Université Pierre et Marie Curie, Paris VI, CNRS, Marine Plants and Biomolecules, UMR 7139, Station Biologique, BP 74, F29680 Roscoff Cedex, France.
Biomacromolecules. 2009 Jul 13;10(7):1757-67. doi: 10.1021/bm9001766. Epub 2009 May 21.
Enzymatic degradation of standard κ-carrageenan and the low-gelling hybrid κ-/μ-carrageenan were conducted using recombinant Pseudoalteromonas carrageenovora κ-carrageenase. The initial velocity of the enzyme was determined as a function of varying Tris or NaI concentrations and at constant 200 mM cosolutes concentration, adjusting NaI and Tris concentrations accordingly. In both cases, we observed strong inhibition of the enzyme with increasing amounts of iodide. The characterization of the κ- and κ-/μ-carrageenan ordering by optical rotation and the visualization of iodide binding on carrageenan by (127)I NMR revealed that inhibition was not caused by the disordered-ordered transition of carrageenan in NaI, but by iodide binding. These results were confirmed by analysis of the degradation products by gel permeation chromatography. Degradation of carrageenan in the disordered state led to a rapid decrease in molecular mass and the production of all possible neo-κ-carrabiose oligomers. In the ordered conformation, the degradation kinetics, the decrease of average molecular weight, and the chain population distribution of degradation products varied with iodide concentration. These observations were interpreted to be the result of increasing amounts of bound iodide on carrageenan helices that, in turn, impede enzyme catalysis. Based on these results, we propose a single-helix ordered conformation state for κ-carrageenan and reject the previously advocated double-helix model.
使用重组的假交替单胞菌κ-卡拉胶酶对标准κ-卡拉胶和低凝胶化混合κ-/μ-卡拉胶进行酶促降解。在 200mM 共溶质浓度恒定的情况下,作为 Tris 或 NaI 浓度变化的函数,确定了酶的初始速度。在这两种情况下,我们观察到随着碘化物含量的增加,酶受到强烈抑制。通过旋光度对κ-和κ-/μ-卡拉胶的有序性进行表征,并通过(127)I NMR 可视化碘化物在卡拉胶上的结合,发现抑制不是由卡拉胶在 NaI 中的无序-有序转变引起的,而是由碘化物结合引起的。凝胶渗透色谱分析降解产物的结果证实了这一点。在无序状态下的卡拉胶降解导致分子量迅速降低,并产生所有可能的新κ-卡拉双糖低聚物。在有序构象中,降解动力学、平均分子量的降低以及降解产物的链种群分布随碘化物浓度而变化。这些观察结果被解释为卡拉胶螺旋上结合的碘化物量增加的结果,这反过来又阻碍了酶的催化。基于这些结果,我们提出了κ-卡拉胶的单螺旋有序构象状态,并拒绝了先前提倡的双螺旋模型。