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Analysis of the mechanism rate and sites of proteolytic cleavage of human immunoglobulin D by high-pressure liquid chromatography.

机译:高压液相色谱分析人免疫球蛋白D的机理速率和蛋白水解切割位点。

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摘要

The high susceptibility of human immunoglobulin D to proteolytic degradation affects its biological function, metabolism, and immunoassay. High-pressure liquid chromatography was used to investigate the mechanism and rate of limited proteolytic cleavage of IgD and also to identify, isolate, and quantify the reaction products. Within 1 to 5 min, tryptic digestion of native IgD almost quantitatively yields a labile Fab fragment, a stable Fc fragment, and a highly charged peptide derived from the hinge region. A galactosamine-rich glycopeptide from the hinge region increases inversely as the Fab is largely degraded to a series of peptides within 1 hr. In contrast, the Fc and the high-charge peptide resist proteolysis for more than 24 hr. The initial sites of cleavage of IgD occur in the hinge region at exposed secondary structures predicted to be beta-turns. Concomitant with removal of the galactosamine-rich glycopeptide at its carboxyl terminus, the Fd fragment is rapidly and rather randomly degraded, but the light chain is somewhat more resistant than the Fd section of the delta heavy chain. This study of the rapid rate of proteolysis of IgD explains the rarity with which intact IgD is found in human sera. It also raises questions about immunoassay of IgD, which is usually measured with antisera against Fc. In vivo, proteolytic cleavage initiates the catabolism of circulating IgD and also affects the role and fate of IgD as an antigen receptor on the B-cell membrane.
机译:人免疫球蛋白D对蛋白水解降解的高度敏感性会影响其生物学功能,代谢和免疫测定。高压液相色谱用于研究IgD有限蛋白水解裂解的机理和速率,并用于鉴定,分离和定量反应产物。在1至5分钟内,对天然IgD的胰蛋白酶消化几乎可以定量产生不稳定的Fab片段,稳定的Fc片段和衍生自铰链区的高电荷肽。随着Fab在1小时内被很大程度上降解为一系列肽,来自铰链区的富含半乳糖胺的糖肽反而增加。相反,Fc和高电荷肽抵抗蛋白水解的时间超过24小时。 IgD切割的起始位点发生在铰链区域,该区域在预计为β-转角的暴露二级结构处。与在其羧基末端去除富含半乳糖胺的糖肽相伴,Fd片段迅速且随机降解,但轻链的抵抗力比δ重链的Fd区段更高。这项关于IgD快速蛋白水解速度的研究解释了在人血清中发现完整IgD的罕见性。它还提出了有关IgD免疫测定的问题,通常用抗Fc的抗血清进行测定。在体内,蛋白水解裂解引发循环IgD的分解代谢,并且还影响IgD作为B细胞膜上的抗原受体的作用和命运。

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