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猪鼻支原体的Vlp系统:不同大小变异脂蛋白的组合表达产生高频表面抗原变异。

The Vlp system of Mycoplasma hyorhinis: combinatorial expression of distinct size variant lipoproteins generating high-frequency surface antigenic variation.

作者信息

Rosengarten R, Wise K S

机构信息

Department of Molecular Microbiology and Immunology, School of Medicine, University of Missouri-Columbia 65212.

出版信息

J Bacteriol. 1991 Aug;173(15):4782-93. doi: 10.1128/jb.173.15.4782-4793.1991.

DOI:10.1128/jb.173.15.4782-4793.1991
PMID:1856172
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC208157/
Abstract

Isogenic populations of Mycoplasma hyorhinis undergo in vitro high-frequency phase variation in the expression of surface lipoproteins; these products also vary markedly in size through changes in periodic protein structure (R. Rosengarten and K.S. Wise, Science 247:315-318, 1990). In this report, we rigorously define three distinct translation products comprising the Vlp (variable lipoprotein) system of M. hyorhinis SK76 and establish parameters of Vlp structural diversity and expression that distinguish the Vlp system from previously described examples of antigenic variation. VlpA, VlpB, and VlpC are prominent amphiphilic membrane lipoproteins characterized by detergent-phase fractionation and metabolic labeling with [35S]cysteine and [3H]palmitate. VlpA is distinguished from VlpB and VlpC by its selective labeling with [35S]methionine; VlpB and VlpC are distinguished by specific epitopes defined by surface-binding monoclonal antibodies (MAbs); a third MAb defines a surface epitope shared by VlpB and VlpC (but absent from VlpA). Each Vlp displays 12 to 30 spontaneous size variant forms comprising a periodic ladder that could also be generated by partial trypsin digestion of individual Vlp size variants. Different periodic intervals within VlpB and VlpC further distinguish these two products structurally. Mycoplasma colony opacity correlates inversely with Vlp size. Each Vlp undergoes independent, oscillating high-frequency phase variation in isogenic populations and can be expressed individually or concomitantly with other Vlps in a noncoordinate manner. All seven possible combinations of these three products were observed; however, no variants were found that lacked a Vlp. High-frequency size variation of each Vlp superimposed on combinatorial diversity in Vlp expression yields greater than 10(4) possible structurally distinct Vlp mosaics, of which 104 were documented along with 24 of 42 possible transitions among the seven Vlp combinations. In addition to these features, VlpA, VlpB, and VlpC were specifically recognized by serum antibodies from swine with experimental M. hyorhinis SK76-induced arthritis, indicating expression and immunogenicity of Vlps in the natural host. The structure and variation of Vlps and their known involvement in MAb-mediated modulation of mycoplasma-infected host cell properties and mycoplasma killing are discussed in relation to the surface architecture and adaptive potential of the wall-less mycoplasmas.

摘要

猪鼻支原体的同基因群体在体外会经历表面脂蛋白表达的高频相变;这些产物的大小也会因周期性蛋白质结构的变化而显著不同(R. 罗森加滕和K.S. 怀斯,《科学》247:315 - 318,1990)。在本报告中,我们严格定义了构成猪鼻支原体SK76的Vlp(可变脂蛋白)系统的三种不同翻译产物,并确定了Vlp结构多样性和表达的参数,这些参数将Vlp系统与先前描述的抗原变异实例区分开来。VlpA、VlpB和VlpC是突出的两亲性膜脂蛋白,通过去污剂相分级分离以及用[35S]半胱氨酸和[3H]棕榈酸进行代谢标记来表征。VlpA与VlpB和VlpC的区别在于其被[35S]甲硫氨酸选择性标记;VlpB和VlpC通过表面结合单克隆抗体(MAb)定义的特异性表位来区分;第三种MAb定义了VlpB和VlpC共有的一个表面表位(但VlpA中不存在)。每个Vlp显示出12至30种自发的大小变体形式,构成一个周期性阶梯,也可以通过对单个Vlp大小变体进行部分胰蛋白酶消化产生。VlpB和VlpC内不同的周期性间隔在结构上进一步区分了这两种产物。支原体菌落不透明度与Vlp大小呈负相关。每个Vlp在同基因群体中经历独立的、振荡的高频相变,并且可以单独表达或以非协调的方式与其他Vlp同时表达。观察到了这三种产物的所有七种可能组合;然而,未发现缺乏Vlp的变体。每个Vlp的高频大小变异叠加在Vlp表达的组合多样性上,产生了超过10(4)种可能的结构上不同的Vlp镶嵌体,其中记录了104种,以及七种Vlp组合中42种可能转变中的24种。除了这些特征外,VlpA、VlpB和VlpC被患有实验性猪鼻支原体SK76诱导关节炎的猪的血清抗体特异性识别,表明Vlp在天然宿主中的表达和免疫原性。结合无壁支原体的表面结构和适应潜力,讨论了Vlp的结构和变异及其已知在MAb介导的支原体感染宿主细胞特性调节和支原体杀伤中的作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/51f9/208157/2f8ef681e3c0/jbacter00105-0249-a.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/51f9/208157/1e4f1d9c54fb/jbacter00105-0245-a.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/51f9/208157/636e486ca906/jbacter00105-0246-a.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/51f9/208157/0012d08749b6/jbacter00105-0247-a.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/51f9/208157/cff46751f7f8/jbacter00105-0247-b.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/51f9/208157/15753879c659/jbacter00105-0248-a.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/51f9/208157/2f8ef681e3c0/jbacter00105-0249-a.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/51f9/208157/1e4f1d9c54fb/jbacter00105-0245-a.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/51f9/208157/636e486ca906/jbacter00105-0246-a.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/51f9/208157/0012d08749b6/jbacter00105-0247-a.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/51f9/208157/cff46751f7f8/jbacter00105-0247-b.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/51f9/208157/15753879c659/jbacter00105-0248-a.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/51f9/208157/2f8ef681e3c0/jbacter00105-0249-a.jpg

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Invasive behavior of mouse sarcoma cells is inhibited by blocking a 37,000-dalton plasma membrane glycoprotein with Fab fragments.
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