van den Bremer Ewald T J, Jiskoot Wim, James Richard, Moore Geoffrey R, Kleanthous Colin, Heck Albert J R, Maier Claudia S
Department of Biomolecular Mass Spectrometry, Bijvoet Center for Biomolecular Research, Utrecht University, Sorbonnelaan 16, 3584 CA Utrecht, The Netherlands.
Protein Sci. 2002 Jul;11(7):1738-52. doi: 10.1110/ps.0200502.
Nano-electrospray ionization time-of-flight mass spectrometry (ESI-MS) was used to study the conformational consequences of metal ion binding to the colicin E9 endonuclease (E9 DNase) by taking advantage of the unique capability of ESI-MS to allow simultaneous assessment of conformational heterogeneity and metal ion binding. Alterations of charge state distributions on metal ion binding/release were correlated with spectral changes observed in far- and near-UV circular dichroism (CD) and intrinsic tryptophan fluorescence. In addition, hydrogen/deuterium (H/D) exchange experiments were used to probe structural integrity. The present study shows that ESI-MS is sensitive to changes of the thermodynamic stability of E9 DNase as a result of metal ion binding/release in a manner consistent with that deduced from proteolysis and calorimetric experiments. Interestingly, acid-induced release of the metal ion from the E9 DNase causes dramatic conformational instability associated with a loss of fixed tertiary structure, but secondary structure is retained. Furthermore, ESI-MS enabled the direct observation of the noncovalent protein complex of E9 DNase bound to its cognate immunity protein Im9 in the presence and absence of Zn(2+). Gas-phase dissociation experiments of the deuterium-labeled binary and ternary complexes revealed that metal ion binding, not Im9, results in a dramatic exchange protection of E9 DNase in the complex. In addition, our metal ion binding studies and gas-phase dissociation experiments of the ternary E9 DNase-Zn(2+)-Im9 complex have provided further evidence that electrostatic interactions govern the gas phase ion stability.
利用纳米电喷雾电离飞行时间质谱(ESI-MS)能够同时评估构象异质性和金属离子结合的独特能力,来研究金属离子与大肠杆菌素E9核酸内切酶(E9 DNase)结合的构象后果。金属离子结合/释放时电荷态分布的变化与在远紫外和近紫外圆二色性(CD)以及色氨酸固有荧光中观察到的光谱变化相关。此外,还利用氢/氘(H/D)交换实验来探测结构完整性。本研究表明,ESI-MS对E9 DNase由于金属离子结合/释放而导致的热力学稳定性变化敏感,其方式与从蛋白水解和量热实验推断的一致。有趣的是,酸诱导金属离子从E9 DNase中释放会导致与固定三级结构丧失相关的显著构象不稳定性,但二级结构得以保留。此外,ESI-MS能够直接观察在有和没有Zn(2+)存在的情况下E9 DNase与其同源免疫蛋白Im9结合的非共价蛋白复合物。氘标记的二元和三元复合物的气相解离实验表明,在复合物中,是金属离子结合而非Im9导致了E9 DNase显著的交换保护。此外,我们对三元E9 DNase-Zn(2+)-Im9复合物的金属离子结合研究和气相聚解离实验提供了进一步证据,证明静电相互作用决定气相离子稳定性。