Cao Jiakuo, Lv Junbo, Zhang Limin, Li Heng, Ma Hao, Zhao Yanxiang, Huang Jinguang
College of Plant Health and Medicine, Shandong Engineering Research Center for Environment-Friendly Agricultural Pest Management, Qingdao Agricultural University, Qingdao 266109, China.
Pathogens. 2024 Jul 16;13(7):592. doi: 10.3390/pathogens13070592.
is the primary causative agent of Fusarium head blight (FHB), a devastating disease affecting cereals globally. The high-mobility group (HMG) of non-histone proteins constitutes vital architectural elements within chromatin, playing diverse roles in various biological processes in eukaryotic cells. Nonetheless, the specific functions of HMG proteins in have yet to be elucidated. Here, we identified 10 HMG proteins in and extensively characterized the biological roles of one HMGB protein, FgNhp6. We constructed the FgNhp6 deletion mutant and its complementary strains. With these strains, we confirmed the nuclear localization of FgNhp6 and discovered that the absence of FgNhp6 led to reduced radial growth accompanied by severe pigmentation defects, a significant reduction in conidial production, and a failure to produce perithecia. The ∆FgNhp6 mutant exhibited a markedly reduced pathogenicity on wheat coleoptiles and spikes, coupled with a significant increase in deoxynivalenol production. An RNA sequencing (RNA-seq) analysis indicated that FgNhp6 deletion influenced a wide array of metabolic pathways, particularly affecting several secondary metabolic pathways, such as sterol biosynthesis and aurofusarin biosynthesis. The findings of this study highlight the essential role of FgNhp6 in the regulation of the asexual and sexual reproduction, deoxynivalenol (DON) production, and pathogenicity of .
是小麦赤霉病(FHB)的主要致病因子,FHB是一种影响全球谷类作物的毁灭性病害。非组蛋白的高迁移率族(HMG)构成染色质内重要的结构元件,在真核细胞的各种生物过程中发挥着多种作用。然而,HMG蛋白在中的具体功能尚未阐明。在此,我们在中鉴定出10种HMG蛋白,并广泛表征了一种HMGB蛋白FgNhp6的生物学作用。我们构建了FgNhp6缺失突变体及其互补菌株。利用这些菌株,我们证实了FgNhp6的核定位,并发现FgNhp6的缺失导致径向生长减少,伴有严重的色素沉着缺陷、分生孢子产量显著降低以及无法产生子囊壳。∆FgNhp6突变体在小麦胚芽鞘和穗上的致病性明显降低,同时脱氧雪腐镰刀菌烯醇的产量显著增加。RNA测序(RNA-seq)分析表明,FgNhp6的缺失影响了广泛的代谢途径,尤其影响了几种次级代谢途径,如甾醇生物合成和金孢子菌素生物合成。本研究结果突出了FgNhp6在调节的无性和有性繁殖、脱氧雪腐镰刀菌烯醇(DON)产生及致病性方面的重要作用。