Oberst Michael D, Williams Cicely A, Dickson Robert B, Johnson Michael D, Lin Chen-Yong
Department of Oncology, Lombardi Cancer Center, Georgetown University Medical Center, Washington, D.C. 20057-1412, USA.
J Biol Chem. 2003 Jul 18;278(29):26773-9. doi: 10.1074/jbc.M304282200. Epub 2003 May 8.
The activation of matriptase requires proteolytic cleavage at a canonical activation motif that converts the enzyme from a one-chain zymogen to an active, two-chain protease. In this study, matriptase bearing a mutation in its catalytic triad was unable to undergo this activational cleavage, suggesting that the activating cleavage occurs via a transactivation mechanism where interaction between matriptase zymogen molecules leads to activation of the protease. Using additional point and deletion mutants, we showed that activation of matriptase requires proteolytic processing at Gly-149 in the SEA domain of the protease, glycosylation of the first CUB domain and the serine protease domain, and intact low density lipoprotein receptor class A domains. Its cognate inhibitor, hepatocyte growth factor activator inhibitor-1, may also participate in the activation of matriptase, based on the observation that matriptase activation did not occur when the protease was co-expressed with hepatocyte growth factor activator inhibitor-1 mutated in its low density lipoprotein receptor class A domain. These results suggest that besides matriptase catalytic activity, matriptase activation requires post-translational modification of the protease, intact noncatalytic domains, and its cognate inhibitor.
胃蛋白酶的激活需要在一个典型的激活基序处进行蛋白水解切割,该切割将酶从单链酶原转化为活性双链蛋白酶。在本研究中,催化三联体发生突变的胃蛋白酶无法进行这种激活切割,这表明激活切割是通过反式激活机制发生的,即胃蛋白酶原分子之间的相互作用导致蛋白酶的激活。使用额外的点突变和缺失突变体,我们发现胃蛋白酶的激活需要在蛋白酶SEA结构域的甘氨酸-149处进行蛋白水解加工、第一个CUB结构域和丝氨酸蛋白酶结构域的糖基化以及完整的低密度脂蛋白受体A类结构域。基于在蛋白酶与低密度脂蛋白受体A类结构域发生突变的肝细胞生长因子激活抑制剂-1共表达时胃蛋白酶激活未发生这一观察结果,其同源抑制剂肝细胞生长因子激活抑制剂-1也可能参与胃蛋白酶的激活。这些结果表明,除了胃蛋白酶的催化活性外,胃蛋白酶的激活还需要蛋白酶的翻译后修饰、完整的非催化结构域及其同源抑制剂。