Institute of Microbiology, College of Life Sciences, Zhejiang University, Hangzhou 310058, China.
Institute of Microbiology, College of Life Sciences, Zhejiang University, Hangzhou 310058, China.
Fungal Genet Biol. 2024 Aug;173:103908. doi: 10.1016/j.fgb.2024.103908. Epub 2024 Jun 9.
Reductive assimilation pathway involves ferric reductase and ferrous iron transporter, which is integral for fungal iron acquisition. A family of ferric reductase-like proteins has been functionally characterized in the filamentous entomopathogenic fungus Beauveria bassiana. In this investigation, two ferrous iron transporter-like proteins (Ftr) were functionally annotated in B. bassiana. BbFtr1 and BbFtr2 displayed high similarity in structure and were associated with the plasma and nuclear membrane. Their losses had no negatively influence on fungal growth on various nutrients and development under the iron-replete condition. Single mutants of BbFTR1 and BbFTR2 displayed the iron-availability dependent developmental defects, and double mutant exhibited the significantly impaired developmental potential under the iron-limited conditions. In insect bioassay, the double mutant also showed the weaker virulence than either of two single disruption mutants. These results suggested that two ferrous iron transporter-like proteins function independently in fungal physiologies under the iron-deficient condition. Intriguingly, a bZIP transcription factor BbHapX was required for expression of BbFTR1 and BbFTR2 under iron-depleted conditions. This study enhances our understanding of the iron uptake system in the filamentous entomopathogenic fungi.
还原同化途径涉及铁还原酶和亚铁铁转运蛋白,这对真菌铁的获取至关重要。在丝状昆虫病原真菌球孢白僵菌中,已经对一系列铁还原酶样蛋白进行了功能表征。在本研究中,在球孢白僵菌中对两个亚铁铁转运蛋白样蛋白(Ftr)进行了功能注释。BbFtr1 和 BbFtr2 在结构上具有高度相似性,与质膜和核膜相关。它们的缺失对真菌在各种营养物质上的生长和铁充足条件下的发育没有负面影响。BbFTR1 和 BbFTR2 的单突变体表现出铁可用性依赖性发育缺陷,而双突变体在铁限制条件下表现出明显受损的发育潜力。在昆虫生物测定中,双突变体也表现出比两个单突变体中的任何一个都弱的毒力。这些结果表明,在缺铁条件下,两种亚铁铁转运蛋白样蛋白在真菌生理学中独立发挥作用。有趣的是,bZIP 转录因子 BbHapX 是铁耗竭条件下 BbFTR1 和 BbFTR2 表达所必需的。本研究增强了我们对丝状昆虫病原真菌中铁摄取系统的理解。