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ADENOVIRUS-RECEPTOR INTERACTION--STRUCTURE, FUNCTION

ADENOVIRUS-RECEPTOR INTERACTION--STRUCTURE, FUNCTION
腺病毒-受体相互作用——结构、功能
批准号:
6488963
负责人:
Paul I Freimuth
金额:
$29.62万
依托单位国家:
美国
项目类别:
财政年份:
1996
资助国家:
美国
项目状态:
已结题
起止时间:
1996-07-01 至 2004-12-31

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中文摘要
翻译
我们的腺病毒-12纤维球结构域与CAR的可溶性片段复合,CAR是B组柯萨奇病毒和许多腺病毒的细胞受体,挑战了已建立的病毒-受体结合机制模型。 结上的CAR结合位点由表面环形成,表面环是结蛋白的最可变部分,并解释了血清学差异,而不是由基于Ad 5结的早期晶体结构被提出作为候选结合位点的更高度保守的区域形成。 保守特异性和抗原可变区的受体结合位点的重叠强烈表明病毒-受体结合的分子机制的方面可能是独特的,并且在非病毒系统中没有先例。 knob-CAR和HIV gp 120-CD 4界面都含有不寻常的大的充满水的空腔,除了直接接触界面上的氨基酸外,还允许间接的水介导的结合。 该特征可能是缓冲结合位点特异性对抗重叠抗原变异的机制的一部分。 我们将使用X射线晶体学、诱变和生物化学的组合方法详细分析knob-CAR结合的机制。 来自不同腺病毒血清型的纤维球的结构将单独解决,并与CAR复合,以研究抗原变异对受体结合位点的结构和活性的影响。 将通过诱变和定量结合试验评估直接或通过腔结合水分子间接接触CAR的单个结氨基酸的贡献。 将分离干扰knob-CAR结合的knob特异性单克隆抗体,以表征受体结合位点的抗原结构。 从我们的研究中获得的知识可能广泛适用于了解其他病毒系统(包括HIV)中受体结合的机制。 我们的研究结果也可能应用于疫苗和抗病毒药物的开发,并且它们将影响基于腺病毒的载体的向性用于基因治疗的努力。
英文摘要
Our structure of the adenovirus-12 fiber knob domain in complex with a soluble fragment of CAR, the cellular receptor for group B coxsackieviruses and many adenoviruses, challenges established models of the mechanism of virus-receptor binding. The CAR binding site on knob is formed from surface loops, which are the most variable parts of the knob protein and account for serological differences, rather than from more highly conserved regions that were proposed as candidate binding sites based on an earlier crystal structure of the Ad5 knob. The overlap of a receptor binding site of conserved specificity and antigenically variable regions strongly suggests that aspects of the molecular mechanism of virus-receptor binding may be unique and without precedent in non-viral systems. Both the knob-CAR and HIV gp120-CD4 interfaces contain unusual large water-filled cavities, allowing for indirect water-mediated binding in addition to direct contact of amino acids across the interface. This feature may be part of a mechanism to buffer binding site specificity against overlapping antigenic variation. We will analyze the mechanism of knob-CAR binding in detail, using the combined approaches of x-ray crystallography, mutagenesis and biochemistry. The structures of fiber knobs from different adenovirus serotypes will be solved alone and in complex with CAR to study the impact of antigenic variation on the structure and activity of the receptor binding site. The contribution of individual knob amino acids that contact CAR directly or indirectly through cavity-bound water molecules will be assessed by mutagenesis and quantitative binding assays. Knob-specific monoclonal antibodies which interfere with knob-CAR binding will be isolated to characterize the antigenic structure of the receptor binding sites. Knowledge gained from our studies may be broadly applicable to understanding mechanisms of receptor binding in other virus systems, including HIV. Our results also may have application to the development of vaccines and anti- viral drugs, and they will impact efforts to retarget the tropism of adenovirus-based vectors for gene therapy.
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