Zhang Mengting, Xiao Chunli, Tan Qing, Dong Lingling, Liu Xiaomei, Pu Jinji, Zhang He
Key Laboratory of Green Prevention and Control of Tropical Plant Diseases and Pests, Ministry of Education, College of Plant Protection, Hainan University, Haikou 570228, China.
Key Laboratory of Integrated Pest Management on Tropical Grops, Ministry of Agriculture and Rural Affairs, Environment and Plant Protection Institute, Chinese Academy of Tropical Agricultural Sciences, Haikou 571101, China.
J Fungi (Basel). 2023 Apr 23;9(5):503. doi: 10.3390/jof9050503.
is one of the most serious diseases that causes damage to mangoes. Laccase, a copper-containing polyphenol oxidase, has been reported in many species with different functions and activities, and fungal laccase could be closely related to mycelial growth, melanin and appressorium formation, pathogenicity, and so on. Therefore, what is the relationship between laccase and pathogenicity? Do laccase genes have different functions? In this experiment, the knockout mutant and complementary strain of were obtained through polyethylene glycol (PEG)-mediated protoplast transformation, which then determined the related phenotypes. The results showed that the knockout of significantly increased the germ tube formation, and the formation rates of appressoria significantly decreased, delaying the mycelial growth and lignin degradation and, ultimately, leading to a significant reduction in the pathogenicity in mango fruit. Furthermore, we observed that was involved in regulating the formation of germ tubes and appressoria, mycelial growth, lignin degradation, and pathogenicity of . This study is the first to report that the function of laccase is related to the formation of germ tubes, and this provides new insights into the pathogenesis of laccase in .
是导致芒果受损的最严重病害之一。漆酶是一种含铜的多酚氧化酶,在许多物种中都有报道,具有不同的功能和活性,真菌漆酶可能与菌丝生长、黑色素和附着胞形成、致病性等密切相关。因此,漆酶与致病性之间的关系是什么?漆酶基因是否具有不同的功能?在本实验中,通过聚乙二醇(PEG)介导的原生质体转化获得了[具体名称未给出]的敲除突变体和互补菌株,然后测定了相关表型。结果表明,[具体名称未给出]的敲除显著增加了芽管形成,附着胞形成率显著降低,延缓了菌丝生长和木质素降解,最终导致芒果果实致病性显著降低。此外,我们观察到[具体名称未给出]参与调节芽管和附着胞的形成、菌丝生长、木质素降解以及[具体名称未给出]的致病性。本研究首次报道漆酶的功能与芽管形成有关,这为[具体名称未给出]中漆酶的致病机制提供了新的见解。