Barr Brian K, Holewinski Ronald J
Department of Chemistry, Loyola College in Maryland, Baltimore, Maryland 21210-2699, USA.
Biochemistry. 2002 Apr 2;41(13):4447-52. doi: 10.1021/bi015854q.
The kinetics of cellulose binding and hydrolysis by cellulases is not well understood except at steady-state conditions. For use in studies of cellulase pre-steady-state and steady-state kinetics, we have prepared 4-methyl-7-thioumbelliferyl-beta-D-cellobioside (MUS-CB), a ground-state nonhydrolyzable analogue of the fluorescent cellulase substrate 4-methylumbelliferyl-beta-D-cellobioside (MU-CB). MUS-CB is not hydrolyzed by the catalytic domain of cellulase E1 from Acidothermus cellulolyticus under conditions where this enzyme rapidly degrades MU-CB. Thermodynamic parameters describing the steady-state binding of MUS-CB to Thermobifida fusca cellulase Cel6A are similar to those for MU-CB, indicating that MUS-CB can be used in place of MU-CB to study binding events in the Cel6A active-site cleft. In the pre-steady-state, MUS-CB binds to Cel6A by a simple, one-step bimolecular association reaction. It is anticipated that similar thio-containing 4-methylumbelliferyl compounds will have applications in studies of other enzyme systems.
除了在稳态条件下,纤维素酶与纤维素结合及水解的动力学尚未得到很好的理解。为用于纤维素酶预稳态和稳态动力学研究,我们制备了4-甲基-7-硫代伞形酮基-β-D-纤维二糖(MUS-CB),它是荧光纤维素酶底物4-甲基伞形酮基-β-D-纤维二糖(MU-CB)的一种基态不可水解类似物。在该酶能快速降解MU-CB的条件下,MUS-CB不会被嗜热栖热放线菌纤维素酶E1的催化结构域水解。描述MUS-CB与嗜热栖热放线菌纤维素酶Cel6A稳态结合的热力学参数与MU-CB的相似,这表明MUS-CB可替代MU-CB用于研究Cel6A活性位点裂隙中的结合事件。在预稳态下,MUS-CB通过简单的一步双分子缔合反应与Cel6A结合。预计类似的含硫4-甲基伞形酮基化合物将在其他酶系统的研究中得到应用。