Gao S, Nuss D L
Center for Agricultural Biotechnology, University of Maryland Biotechnology Institute, University of Maryland, College Park, MD 20742-3351, USA.
Proc Natl Acad Sci U S A. 1996 Nov 26;93(24):14122-7. doi: 10.1073/pnas.93.24.14122.
Reduced accumulation of the GTP-binding protein G(i)alpha subunit CPG-1, due either to hypovirus infection or transgenic cosuppression, correlates with virulence attenuation of the chestnut blight fungus, Cryphonectria parasitica. The role of G protein-mediated signal transduction in fungal virulence was further examined by targeted disruption of the gene cpg-1, encoding CPG-1, and a second Galpha gene, cpg-2, encoding the subunit CPG-2. Disruption of cpg-1 resulted in a set of phenotypic changes similar to, but more severe than, those associated with hypovirus infection. Changes included a marked reduction in fungal growth rate and loss of virulence, asexual sporulation, female fertility, and transcriptional induction of the gene lac-1, encoding the enzyme laccase. In contrast, cpg-2 disruption resulted in only slight reductions in growth rate and asexual sporulation and no significant reduction in virulence, female fertility, or lac-1 mRNA inducibility. These results provide definitive confirmation of previous correlative evidence that suggested a requirement of CPG-1-linked signaling for a number of fungal processes, including virulence and reproduction, while demonstrating that a second Galpha, CPG-2, is dispensable for these processes. They also significantly strengthen support for the apparent linkage between hypovirus-mediated disruption of G protein signal transduction and attenuation of fungal virulence.
由于低毒病毒感染或转基因共抑制导致的GTP结合蛋白G(i)α亚基CPG-1积累减少,与栗疫病菌(Cryphonectria parasitica)的毒力减弱相关。通过对编码CPG-1的基因cpg-1和另一个编码亚基CPG-2的Gα基因cpg-2进行靶向破坏,进一步研究了G蛋白介导的信号转导在真菌毒力中的作用。破坏cpg-1导致了一系列表型变化,这些变化与低毒病毒感染相关的变化相似,但更为严重。变化包括真菌生长速率显著降低、毒力丧失、无性孢子形成、雌性育性以及编码漆酶的基因lac-1的转录诱导。相比之下,破坏cpg-2仅导致生长速率和无性孢子形成略有降低,而毒力、雌性育性或lac-1 mRNA诱导性没有显著降低。这些结果明确证实了先前的相关证据,即表明CPG-1相关信号传导对于包括毒力和繁殖在内的许多真菌过程是必需的,同时表明第二个Gα亚基CPG-2对于这些过程是可有可无的。它们还显著加强了对低毒病毒介导的G蛋白信号转导破坏与真菌毒力减弱之间明显联系的支持。