Yang Zhengrong W, Tendian Susan W, Carson W Michael, Brouillette Wayne J, Delucas Lawrence J, Brouillette Christie G
Center for Biophysical Sciences and Engineering, University of Alabama at Birmingham, 35294-4400, USA.
Protein Sci. 2004 Mar;13(3):830-41. doi: 10.1110/ps.03330104.
Dimethyl sulfoxide (DMSO) is commonly used as a cosolvent to improve the aqueous solubility of small organic compounds. Its use in a screen to identify novel inhibitors of the enzyme NAD(+) synthetase led to this investigation of its potential effects on the structure and stability of this 60-kD homodimeric enzyme. Although no effects are observed on the enzyme's catalytic activity, as low as 2.5% (v/v) DMSO led to demonstrable changes in the stability of the dimer and its unfolding mechanism. In the absence of DMSO, the dimer behaves hydrodynamically as a single ideal species, as determined by equilibrium analytical ultracentrifugation, and thermally unfolds according to a two-state dissociative mechanism, based on analysis by differential scanning calorimetry (DSC). In the presence of 2.5% (v/v) DMSO, an equilibrium between the dimer and monomer is now detectable with a measured dimer association constant, K(a), equal to 5.6 x 10(6)/M. DSC curve analysis is consistent with this finding. The data are best fit to a three-state sequential unfolding mechanism, most likely representing folded dimer <==> folded monomer <==> unfolded monomer. The unusually large change in the relative stabilities of dimer and monomer, e.g., the association equilibrium shifts from an infinitely large K(a) down to approximately 10(6)/M, in the presence of relatively low cosolvent concentration is surprising in view of the significant buried surface area at the dimer interface, roughly 20% of the surface area of each monomer is buried. A hypothetical structural mechanism to explain this effect is presented.
二甲基亚砜(DMSO)通常用作助溶剂,以提高小分子有机化合物的水溶性。在一项用于鉴定NAD(+)合成酶新型抑制剂的筛选实验中使用了DMSO,这引发了对其对这种60-kD同二聚体酶的结构和稳定性潜在影响的研究。尽管未观察到对该酶催化活性的影响,但低至2.5%(v/v)的DMSO会导致二聚体稳定性及其解折叠机制发生明显变化。在不存在DMSO的情况下,通过平衡分析超速离心法测定,该二聚体在流体动力学上表现为单一的理想物种,并且基于差示扫描量热法(DSC)分析,其热解折叠遵循两态解离机制。在存在2.5%(v/v)DMSO的情况下,现在可以检测到二聚体和单体之间的平衡,测得的二聚体缔合常数K(a)等于5.6 x 10(6)/M。DSC曲线分析与这一发现一致。数据最适合三态顺序解折叠机制,很可能代表折叠二聚体<==>折叠单体<==>解折叠单体。考虑到二聚体界面处有相当大的埋藏表面积,每个单体约20%的表面积被埋藏,在相对较低的助溶剂浓度下,二聚体和单体相对稳定性的异常大变化,例如缔合平衡从无限大的K(a)降至约10(6)/M,是令人惊讶的。本文提出了一种假设的结构机制来解释这种效应。