Becht Philip, König Julian, Feldbrügge Michael
Max Planck Institute for Terrestrial Microbiology, Department for Organismic Interactions, Karl-von-Frisch-Str., 35043 Marburg, Germany.
J Cell Sci. 2006 Dec 1;119(Pt 23):4964-73. doi: 10.1242/jcs.03287. Epub 2006 Nov 14.
Formation of polar-growing hyphae is essential for infection by the plant pathogen Ustilago maydis. Here we observe that loss of RNA-recognition motif protein Rrm4 caused formation of abnormal hyphae. The insertion of septa at the distal pole was abolished and a significantly increased number of hyphae grew bipolarly. UV-crosslinking experiments revealed that Rrm4 bound RNA via its N-terminal RRMs and that its RNA-binding activity was substantially increased during filamentation. Rrm4 assembled into particles that shuttled bidirectionally along microtubules to both poles. Recruitment of Rrm4 into particles increased during filamentation, and mutations in the peptide-binding pocket of its PABC domain caused abnormal particle formation as well as polarity defects. Shuttling was mediated by active transport because loss of conventional kinesin, which interferes with the balance of microtubule-dependent motors, caused accumulation of particles at the poles resulting in disturbed polarity. Thus, constant transport of the RNA-binding protein towards the poles is needed to orchestrate hyphal growth. Since a mutation of the N-terminal RRM that leads to reduced RNA binding in vivo also affected polarity, Rrm4 might regulate polarity of the infectious hyphae by transporting RNA from the nucleus to cell poles.
极性生长菌丝的形成对于植物病原体玉米黑粉菌的感染至关重要。在这里,我们观察到RNA识别基序蛋白Rrm4的缺失导致异常菌丝的形成。远端极处隔膜的插入被消除,并且大量菌丝双向生长。紫外线交联实验表明,Rrm4通过其N端RRMs结合RNA,并且其RNA结合活性在丝状化过程中显著增加。Rrm4组装成颗粒,沿着微管双向穿梭至两极。在丝状化过程中,Rrm4募集到颗粒中的情况增加,并且其PABC结构域的肽结合口袋中的突变导致异常颗粒形成以及极性缺陷。穿梭由主动运输介导,因为干扰微管依赖性马达平衡的传统驱动蛋白的缺失导致颗粒在两极积累,从而导致极性紊乱。因此,需要将RNA结合蛋白持续运输到两极以协调菌丝生长。由于导致体内RNA结合减少的N端RRM突变也影响极性,Rrm4可能通过将RNA从细胞核运输到细胞极来调节感染性菌丝的极性。