 gene, while lncRsp1-silenced strains reduced ascospore discharge and inhibited Fgsp1 expression during the sexual reproduction stage. In addition, the lncRsp1 complementary strains lncRsp1-LC-1 and lncRsp1-LC-2 restored ascospore discharge to the level of the wild-type strain PH-1. Taken together, our results reveal the distinct and specific functions of lncRsp1 and Fgsp1 in F. graminearum and principally demonstrate that lncRsp1 can affect the release of ascospores by regulating the expression of Fgsp1.
长链非编码 RNA(lncRNA)在许多生物过程中是基因表达的关键调节剂,但它们的生物学功能在很大程度上仍然未知,尤其是在真菌中。禾谷镰刀菌是一种重要的病原体,可引起小麦和大麦上破坏性疾病赤霉病(FHB)或赤霉病。在我们之前的 RNA 测序(RNA-Seq)研究中,我们发现 lncRsp1 是一个位于假定糖转运基因 Fgsp1 上游+99bp 的 lncRNA,转录方向相同。功能研究表明,ΔlncRsp1 和 ΔFgsp1 在生长和产孢正常,但在小麦胚芽鞘上的游动孢子释放和毒性方面存在缺陷。此外,lncRsp1 和 Fgsp1 被证明负调控几种脱氧雪腐镰刀菌烯醇(DON)生物合成基因 TRI4、TRI5、TRI6 和 TRI13 的表达以及 DON 产生。进一步分析表明,lncRsp1 的过表达增强了游动孢子释放的能力,并增加了 Fgsp1 基因的 mRNA 表达水平,而 lncRsp1 沉默菌株在有性生殖阶段降低了游动孢子的释放并抑制了 Fgsp1 的表达。此外,lncRsp1 互补菌株 lncRsp1-LC-1 和 lncRsp1-LC-2 将游动孢子的释放恢复到 PH-1 野生型菌株的水平。总之,我们的结果揭示了 lncRsp1 和 Fgsp1 在禾谷镰刀菌中的独特和特定功能,并主要表明 lncRsp1 可以通过调节 Fgsp1 的表达来影响游动孢子的释放。