Hinsch Janine, Galuszka Petr, Tudzynski Paul
Institute of Plant Biology and Biotechnology, Westfälische Wilhelms-University Münster, Schlossplatz 8, 48143, Münster, Germany.
Centre of the Region Haná for Biotechnological and Agricultural Research, Palacký University, Šlechtitelů 27, 78371, Olomouc, Czech Republic.
New Phytol. 2016 Aug;211(3):980-92. doi: 10.1111/nph.13960. Epub 2016 Apr 13.
In plants, cytokinins (CKs) are synthesized de novo or by the degradation of modified tRNAs. Recently, the first fungal de novo pathway was identified within the plant pathogen Claviceps purpurea. As the deletion of the de novo pathway did not lead to a complete loss of CKs, this work focuses on the tRNA-modifying protein tRNA-isopentenyltransferase (CptRNA-IPT). The contribution of this enzyme to the CK pool of Claviceps and the role of CKs in the host-pathogen interaction are emphasized. The effects of the deletion of cptRNA-ipt and the double deletion of cptRNA-ipt and the key gene of de novo biosynthesis cpipt-log on growth, CK biosynthesis and virulence were analyzed. In addition, the sites of action of CptRNA-IPT were visualized using reporter gene fusions. In addition to CK-independent functions, CptRNA-IPT was essential for the biosynthesis of cis-zeatin (cZ) and contributed to the formation of isopentenyladenine (iP) and trans-zeatin (tZ). Although ΔcptRNA-ipt was reduced in virulence, the 'CK-free' double deletion mutant was nearly apathogenic. The results prove a redundancy of the CK biosynthesis pathway in C. purpurea for iP and tZ formation. Moreover, we show, for the first time, that CKs are required for the successful establishment of a host-fungus interaction.
在植物中,细胞分裂素(CKs)可重新合成或通过修饰的tRNA降解产生。最近,在植物病原体麦角菌中发现了首个真菌从头合成途径。由于从头合成途径的缺失并未导致CKs完全丧失,这项工作聚焦于tRNA修饰蛋白tRNA - 异戊烯基转移酶(CptRNA - IPT)。强调了这种酶对麦角菌CK库的贡献以及CKs在宿主 - 病原体相互作用中的作用。分析了cptRNA - ipt缺失以及cptRNA - ipt和从头生物合成关键基因cpipt - log双缺失对生长、CK生物合成和毒力的影响。此外,使用报告基因融合技术对CptRNA - IPT的作用位点进行了可视化。除了不依赖CK的功能外,CptRNA - IPT对于顺式玉米素(cZ)的生物合成至关重要,并有助于异戊烯腺嘌呤(iP)和反式玉米素(tZ)的形成。虽然ΔcptRNA - ipt的毒力降低,但“无CK”双缺失突变体几乎无致病性。结果证明了麦角菌中CK生物合成途径在iP和tZ形成方面的冗余性。此外,我们首次表明,CKs是成功建立宿主 - 真菌相互作用所必需的。