首页> 外文期刊>Journal of bacteriology >Characterization of the Osmoprotectant Transporter OpuC from Pseudomonas syringae and Demonstration that Cystathionine-β-Synthase Domains Are Required for Its Osmoregulatory Function
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Characterization of the Osmoprotectant Transporter OpuC from Pseudomonas syringae and Demonstration that Cystathionine-β-Synthase Domains Are Required for Its Osmoregulatory Function

机译:丁香假单胞菌渗透保护剂转运蛋白OpuC的表征以及证明其调渗功能需要胱硫醚-β-合酶结构域

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The plant pathogen Pseudomonas syringae may cope with osmotic stress on plants, in part, by importing osmoprotective compounds. In this study, we found that P. syringae pv. tomato strain DC3000 was distinct from most bacterial species in deriving greater osmoprotection from exogenous choline than from glycine betaine. This superior osmoprotection was correlated with a higher capacity for uptake of choline than for uptake of glycine betaine. Of four putative osmoregulatory ABC transporters in DC3000, one, designated OpuC, functioned as the primary or sole transporter for glycine betaine and as one of multiple transporters for choline under high osmolarity. Surprisingly, the homolog of the well-characterized ProU transporter from Escherichia coli and Salmonella enterica serovar Typhimurium did not function in osmoprotection. The P. syringae pv. tomato OpuC transporter was more closely related to the Bacillus subtilis and Listeria monocytogenes OpuC transporters than to known osmoprotectant transporters in gram-negative bacteria based on sequence similarity and genetic arrangement. The P. syringae pv. tomato OpuC transporter had a high affinity for glycine betaine, a low affinity for choline, and a broad substrate specificity that included acetylcholine, carnitine, and proline betaine. Tandem cystathionine-β-synthase (CBS) domains in the ATP-binding component of OpuC were required for transporter function. The presence of these CBS domains was correlated with osmoregulatory function among the putative transporters examined in DC3000 and was found to be predictive of functional osmoregulatory transporters in other pseudomonads. These results provide the first functional evaluation of an osmoprotectant transporter in a Pseudomonas species and demonstrate the usefulness of the CBS domains as predictors of osmoregulatory activity.
机译:植物病原体 Pseudomonas syringae 可能通过输入渗透保护化合物来应对植物的渗透胁迫。在这项研究中,我们发现 P。丁香科番茄菌株DC3000与大多数细菌物种的不同之处在于,与甘氨酸甜菜碱相比,外源胆碱具有更大的渗透保护作用。这种优越的渗透保护作用与胆碱摄取能力比甘氨酸甜菜碱摄取能力更高有关。在DC3000中的四种推定的渗透调节性ABC转运蛋白中,一种称为OpuC,在高渗透压下用作甘氨酸甜菜碱的主要或唯一转运蛋白,并且是胆碱的多种转运蛋白之一。令人惊讶的是,来自大肠杆菌肠炎沙门氏菌血清型鼠伤寒的ProU转运蛋白的同源物在渗透保护中没有作用。 P。丁香科在革兰氏阴性细菌中,基于序列相似性和遗传安排,番茄的OpuC转运蛋白与枯草芽孢杆菌单核细胞增生李斯特菌 OpuC转运蛋白比已知的渗透保护剂转运蛋白更紧密。 P。丁香科番茄OpuC转运蛋白对甘氨酸甜菜碱的亲和力高,对胆碱的亲和力低,并且底物特异性广,包括乙酰胆碱,肉碱和脯氨酸甜菜碱。 OpuC的ATP结合成分中的串联半胱氨酸-β-合酶(CBS)域是转运蛋白功能所必需的。这些CBS结构域的存在与DC3000中推定的转运蛋白之间的渗透调节功能相关,并被发现可预测其他假单核细胞中的功能渗透调节转运蛋白。这些结果提供了对假单胞菌物种中的渗透保护剂转运蛋白的首次功能评估,并证明了CBS结构域作为渗透调节活性预测因子的有用性。

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