Yang Xiaofeng F, Hübner Anette, Popova Taissia G, Hagman Kayla E, Norgard Michael V
Department of Microbiology, University of Texas Southwestern Medical Center, Dallas, Texas 75390, USA.
Infect Immun. 2003 Sep;71(9):5012-20. doi: 10.1128/IAI.71.9.5012-5020.2003.
The Mlp (multicopy lipoproteins) family is one of many paralogous protein families in Borrelia burgdorferi. To examine the extent to which the 10 members of the Mlp family in B. burgdorferi strain 297 might be differentially regulated, antibodies specific for each of the Mlps were developed and used to analyze the protein expression profiles of individual Mlps when B. burgdorferi replicated under various cultivation conditions. All of the Mlps were upregulated coordinately when B. burgdorferi was cultivated at either elevated temperature, reduced culture pH, or increased spirochete cell density. Inasmuch as the expression of OspC is influenced by a novel RpoN-RpoS regulatory pathway, similar induction patterns for OspC and the Mlp paralogs prompted an assessment of whether the RpoN-RpoS pathway also was involved in Mlp expression. In contrast to wild-type B. burgdorferi, both RpoN- and RpoS-deficient mutants were unable to upregulate OspC or the Mlp paralogs when grown at lower pH (6.8), indicating that pH-mediated regulation of OspC and Mlp paralogs is dependent on the RpoN-RpoS pathway. However, when RpoN- or RpoS-deficient mutants were shifted from 23 degrees C to 37 degrees C or were cultivated to higher spirochete densities, some induction of the Mlps still occurred, whereas OspC expression was abolished. The combined findings suggest that the Mlp paralogs are coordinately regulated as a family and have an expression profile similar, but not identical, to that of OspC. Although Mlp expression as a family is influenced by the RpoN-RpoS regulatory pathway, there exists at least one additional layer of gene regulation, yet to be elucidated, contributing to Mlp expression in B. burgdorferi.
Mlp(多拷贝脂蛋白)家族是伯氏疏螺旋体中众多旁系同源蛋白家族之一。为了研究伯氏疏螺旋体菌株297中Mlp家族的10个成员可能受到不同程度调控的情况,针对每个Mlp开发了特异性抗体,并用于分析当伯氏疏螺旋体在各种培养条件下复制时各个Mlp的蛋白质表达谱。当伯氏疏螺旋体在升高的温度、降低的培养pH值或增加的螺旋体细胞密度下培养时,所有Mlp均被协同上调。由于OspC的表达受一条新的RpoN-RpoS调控途径影响,OspC和Mlp旁系同源物的相似诱导模式促使人们评估RpoN-RpoS途径是否也参与Mlp表达。与野生型伯氏疏螺旋体不同,RpoN和RpoS缺陷型突变体在较低pH值(6.8)下生长时均无法上调OspC或Mlp旁系同源物,这表明pH介导的OspC和Mlp旁系同源物调控依赖于RpoN-RpoS途径。然而,当RpoN或RpoS缺陷型突变体从23℃转移至37℃或培养至更高的螺旋体密度时,仍会出现一些Mlp的诱导表达,而OspC表达则被消除。综合研究结果表明,Mlp旁系同源物作为一个家族受到协同调控,其表达谱与OspC相似但不完全相同。虽然作为一个家族的Mlp表达受RpoN-RpoS调控途径影响,但至少还存在一层尚未阐明的基因调控,它对伯氏疏螺旋体中Mlp的表达有贡献。