Nguyen Q, Willenbrock F, Cockett M I, O'Shea M, Docherty A J, Murphy G
Department of Cell and Molecular Biology, Strangeways Research Laboratory, Cambridge, U.K.
Biochemistry. 1994 Mar 1;33(8):2089-95. doi: 10.1021/bi00174a015.
The matrix metalloproteinases gelatinase A and stromelysin-1 have definable N-terminal (catalytic) and C-terminal domains. In order to analyze their interactions with the N- and C-terminal domains of the tissue inhibitors of metalloproteinases TIMP-1 and -2, mutants of both the enzymes and the inhibitors were prepared in which the C-terminal domains had been deleted. Since the Ki values for TIMP inhibition of the matrix metalloproteinases are in the picomolar range, it was not possible to measure these accurately within the sensitivity of available activity assays. Rate constants for the association of the wild-type proteins were therefore determined and systematically compared with those for the deletion mutants. It was found that TIMP-1 binds more rapidly than TIMP-2 to stromelysin-1 and that the C-terminal domain of the enzyme does not affect the rate of association of enzyme and inhibitor. This is in contrast to gelatinase A, where the C-terminal domain has been shown to play an important role in increasing the rate of complex formation with the TIMPs (Willenbrock et al., 1993). The TIMPs are also comprised of an N- and C-terminal domain. By deletion mutagenesis, we found that the C-terminal domain of both TIMPs contributed less to the rate of complex formation with stromelysin-1 than to that with gelatinase A. Hybrids of the N- and C-terminal domains of gelatinase A and stromelysin-1 were prepared and used to analyze further the differences in domain interactions with the TIMPs. They demonstrated that the interactions between the C-terminal domains of enzyme and inhibitor can occur irrespective of the nature of the N-terminal domain. We can conclude that the TIMPs have two major binding regions which associate in different ways with the domains of the enzymes gelatinase A and stromelysin-1. The N-terminal domains of the TIMPs bind to the enzyme catalytic domains to inhibit activity. The TIMP C-terminal domain acts to increase the association rate constant by binding to the N-terminal domain of stromelysin or the C-terminal domain of gelatinase A.
基质金属蛋白酶明胶酶A和基质溶解素-1具有可明确界定的N端(催化)和C端结构域。为了分析它们与金属蛋白酶组织抑制剂TIMP-1和TIMP-2的N端和C端结构域的相互作用,制备了酶和抑制剂的突变体,其中C端结构域已被删除。由于基质金属蛋白酶对TIMP抑制的Ki值处于皮摩尔范围内,因此在现有活性测定的灵敏度范围内无法准确测量这些值。因此,测定了野生型蛋白结合的速率常数,并与缺失突变体的速率常数进行了系统比较。发现TIMP-1比TIMP-2与基质溶解素-1结合得更快,并且酶的C端结构域不影响酶与抑制剂的结合速率。这与明胶酶A相反,在明胶酶A中,C端结构域已被证明在增加与TIMP形成复合物的速率中起重要作用(Willenbrock等人,1993年)。TIMP也由N端和C端结构域组成。通过缺失诱变,我们发现两种TIMP的C端结构域对与基质溶解素-1形成复合物的速率的贡献比对与明胶酶A形成复合物的速率的贡献小。制备了明胶酶A和基质溶解素-1的N端和C端结构域的杂交体,并用于进一步分析结构域与TIMP相互作用的差异。它们表明,酶和抑制剂的C端结构域之间的相互作用可以不考虑N端结构域的性质而发生。我们可以得出结论,TIMP有两个主要的结合区域,它们以不同的方式与明胶酶A和基质溶解素-1的结构域结合。TIMP的N端结构域与酶催化结构域结合以抑制活性。TIMP的C端结构域通过与基质溶解素的N端结构域或明胶酶A的C端结构域结合来增加结合速率常数。