Elisha R. Verhaar , Jin Gan , Susan Buhl , Ziao Li , Amir Horowitz , Hidde L. Ploegh
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引用次数: 0
摘要
I 类 MHC 分子(MHC-I)HLA-E 含有来自其他 MHC-I 产品或病毒 I 型膜糖蛋白信号序列的多肽。目前尚未发现对 HLA-E 有特异性且与其他 MHC-I 产品无交叉反应的单克隆抗体。为了获得适用于各种应用的抗 HLA-E 特异性抗体,我们针对 HLA-E 的一个独特特征--细胞质尾部--生成了单克隆抗体。我们通过酶催化的转肽反应制造了一种免疫原,将 HLA-E 的细胞质尾部与能识别小鼠 II 类 MHC(MHC-II)产物的纳米抗体融合。我们获得了一种小鼠单克隆抗体,它能识别 HLA-E 细胞质尾部的 13 个残基。我们将编码这种抗体的基因克隆到表达载体中,在重链和轻链的 C 端放置 LPETG 分类酶识别基团。这种排列方式允许在这些 C 端安装特定位点的荧光团或生物素。得到的免疫球蛋白制备物标记有 4 个等量的荧光或生物素化有效载荷,然后可用于直接免疫荧光或通过荧光或基于链霉亲和素的方法检测标签。我们还发现,13 个残基序列可以作为表位标签,与蛋白质序列中的位置无关。该抗体可用于诊断,对患者肿瘤样本上的 HLA-E 进行染色,也可用作细胞外蛋白质的抗体表位标签,还可用于研究 HLA-E 细胞质尾部的独特作用。
A monoclonal antibody that recognizes a unique 13-residue epitope in the cytoplasmic tail of HLA-E
The Class I MHC molecule (MHC-I) HLA-E presents peptides that are derived from the signal sequences, either those of other MHC-I products, or of viral type I membrane glycoproteins. Monoclonal antibodies with proven specificity for HLA-E, and with no cross-reactions with other MHC-I products, have yet to be described. To obtain anti-HLA-E-specific antibodies suitable for a range of applications, we generated monoclonal antibodies against a unique feature of HLA-E: its cytoplasmic tail. We created an immunogen by performing an enzymatically catalyzed transpeptidation reaction to obtain a fusion of the cytoplasmic tail of HLA-E with a nanobody that recognizes murine Class II MHC (MHC-II) products. We obtained a mouse monoclonal antibody that recognizes a 13-residue stretch in the HLA-E cytoplasmic tail. We cloned the genes that encode this antibody in expression vectors to place an LPETG sortase recognition motif at the C-terminus of the heavy and light chains. This arrangement allows the site-specific installation of fluorophores or biotin at these C-termini. The resulting immunoglobulin preparations, labeled with 4 equivalents of a fluorescent or biotinylated payload of choice, can then be used for direct immunofluorescence or detection of the tag by fluorescence or by streptavidin-based methods. We also show that the 13-residue sequence can serve as an epitope tag, independent of the site of its placement within a protein’s sequence. The antibody can be used diagnostically to stain for HLA-E on patient tumor samples, it can be used as an antibody-epitope tag for extracellular proteins, and it enables research into the unique role of the cytoplasmic tail of HLA-E.
期刊介绍:
Molecular Immunology publishes original articles, reviews and commentaries on all areas of immunology, with a particular focus on description of cellular, biochemical or genetic mechanisms underlying immunological phenomena. Studies on all model organisms, from invertebrates to humans, are suitable. Examples include, but are not restricted to:
Infection, autoimmunity, transplantation, immunodeficiencies, inflammation and tumor immunology
Mechanisms of induction, regulation and termination of innate and adaptive immunity
Intercellular communication, cooperation and regulation
Intracellular mechanisms of immunity (endocytosis, protein trafficking, pathogen recognition, antigen presentation, etc)
Mechanisms of action of the cells and molecules of the immune system
Structural analysis
Development of the immune system
Comparative immunology and evolution of the immune system
"Omics" studies and bioinformatics
Vaccines, biotechnology and therapeutic manipulation of the immune system (therapeutic antibodies, cytokines, cellular therapies, etc)
Technical developments.