Mittl P R, Di Marco S, Krebs J F, Bai X, Karanewsky D S, Priestle J P, Tomaselli K J, Grütter M G
Core Drug Discovery Technologies, Ciba-Geigy AG, CH-4002 Basel, Switzerland.
J Biol Chem. 1997 Mar 7;272(10):6539-47. doi: 10.1074/jbc.272.10.6539.
The cysteine protease CPP32 has been expressed in a soluble form in Escherichia coli and purified to >95% purity. The three-dimensional structure of human CPP32 in complex with the irreversible tetrapeptide inhibitor acetyl-Asp-Val-Ala-Asp fluoromethyl ketone was determined by x-ray crystallography at a resolution of 2.3 A. The asymmetric unit contains a (p17/p12)2 tetramer, in agreement with the tetrameric structure of the protein in solution as determined by dynamic light scattering and size exclusion chromatography. The overall topology of CPP32 is very similar to that of interleukin-1beta-converting enzyme (ICE); however, differences exist at the N terminus of the p17 subunit, where the first helix found in ICE is missing in CPP32. A deletion/insertion pattern is responsible for the striking differences observed in the loops around the active site. In addition, the P1 carbonyl of the ketone inhibitor is pointing into the oxyanion hole and forms a hydrogen bond with the peptidic nitrogen of Gly-122, resulting in a different state compared with the tetrahedral intermediate observed in the structure of ICE and CPP32 in complex with an aldehyde inhibitor. The topology of the interface formed by the two p17/p12 heterodimers of CPP32 is different from that of ICE. This results in different orientations of CPP32 heterodimers compared with ICE heterodimers, which could affect substrate recognition. This structural information will be invaluable for the design of small synthetic inhibitors of CPP32 as well as for the design of CPP32 mutants.
半胱氨酸蛋白酶CPP32已在大肠杆菌中以可溶形式表达,并纯化至纯度大于95%。通过X射线晶体学以2.3埃的分辨率确定了与不可逆四肽抑制剂乙酰 - 天冬氨酸 - 缬氨酸 - 丙氨酸 - 天冬氨酸氟甲基酮复合的人CPP32的三维结构。不对称单元包含一个(p17/p12)2四聚体,这与通过动态光散射和尺寸排阻色谱法测定的溶液中蛋白质的四聚体结构一致。CPP32的整体拓扑结构与白细胞介素-1β转换酶(ICE)非常相似;然而,在p17亚基的N端存在差异,ICE中发现的第一个螺旋在CPP32中缺失。缺失/插入模式导致在活性位点周围的环中观察到显著差异。此外,酮抑制剂的P1羰基指向氧阴离子孔,并与Gly-122的肽氮形成氢键,与在ICE和与醛抑制剂复合的CPP32结构中观察到的四面体中间体相比,导致不同的状态。CPP32的两个p17/p12异二聚体形成的界面拓扑结构与ICE不同。这导致与ICE异二聚体相比,CPP32异二聚体的取向不同,这可能影响底物识别。这些结构信息对于设计CPP32的小型合成抑制剂以及设计CPP32突变体将是非常宝贵的。