Hurst Douglas R, Schwartz Martin A, Ghaffari Mohammad A, Jin Yonghao, Tschesche Harald, Fields Gregg B, Sang Qing-Xiang Amy
Department of Chemistry and Biochemistry and Institute of Molecular Biophysics, 203 Dittmer Laboratory of Chemistry Building, Florida State University, Tallahassee, FL 32306, U.S.A.
Biochem J. 2004 Feb 1;377(Pt 3):775-9. doi: 10.1042/BJ20031067.
Membrane type 1-matrix metalloproteinase (MT1-MMP/MMP-14) is a major collagenolytic enzyme that plays a vital role in development and morphogenesis. To elucidate further the structure-function relationship between the human MT1-MMP active site and the influence of the haemopexin domain on catalysis, substrate specificity and inhibition kinetics of the cdMT1-MMP (catalytic domain of MT1-MMP) and the ecto domain DeltaTM-MT1-MMP (transmembrane-domain-deleted MT1-MMP) were compared. For substrate 1 [Mca-Pro-Leu-Gly-Leu-Dpa-Ala-Arg-NH(2), where Mca stands for (7-methoxycoumarin-4-yl)acetyl- and Dpa for N -3-(2,4-dinitrophenyl)-L-2,3-diaminopropionyl], the activation energy E (a) was determined to be 11.2 and 12.2 kcal/mol (1 cal=4.184 J) for cdMT1-MMP and DeltaTM-MT1-MMP respectively, which is consistent with k (cat)/ K (M) values of 7.37 and 1.46x10(4) M(-1).s(-1). The k (cat)/ K (M) values for a series of similar single-stranded peptide substrates were determined and found to correlate with a slope of 0.17 for the two enzyme forms. A triple-helical peptide substrate was predicted to have a k (cat)/ K (M) of 0.87x10(4) M(-1).s(-1) for DeltaTM-MT1-MMP based on the value for cdMT1-MMP of 5.12x10(4) M(-1).s(-1); however, the actual value was determined to be 2.5-fold higher, i.e. 2.18x10(4) M(-1).s(-1). These results suggest that cdMT1-MMP is catalytically more efficient towards small peptide substrates than DeltaTM-MT1-MMP and the haemopexin domain of MT1-MMP facilitates the hydrolysis of triple-helical substrates. Diastereomeric inhibitor pairs were utilized to probe further binding similarities at the active site. Ratios of K (i) values for the inhibitor pairs were found to correlate between the enzyme forms with a slope of 1.03, suggesting that the haemopexin domain does not significantly modify the enzyme active-site structure.
膜型1基质金属蛋白酶(MT1-MMP/MMP-14)是一种主要的胶原分解酶,在发育和形态发生中起着至关重要的作用。为了进一步阐明人MT1-MMP活性位点之间的结构-功能关系以及血红素结合蛋白结构域对cdMT1-MMP(MT1-MMP的催化结构域)和胞外结构域DeltaTM-MT1-MMP(跨膜结构域缺失的MT1-MMP)的催化、底物特异性和抑制动力学的影响,对它们进行了比较。对于底物1 [Mca-Pro-Leu-Gly-Leu-Dpa-Ala-Arg-NH(2),其中Mca代表(7-甲氧基香豆素-4-基)乙酰基,Dpa代表N -3-(2,4-二硝基苯基)-L-2,3-二氨基丙酰基],cdMT1-MMP和DeltaTM-MT1-MMP的活化能E (a)分别测定为11.2和12.2 kcal/mol(1 cal = 4.184 J),这与k (cat)/ K (M)值7.37和1.46x10(4) M(-1).s(-1)一致。测定了一系列类似单链肽底物的k (cat)/ K (M)值,发现两种酶形式的斜率为0.17。基于cdMT1-MMP的值5.12x10(4) M(-1).s(-1),预测DeltaTM-MT1-MMP的三螺旋肽底物的k (cat)/ K (M)为0.87x10(4) M(-1).s(-1);然而,实际值测定为高2.5倍,即2.18x10(4) M(-1).s(-1)。这些结果表明,cdMT1-MMP对小肽底物的催化效率比DeltaTM-MT1-MMP更高,并且MT1-MMP的血红素结合蛋白结构域促进三螺旋底物的水解。利用非对映异构体抑制剂对进一步探究活性位点的结合相似性。发现抑制剂对的K (i)值之比在酶形式之间具有斜率为1.03的相关性,表明血红素结合蛋白结构域不会显著改变酶活性位点结构。