Activation of extracellular matrix metalloproteases by proteases and organomercurials.

G A Grant, G I Goldberg, S M Wilhelm, C He, A Z Eisen
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Abstract

Extracellular matrix metalloproteases are synthesized as proenzymes and are activated by certain physiological agents after secretion into the extracellular space. The identity of these agents and the stimulus that elicits their response in vivo is only recently becoming clear, but a variety of agents or stimuli are capable of activating these metalloproteases in vitro also. Of these, the most well studied and characterized are trypsin, plasmin and the organomercurials. These agents appear to have in common an ability to disrupt the structure of the stable latent enzyme in such a way as to allow the generation of a proteolytic active site. In the case of organomercurial activation, intramolecular proteolytic cleavage of the amino-terminus of the enzyme occurs subsequent to generation of activity. A similar intramolecular process is seen with trypsin and plasmin activation except that it is initiated by a single trypsin or plasmin catalyzed cleavage in the amino-terminus prior to the autocatalytic cleavages. A possible explanation for organomercurial activation is that the mercurial disrupts a cysteinyl residue coordination bond with the active site zinc that prevents interaction with substrate. Disruption of this complex would allow productive enzyme-substrate interaction via the newly available coordination site. In addition, activated stromelysin is capable of increasing the specific activity of active interstitial collagenase by approximately ten-fold through what appears to be proteolytic removal of a small peptide.

蛋白酶和有机聚合物对细胞外基质金属蛋白酶的激活。
细胞外基质金属蛋白酶是作为前酶合成的,分泌到细胞外空间后被某些生理因子激活。这些药物的特性和引起它们体内反应的刺激直到最近才变得清楚,但各种药物或刺激在体外也能够激活这些金属蛋白酶。其中,研究得最透彻的是胰蛋白酶、纤溶酶和有机高分子。这些试剂似乎有一个共同的能力,以这样一种方式破坏稳定潜伏酶的结构,从而允许产生蛋白水解活性位点。在有机分子活化的情况下,酶的氨基末端的分子内蛋白水解裂解发生在活性产生之后。类似的分子内过程见于胰蛋白酶和纤溶酶的活化,除了它是由单个胰蛋白酶或纤溶酶催化的氨基端裂解在自催化裂解之前启动的。有机汞活化的一种可能解释是汞破坏了半胱氨酸残基与活性位点锌的配位键,从而阻止了与底物的相互作用。这种复合物的破坏将允许生产酶-底物通过新的可用的配合位点相互作用。此外,激活的基质溶解素能够通过蛋白水解去除小肽,将活性间质胶原酶的比活性提高约10倍。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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