Ma Tianling, Li Yiqing, Lou Yang, Shi Junrui, Sun Kewei, Ma Zhonghua, Yan Leiyan, Yin Yanni
State Key Laboratory of Rice Biology, Institute of Biotechnology, Zhejiang University, 866 Yuhangtang Road, Hangzhou 310058, China.
Department of Plant Pathology, Zhejiang Agriculture and Forest University, Hangzhou 311300, China.
J Fungi (Basel). 2022 Sep 26;8(10):1009. doi: 10.3390/jof8101009.
Increased emergence of drug resistance and DON pollution pose a severe problem in Fusarium head blight (FHB) control. While the H antiporter (DHA) family plays crucial roles in drug resistance, the characterization of DHA transporters has not been systematically studied in pathogenetic fungi. In this study, a systematic gene deletion analysis of all putative DHA transporter genes was carried out in , and one DHA1 transporter FgQdr2 was found to be involved in multiple drug resistance, ion homeostasis, and virulence. Further exploration showed that FgQdr2 is mainly localized in the cell membrane; its expression under normal growth conditions is comparatively low, but sufficient for the regulation of drug efflux. Additionally, investigation of its physiological substrates demonstrated that FgQdr2 is essential for the transport of K, Na, Cu, and the regulation of the membrane proton gradient. For its roles in the FHB disease cycle, FgQdr2 is associated with fungal infection via regulating the biosynthesis of virulence factor deoxynivalenol (DON), the scavenging of the phytoalexin, as well as both asexual and sexual reproduction in . Overall, the results of this study reveal the crucial roles of FgQdr2 in multiple drug resistance, ion homeostasis, and pathogenicity, which advance the understanding of the DHA transporters in pathogenetic fungi.
耐药性的不断出现以及呕吐毒素污染在小麦赤霉病(FHB)防治中构成了严重问题。虽然H⁺逆向转运蛋白(DHA)家族在耐药性中起着关键作用,但尚未在致病真菌中对DHA转运蛋白进行系统研究。在本研究中,对所有假定的DHA转运蛋白基因进行了系统的基因缺失分析,发现一个DHA1转运蛋白FgQdr2参与多种耐药性、离子稳态和毒力。进一步研究表明,FgQdr2主要定位于细胞膜;其在正常生长条件下的表达相对较低,但足以调节药物外排。此外,对其生理底物的研究表明,FgQdr2对K⁺、Na⁺、Cu²⁺的转运以及膜质子梯度的调节至关重要。就其在小麦赤霉病病害循环中的作用而言,FgQdr2通过调节致病因子脱氧雪腐镰刀菌烯醇(DON)的生物合成、植物抗毒素的清除以及无性和有性繁殖与真菌感染相关。总体而言,本研究结果揭示了FgQdr2在多种耐药性、离子稳态和致病性中的关键作用,这增进了对致病真菌中DHA转运蛋白的理解。