Gourgues M, Brunet-Simon A, Lebrun M-H, Levis C
FRE 2739, CNRS/Bayer, Physiologie des Plantes et des Champignons, Bayer Cropscience, 14-20 Rue Pierre Baizet, 69009 Lyon, France.
Mol Microbiol. 2004 Feb;51(3):619-29. doi: 10.1046/j.1365-2958.2003.03866.x.
Animal tetraspanins are membrane proteins controlling cell adhesion, morphology and motility. In fungi, the tetraspanin MgPls1 controls an appressorial function required for the penetration of Magnaporthe grisea into host plants. An orthologue of MgPLS1, BcPLS1, was identified in the necrotrophic fungal plant pathogen Botrytis cinerea. We constructed a Bcpls1::bar null mutant by targeted gene replacement. Bcpls1::bar is not pathogenic on intact plant tissues of bean, tomato or rose, but it infects wounded plant tissues. Both wild type and Bcpls1::bar differentiate appressoria on plant and artificial surfaces, a process involving an arrest of polarized growth, apex swelling and its cell wall reinforcement. Although wild-type appressoria allowed the penetration of the fungus into the host plant within 6-12 h, no successful penetration events were observed with Bcpls1::bar, suggesting that its appressoria are not functional. An eGFP transcriptional fusion showed that BcPLS1 was specifically expressed in conidia, germ tubes and appressoria during host penetration. Our results indicate that BcPLS1 is required for the penetration of B. cinerea into intact host plants. The defect in pathogenicity of Bcpls1::bar also demonstrates that functional B. cinerea appressoria are required for a successful penetration process. As Bcpls1::bar and Mgpls1 Delta::hph penetration defects are similar, fungal tetraspanins are likely to be required for an essential appressorial function widespread among fungi.
动物四跨膜蛋白是控制细胞黏附、形态和运动的膜蛋白。在真菌中,四跨膜蛋白MgPls1控制稻瘟病菌穿透寄主植物所需的附着胞功能。在坏死营养型真菌植物病原菌灰葡萄孢中鉴定出MgPLS1的一个直系同源基因BcPLS1。我们通过靶向基因置换构建了一个Bcpls1::bar基因敲除突变体。Bcpls1::bar对豆类、番茄或玫瑰的完整植物组织无致病性,但能感染受伤的植物组织。野生型和Bcpls1::bar在植物和人工表面均能分化出附着胞,这一过程涉及极性生长的停止、顶端肿胀及其细胞壁强化。尽管野生型附着胞能在6-12小时内使真菌穿透寄主植物,但未观察到Bcpls1::bar有成功的穿透事件,这表明其附着胞无功能。一个eGFP转录融合显示,BcPLS1在寄主穿透过程中在分生孢子、芽管和附着胞中特异性表达。我们的结果表明,BcPLS1是灰葡萄孢穿透完整寄主植物所必需的。Bcpls1::bar致病性的缺陷也表明,功能性的灰葡萄孢附着胞是成功穿透过程所必需的。由于Bcpls1::bar和Mgpls1 Delta::hph的穿透缺陷相似,真菌四跨膜蛋白可能是真菌中广泛存在的一种基本附着胞功能所必需的。