使用抗新表位抗体分析软骨降解事件和新表位特异性的分子基础。

John S Mort, Carl R Flannery, Joe Makkerh, Joanne C Krupa, Eunice R Lee
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引用次数: 31

摘要

软骨蛋白聚糖,聚合蛋白的降解是正常生长发育和关节病理的一个重要方面。不同的蛋白水解酶在这一过程中的作用可以从聚集蛋白核心蛋白的切割位点来确定,从而产生新的末端(新表位)。由这些裂解事件产生的针对不同新表位的特异性抗体为分析这些过程提供了强大的工具。同样的方法可以用来区分加工过的活性形式的蛋白酶和它们的非活性形式的蛋白酶。由于这些酶的蛋白水解过程需要去除抑制前区,因此它也导致n端新表位的产生。以新生大鼠长骨为模型系统,研究表明,ADAMTS-4的活性形式[具有血栓反应蛋白基元-4的崩解素和金属蛋白酶],而不是ADAMTS-5,与已知由该金属蛋白酶产生的聚集蛋白切割新表位共定位。因此,在长骨生长中,聚集蛋白的更新似乎依赖于ADAMTS-4的活性。为了证明抗新表位抗体特异性的分子基础,对adamts -4介导的聚集蛋白裂解产生的新表位特异性单克隆抗体的Fv区进行了建模,并模拟了肽表位的结合。在停靠结构中,肽抗原的n端明显埋在结合位点空腔中。没有开放的裂缝使得完整的底物不可能通过结合位点,这为这类抗体的特异性提供了基本原理。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Use of anti-neoepitope antibodies for the analysis of degradative events in cartilage and the molecular basis for neoepitope specificity.

Degradation of the cartilage proteoglycan, aggrecan, is an essential aspect of normal growth and development, and of joint pathology. The roles of different proteolytic enzymes in this process can be determined from the sites of cleavage in the aggrecan core protein, which generates novel termini (neoepitopes). Antibodies specific for the different neoepitopes generated by such cleavage events provide powerful tools with which to analyse these processes. The same approach can be used to differentiate the processed, active forms of proteases from their inactive pro-forms. Since the proteolytic processing of these enzymes requires the removal of the inhibitory pro-region, it also results in the generation of N-terminal neoepitopes. Using the newborn rat long bone as a model system, it was shown that the active form of ADAMTS-4 [ADAM (a disintegrin and metalloproteinase) with thrombospondin motifs-4], but not ADAMTS-5, co-localizes with the aggrecan cleavage neoepitopes known to be produced by this metalloproteinase. Thus, in long bone growth, aggrecan turnover seems to be dependent on ADAMTS-4 activity. To demonstrate the molecular basis of the specificity of anti-neoepitope antibodies, the Fv region of a monoclonal antibody specific for a neoepitope generated by the ADAMTS-4-mediated cleavage of aggrecan has been modelled and the binding of the peptide epitope simulated. In the docked structure, the N-terminus of the peptide antigen is clearly buried in the binding-site cavity. The absence of an open cleft makes it impossible for the intact substrate to pass through the binding site, providing a rationale for the specificity of this class of antibodies.

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