Department of Microbiology and Cell Science, Genetics Institute, Institute of Food and Agricultural Sciences, University of Florida, Gainesville, FL, United States of America.
PLoS One. 2018 Apr 10;13(4):e0195746. doi: 10.1371/journal.pone.0195746. eCollection 2018.
LdtR is a master regulator of gene expression in Liberibacter asiaticus, one of the causative agents of citrus greening disease. LdtR belongs to the MarR-family of transcriptional regulators and it has been linked to the regulation of more than 180 genes in Liberibacter species, most of them gathered in the following Clusters of Orthologous Groups: cell motility, cell wall envelope, energy production, and transcription. Our previous transcriptomic evidence suggested that LdtR is directly involved in the modulation of the zinc uptake system genes (znu) in the closely related L. crescens. In this report, we show that LdtR is involved in the regulation of one of the two encoded zinc uptake mechanisms in L. asiaticus, named znu2. We also show that LdtR binds zinc with higher affinity than benzbromarone, a synthetic effector inhibitory molecule, resulting in the disruption of the LdtR:promoter interactions. Using site-directed mutagenesis, electrophoretic mobility shift assays (EMSAs), and isothermal titration calorimetry, we identified that residues C28 and T43 in LdtR, located in close proximity to the Benz1 pocket, are involved in the interaction with zinc. These results provided new evidence of a high-affinity effector molecule targeting a key player in L. asiaticus' physiology and complemented our previous findings about the mechanisms of signal transduction in members of the MarR-family.
LdtR 是亚洲韧皮杆菌基因表达的主要调控因子,亚洲韧皮杆菌是柑橘黄龙病的病原体之一。LdtR 属于 MarR 家族转录调控因子,它与韧皮杆菌属中超过 180 个基因的调节有关,其中大多数基因聚集在以下同源基因簇中:细胞运动性、细胞壁包膜、能量产生和转录。我们之前的转录组学证据表明,LdtR 直接参与调节密切相关的 L. crescens 中的锌摄取系统基因 (znu)。在本报告中,我们表明 LdtR 参与调节亚洲韧皮杆菌中两种编码锌摄取机制之一的 znu2。我们还表明,LdtR 与苯溴马隆(一种合成效应抑制分子)结合锌的亲和力高于后者,导致 LdtR:启动子相互作用被破坏。通过定点突变、电泳迁移率变动分析 (EMSA) 和等温滴定量热法,我们确定了 LdtR 中位于 Benz1 口袋附近的 C28 和 T43 残基参与了与锌的相互作用。这些结果为靶向亚洲韧皮杆菌生理关键因子的高亲和力效应分子提供了新的证据,并补充了我们之前关于 MarR 家族成员信号转导机制的发现。