van den Bremer Ewald T J, Keeble Anthony H, Visser Antonie J W G, van Hoek Arie, Kleanthous Colin, Heck Albert J R, Jiskoot Wim
Department of Biomolecular Mass Spectrometry, Bijvoet Center for Biomolecular Research and Utrecht Institute for Pharmaceutical Sciences, Utrecht University, Sorbonnelaan 16, 3584 CA Utrecht, The Netherlands.
Biochemistry. 2004 Apr 13;43(14):4347-55. doi: 10.1021/bi049929c.
Knowledge about the conformational dynamics of a protein is key to understanding its biochemical and biophysical properties. In the present work we investigated the dynamic properties of the enzymatic domain of DNase colicins via time-resolved fluorescence and anisotropy decay analysis in combination with steady-state acrylamide quenching experiments. The dynamic properties of the apoenzyme were compared to those of the E9 DNase ligated to the transition metal ion Zn(2+) and the natural inhibitor Im9. We further investigated the contributions of each of the two tryptophans within the E9 DNase (Trp22 and Trp58) using two single-tryptophan mutants (E9 W22F and E9 W58F). Wild-type E9 DNase, E9 W22F, and E9 W58F, as well as Im9, showed multiple lifetime decays. The time-resolved and steady-state fluorescence results indicated that complexation of E9 DNase with Zn(2+) induces compaction of the E9 DNase structure, accompanied by immobilization of Trp22 along with a reduced solvent accessibility for both tryptophans. Im9 binding resulted in immobilization of Trp22 along with a decrease in the longest lifetime component. In contrast, Trp58 experienced less restriction on complexation of E9 DNase with Im9 and showed an increase in the longest lifetime component. Furthermore, the results point out that the Im9-induced changes in the conformational dynamics of E9 DNase are predominant and occur independently of the Zn(2+)-induced conformational effects.
了解蛋白质的构象动力学是理解其生化和生物物理性质的关键。在本研究中,我们通过时间分辨荧光和各向异性衰减分析,并结合稳态丙烯酰胺猝灭实验,研究了大肠杆菌核酸酶DNase酶结构域的动态特性。将脱辅基酶的动态特性与连接过渡金属离子Zn(2+)的E9 DNase和天然抑制剂Im9的动态特性进行了比较。我们还使用两个单色氨酸突变体(E9 W22F和E9 W58F)研究了E9 DNase中两个色氨酸(Trp22和Trp58)各自的贡献。野生型E9 DNase、E9 W22F和E9 W58F,以及Im9,均表现出多个寿命衰减。时间分辨和稳态荧光结果表明,E9 DNase与Zn(2+)的络合诱导了E9 DNase结构的紧密化,同时伴随着Trp22的固定以及两个色氨酸的溶剂可及性降低。Im9的结合导致Trp22的固定以及最长寿命组分的减少。相反,Trp58在E9 DNase与Im9络合时受到的限制较小,并且最长寿命组分增加。此外,结果指出,Im9诱导的E9 DNase构象动力学变化占主导地位,并且独立于Zn(2+)诱导的构象效应而发生。