College of Biotechnology and Bioengineering, Zhejiang University of Technology, Hangzhou, Zhejiang Province, China.
Mol Microbiol. 2024 Jul;122(1):68-80. doi: 10.1111/mmi.15285. Epub 2024 Jun 6.
Iron is an essential element for microbial survival and secondary metabolism. However, excess iron availability and overloaded secondary metabolites can hinder microbial growth and survival. Microorganisms must tightly control iron homeostasis and secondary metabolism. Our previous studies have found that the stringent starvation protein A (SspA) positively regulates prodiginine biosynthesis by activating iron uptake in Pseudoalteromonas sp. strain R3. It is believed that the interaction between SspA and the small nucleotide ppGpp is important for iron to exert regulation functions. However, the roles of ppGpp in iron absorption and prodiginine biosynthesis, and the underlying relationship between ppGpp and SspA in strain R3 remain unclear. In this study, we found that ppGpp accumulation in strain R3 could be induced by limiting iron. In addition, ppGpp not only positively regulated iron uptake and prodiginine biosynthesis via increasing the SspA level but also directly repressed iron uptake and prodiginine biosynthesis independent of SspA, highlighting the finding that ppGpp can stabilize both iron levels and prodiginine production. Notably, the abolishment of ppGpp significantly increased prodiginine production, thus providing a theoretical basis for manipulating prodiginine production in the future. This dynamic ppGpp-mediated interaction between iron uptake and prodiginine biosynthesis has significant implications for understanding the roles of nutrient uptake and secondary metabolism for the survival of bacteria in unfavorable environments.
铁是微生物生存和次生代谢的必需元素。然而,过量的铁供应和过量的次生代谢物会阻碍微生物的生长和生存。微生物必须严格控制铁平衡和次生代谢。我们之前的研究发现,严格饥饿蛋白 A(SspA)通过激活假交替单胞菌 R3 中的铁摄取来正向调节普加霉素生物合成。人们认为 SspA 和小分子 ppGpp 之间的相互作用对于铁发挥调节功能很重要。然而,ppGpp 在铁吸收和普加霉素生物合成中的作用,以及在 R3 菌株中 ppGpp 和 SspA 之间的潜在关系尚不清楚。在本研究中,我们发现 R3 菌株中的 ppGpp 积累可以被铁限制诱导。此外,ppGpp 通过增加 SspA 水平不仅正向调节铁摄取和普加霉素生物合成,而且独立于 SspA 直接抑制铁摄取和普加霉素生物合成,突出了 ppGpp 可以稳定铁水平和普加霉素产量的发现。值得注意的是,ppGpp 的消除显著增加了普加霉素的产量,从而为未来操纵普加霉素的生产提供了理论依据。这种铁摄取和普加霉素生物合成之间的动态 ppGpp 介导的相互作用对于理解营养物质摄取和次生代谢在细菌在不利环境中生存中的作用具有重要意义。