Arumugam S, Van Doren Steven R
Department of Biochemistry, 117 Schweitzer Hall, University of Missouri, Columbia, Missouri 65211, USA.
Biochemistry. 2003 Jul 8;42(26):7950-8. doi: 10.1021/bi034545s.
Crystal structures of catalytic domains of MMP-3 and MT1-MMP bound to TIMP-1 or TIMP-2, respectively, differ in the orientation of the TIMP in the MMP active site. The orientation in solution of N-TIMP-1 in the MMP-3 active site has been investigated using residual dipolar couplings (RDCs). Fitting of the RDCs to the X-ray structures of the complexes suggests general agreement with the orientation of crystalline MMP-3(DeltaC) and TIMP-1 and a large disparity from the orientation of crystalline MT1-MMP(DeltaC) and TIMP-2. Rigid body docking of MMP-3 and N-TIMP-1 X-ray coordinates using RDCs and intermolecular NOEs provided a time-averaged orientation in solution differing from the crystal structure by a 5 degrees rotation toward the MT1-MMP(DeltaC)/TIMP-2 orientation. The slight discrepancy in orientations in solution and crystal lies within the experimental uncertainties. Intermolecular NOEs used in the docking corroborated the accuracy of mapping the interface by a paramagnetic NMR footprinting assay, a potential alternative source of contacts for docking. Some uncertainty in the N-TIMP-1 orientation in the MMP-3 active site, coupled with microsecond to millisecond fluctuations of the MMP-binding ridge of N-TIMP-1 in the complex and flexibility in MMP-3(DeltaC) S(1)' to S(3)' subsites, leaves open the possibility that N-TIMP-1 might dynamically pivot a few degrees or more in the arc toward the MT1-MMP(DeltaC)/TIMP-2 orientation. Differing TIMP orientations in MMP active sites are more likely to result from structural differences in TIMP AB hairpin loops than from crystal packing artifacts.
基质金属蛋白酶-3(MMP-3)和MT1-基质金属蛋白酶(MT1-MMP)与组织金属蛋白酶抑制剂-1(TIMP-1)或组织金属蛋白酶抑制剂-2(TIMP-2)结合的催化结构域的晶体结构,在TIMP于MMP活性位点中的方向上有所不同。已使用残余偶极耦合(RDC)研究了N-TIMP-1在MMP-3活性位点溶液中的方向。将RDC拟合到复合物的X射线结构表明,与晶体MMP-3(ΔC)和TIMP-1的方向总体一致,而与晶体MT1-MMP(ΔC)和TIMP-2的方向有很大差异。使用RDC和分子间核Overhauser效应(NOE)对MMP-3和N-TIMP-1的X射线坐标进行刚体对接,得到了溶液中的时间平均方向,该方向与晶体结构相比,朝着MT1-MMP(ΔC)/TIMP-2方向旋转了5度。溶液和晶体中方向的轻微差异在实验不确定性范围内。对接中使用的分子间NOE证实了通过顺磁核磁共振足迹分析绘制界面的准确性,这是对接潜在的替代接触源。N-TIMP-1在MMP-3活性位点方向上存在一些不确定性,再加上复合物中N-TIMP-1的MMP结合脊的微秒到毫秒级波动以及MMP-3(ΔC)S(1)'至S(3)'亚位点的灵活性,使得N-TIMP-1有可能在朝着MT1-MMP(ΔC)/TIMP-2方向的弧中动态旋转几度或更多。MMP活性位点中TIMP方向的差异更可能是由TIMP AB发夹环的结构差异引起的,而不是晶体堆积假象。