Mohanan Varsha C, Chandarana Pinal M, Chattoo Bharat B, Patkar Rajesh N, Manjrekar Johannes
Bharat Chattoo Genome Research Centre, Department of Microbiology and Biotechnology Centre, Maharaja Sayajirao University of BarodaVadodara, India.
Department of Microbiology and Biotechnology Centre, Maharaja Sayajirao University of BarodaVadodara, India.
Front Chem. 2017 May 19;5:31. doi: 10.3389/fchem.2017.00031. eCollection 2017.
Two-component signal transduction (TCST) pathways play crucial roles in many cellular functions such as stress responses, biofilm formation, and sporulation. The histidine phosphotransferase (HPt), which is an intermediate phosphotransfer protein in a two-component system, transfers a phosphate group to a phosphorylatable aspartate residue in the target protein(s), and up-regulates stress-activated MAP kinase cascades. Most fungal genomes carry a single copy of the gene coding for HPt, which are potential antifungal targets. However, unlike the histidine kinases (HK) or the downstream response regulators (RR) in two-component system, the HPts have not been well-studied in phytopathogenic fungi. In this study, we investigated the role of HPt in the model rice-blast fungal pathogen . We found that in an additional isoform of the gene was expressed specifically in response to light. Further, the expression of light-regulated genes such as those encoding envoy and blue-light-harvesting protein, and PAS domain containing HKs was significantly reduced upon down-regulation of in . Importantly, down-regulation of led to a significant decrease in the ability to penetrate the host cuticle and in light-dependent conidiation in . Thus, our results indicate that Ypd1 plays an important role in asexual development and host invasion, and suggest that isoforms likely have distinct roles to play in the rice-blast pathogen .
双组分信号转导(TCST)途径在许多细胞功能中发挥着关键作用,如应激反应、生物膜形成和孢子形成。组氨酸磷酸转移酶(HPt)是双组分系统中的一种中间磷酸转移蛋白,它将磷酸基团转移到靶蛋白中可磷酸化的天冬氨酸残基上,并上调应激激活的丝裂原活化蛋白激酶级联反应。大多数真菌基因组携带编码HPt的基因的单拷贝,这些基因是潜在的抗真菌靶点。然而,与双组分系统中的组氨酸激酶(HK)或下游反应调节因子(RR)不同,HPt在植物病原真菌中尚未得到充分研究。在本研究中,我们调查了HPt在模式稻瘟病真菌病原体中的作用。我们发现,在 中,该基因的另一种同工型在光照下特异性表达。此外,在 中下调 后,诸如编码使者和蓝光捕获蛋白以及含有PAS结构域的HKs等光调节基因的表达显著降低。重要的是,下调 导致 穿透宿主角质层的能力和光依赖性分生孢子形成显著下降。因此,我们的结果表明Ypd1在无性发育和宿主入侵中起重要作用,并表明 同工型可能在稻瘟病菌中发挥不同作用。