Lin H, Clegg D O, Lal R
Neuroscience Research Institute, Department of Molecular, Cellular and Developmental Biology, University of California, Santa Barbara 93106, USA.
Biochemistry. 1999 Aug 3;38(31):9956-63. doi: 10.1021/bi990800q.
The dynamic process of synthesis and degradation of extracellular matrix molecules, including various collagens, is important in normal physiological functions and pathological conditions. Existing models of collagen enzymatic degradation reactions are derived from bulk biochemical assays. In this study, we have imaged in real-time individual collagen I molecules and their proteolysis by Clostridium histolyticum collagenases in phosphate-buffered saline (PBS) with atomic force microscopy (AFM). We have also imaged the likely binding and unbinding of collagenase molecules to single triple-helical collagen I molecules and subsequent proteolysis of subsets of the collagen molecules. The proteolysis of collagen molecules was inhibited by reduced calcium and acidification. Results from AFM study of collagen proteolysis are consistent with SDS-PAGE biochemical assays. The real-time proteolysis of single collagen I molecules followed simple Michaelis-Menton kinetics previously derived from bulk biochemical assays. This is the first report of imaging real-time proteolysis of single macromolecules and its inhibition on a molecular scale. A strong correspondence between the kinetics of proteolysis of single collagen molecules and the kinetics of proteolysis derived from bulk biochemical assays will have a wide applicability in examining real-time enzymatic reactions and their regulation at single molecule structural level. Such real-time study of single molecule proteolysis could provide a better understanding of the interactions between proteases and target proteins as well as proteases and protease inhibitors.
细胞外基质分子(包括各种胶原蛋白)的合成与降解的动态过程在正常生理功能和病理状况中都很重要。现有的胶原蛋白酶促降解反应模型源自大量生化分析。在本研究中,我们利用原子力显微镜(AFM)在磷酸盐缓冲盐水(PBS)中对单个I型胶原蛋白分子及其被溶组织梭菌胶原酶的蛋白水解过程进行了实时成像。我们还对胶原酶分子与单个三螺旋I型胶原蛋白分子可能的结合与解离以及随后部分胶原蛋白分子的蛋白水解进行了成像。胶原蛋白分子的蛋白水解受到钙含量降低和酸化的抑制。AFM对胶原蛋白蛋白水解的研究结果与SDS-PAGE生化分析结果一致。单个I型胶原蛋白分子的实时蛋白水解遵循先前从大量生化分析得出的简单米氏动力学。这是关于单个大分子实时蛋白水解及其在分子水平上的抑制作用成像的首次报道。单个胶原蛋白分子的蛋白水解动力学与大量生化分析得出的蛋白水解动力学之间的强烈对应关系在检查单分子结构水平上的实时酶促反应及其调控方面将具有广泛的适用性。这种对单分子蛋白水解的实时研究可以更好地理解蛋白酶与靶蛋白之间以及蛋白酶与蛋白酶抑制剂之间的相互作用。