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梨形蛋白对采后苹果病原菌扩展青霉中PAT生物合成及胁迫抗性的影响

Effects of Pirin-like proteins on PAT biosynthesis and stress resilience in postharvest apple pathogen Penicillium expansum.

作者信息

Wang Yanling, Huang Yanqi

机构信息

School of Life Science and Engineering, Lanzhou University of Technology, Lanzhou, 730070, China.

出版信息

Arch Microbiol. 2025 Jun 26;207(8):187. doi: 10.1007/s00203-025-04385-1.

Abstract

Penicillium expansum is a predominant postharvest pathogen that causes blue mold on pome fruits and produces PAT. Pirin proteins, belonging to the Cupin superfamily, have been found in a variety of organisms and have a multitude of functions. However, the Pirin-like proteins in P. expansum have not been identified and functionally studied. In this study, we screened and identified two Pirin-like proteins in P. expansum (Pepirin1 and Pepirin2). Pepirin1 was localized in mycelial septa and conidia, while Pepirin2 was mainly localized in cytoplasm. The growth and pathogenicity of P. expansum were characterized through knockout and complementation of Pepirin1 and Pepirin2. Although deletion of these genes had no significant effect on fungal growth or pathogenicity, it did lead to increased sensitivity to osmotic and oxidative stress. Moreover, compared with the WT, ΔPepirin1 and ΔPepirin2 showed a significant reduction in the patulin accumulation, correlating with a significant down-regulation of key genes for patulin biosynthesis (PatG, PatH, PatN). In addition, Pepirin1 has no quercetinase activity. All these results suggest that Pepirin proteins play important roles in patulin biosynthesis and osmotic and oxidative stress responses in P. expansum.

摘要

扩展青霉是一种主要的采后病原菌,可导致仁果类水果产生青霉病并产生棒曲霉素。属于铜蛋白超家族的梨蛋白已在多种生物体中被发现,并具有多种功能。然而,扩展青霉中类梨蛋白尚未得到鉴定和功能研究。在本研究中,我们筛选并鉴定了扩展青霉中的两种类梨蛋白(Pepirin1和Pepirin2)。Pepirin1定位于菌丝隔膜和分生孢子中,而Pepirin2主要定位于细胞质中。通过敲除和互补Pepirin1和Pepirin2对扩展青霉的生长和致病性进行了表征。虽然缺失这些基因对真菌生长或致病性没有显著影响,但确实导致对渗透胁迫和氧化胁迫的敏感性增加。此外,与野生型相比,ΔPepirin1和ΔPepirin2的棒曲霉素积累显著减少,这与棒曲霉素生物合成关键基因(PatG、PatH、PatN)的显著下调相关。此外,Pepirin1没有槲皮素酶活性。所有这些结果表明,梨蛋白在扩展青霉的棒曲霉素生物合成以及渗透胁迫和氧化胁迫反应中发挥重要作用。

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