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牙龈卟啉单胞菌vimA和vimE缺陷同基因突变体中牙龈蛋白酶成熟的改变。

Altered gingipain maturation in vimA- and vimE-defective isogenic mutants of Porphyromonas gingivalis.

作者信息

Vanterpool Elaine, Roy Francis, Sandberg Lawrence, Fletcher Hansel M

机构信息

Department of Biochemistry and Microbiology, School of Medicine, Loma Linda University, Loma Linda, California 92350, USA.

出版信息

Infect Immun. 2005 Mar;73(3):1357-66. doi: 10.1128/IAI.73.3.1357-1366.2005.

Abstract

We have previously shown that gingipain activity in Porphyromonas gingivalis is modulated by the unique vimA and vimE genes. To determine if these genes had a similar phenotypic effect on protease maturation and activation, isogenic mutants defective in those genes were further characterized. Western blot analyses with antigingipain antibodies showed RgpA-, RgpB-, and Kgp-immunoreactive bands in membrane fractions as well as the culture supernatant of both P. gingivalis W83 and FLL93, the vimE-defective mutant. In contrast, the membrane of P. gingivalis FLL92, the vimA-defective mutant, demonstrated immunoreactivity only with RgpB antibodies. With mass spectrometry or Western blots, full-length RgpA and RgpB were identified from extracellular fractions. In similar extracellular fractions from P. gingivalis FLL92 and FLL93, purified RgpB activated only arginine-specific activity. In addition, the lipopolysaccharide profiles of the vimA and vimE mutants were truncated in comparison to that of W83. While glycosylated proteins were detected in the membrane and extracellular fractions from the vimA- and vimE-defective mutants, a monoclonal antibody (1B5) that reacts with specific sugar moieties of the P. gingivalis cell surface polysaccharide and membrane-associated Rgp gingipain showed no immunoreactivity with these fractions. Taken together, these results indicate a possible defect in sugar biogenesis in both the vimA- and vimE-defective mutants. These modulating genes play a role in the secretion, processing, and/or anchorage of gingipains on the cell surface.

摘要

我们之前已经表明,牙龈卟啉单胞菌中的牙龈蛋白酶活性受独特的vimA和vimE基因调控。为了确定这些基因对蛋白酶成熟和激活是否具有相似的表型效应,对这些基因存在缺陷的同基因突变体进行了进一步表征。用抗牙龈蛋白酶抗体进行的蛋白质印迹分析显示,在牙龈卟啉单胞菌W83和FLL93(vimE缺陷突变体)的膜组分以及培养上清液中均出现了RgpA、RgpB和Kgp免疫反应条带。相比之下,vimA缺陷突变体牙龈卟啉单胞菌FLL92的膜仅与RgpB抗体表现出免疫反应性。通过质谱分析或蛋白质印迹,从细胞外组分中鉴定出了全长RgpA和RgpB。在来自牙龈卟啉单胞菌FLL92和FLL93的类似细胞外组分中,纯化的RgpB仅激活了精氨酸特异性活性。此外,与W83相比,vimA和vimE突变体的脂多糖谱被截断。虽然在vimA和vimE缺陷突变体的膜和细胞外组分中检测到了糖基化蛋白,但一种与牙龈卟啉单胞菌细胞表面多糖和膜相关Rgp牙龈蛋白酶的特定糖部分发生反应的单克隆抗体(1B5)与这些组分没有免疫反应性。综上所述,这些结果表明vimA和vimE缺陷突变体在糖生物合成中可能存在缺陷。这些调节基因在牙龈蛋白酶在细胞表面的分泌、加工和/或锚定中发挥作用。

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