Department of Biochemistry and Molecular Biology, Universidade Federal do Paraná, Curitiba, PR, Brazil.
Department of Biochemistry and Biotechnology, Universidade Estadual de Londrina, Londrina, PR, Brazil.
Arch Microbiol. 2024 Jun 19;206(7):310. doi: 10.1007/s00203-024-04044-x.
The RNA-Seq profiling of Herbaspirillum seropedicae SmR1 wild-type and ntrC mutant was performed under aerobic and three nitrogen conditions (ammonium limitation, ammonium shock, and nitrate shock) to identify the major metabolic pathways modulated by these nitrogen sources and those dependent on NtrC. Under ammonium limitation, H. seropedicae scavenges nitrogen compounds by activating transporter systems and metabolic pathways to utilize different nitrogen sources and by increasing proteolysis, along with genes involved in carbon storage, cell protection, and redox balance, while downregulating those involved in energy metabolism and protein synthesis. Growth on nitrate depends on the narKnirBDHsero_2899nasA operon responding to nitrate and NtrC. Ammonium shock resulted in a higher number of genes differently expressed when compared to nitrate. Our results showed that NtrC activates a network of transcriptional regulators to prepare the cell for nitrogen starvation, and also synchronizes nitrogen metabolism with carbon and redox balance pathways.
采用 RNA-Seq 技术对 Herbaspirillum seropedicae SmR1 野生型和 ntrC 突变体在有氧和三种氮源条件(铵限制、铵冲击和硝态氮冲击)下的基因表达进行了分析,以鉴定受这些氮源和 NtrC 调控的主要代谢途径。在铵限制条件下,H. seropedicae 通过激活转运系统和代谢途径来利用不同的氮源,并增加蛋白水解,同时上调与碳储存、细胞保护和氧化还原平衡相关的基因,下调与能量代谢和蛋白质合成相关的基因,从而获取氮化合物。在硝酸盐上的生长依赖于 narKnirBDHsero_2899nasA 操纵子对硝酸盐和 NtrC 的响应。与硝酸盐相比,铵冲击导致更多的基因表达差异。我们的结果表明,NtrC 激活了一个转录调控网络,使细胞为氮饥饿做好准备,同时使氮代谢与碳和氧化还原平衡途径同步。