Department of Pharmaceutical Sciences, Leslie Dan Faculty of Pharmacy, University of Toronto, 144 College Street, Toronto, Ontario M5S 3M2, Canada.
J Phys Chem B. 2021 Jul 15;125(27):7406-7416. doi: 10.1021/acs.jpcb.1c04075. Epub 2021 Jun 29.
The kinetic and thermodynamic stabilities of G-quadruplex structures have been extensively studied. In contrast, systematic investigations of the volumetric properties of G-quadruplexes determining their pressure stability are still relatively scarce. The G-rich strand from the promoter region of the c-MYC oncogene (G-strand) is known to adopt a range of conformational states including the duplex, G-quadruplex, and coil states depending on the presence of the complementary C-rich strand (C-strand) and solution conditions. In this work, we report changes in volume, Δ, and adiabatic compressibility, Δ, accompanying interconversions of G-strand between the G-quadruplex, duplex, and coil conformations in the presence and absence of C-strand. We rationalize these volumetric characteristics in terms of the hydration and intrinsic properties of the DNA in each of the sampled conformational states. We further use our volumetric results in conjunction with the reported data on changes in expansibility, Δ, and heat capacity, Δ, associated with G-quadruplex-to-coil transitions to construct the pressure-temperature phase diagram describing the stability of the G-quadruplex. The phase diagram is elliptic in shape, resembling the classical elliptic phase diagram of a globular protein, and is distinct from the phase diagram for duplex DNA. The observed similarity of the pressure-temperature phase diagrams of G-quadruplexes and globular proteins stems from their shared structural and hydration features that, in turn, result in the similarity of their volumetric properties. To the best of our knowledge, this is the first pressure-temperature stability diagram reported for a G-quadruplex.
已广泛研究了 G-四链体结构的动力学和热力学稳定性。相比之下,系统研究决定 G-四链体压力稳定性的体积性质仍然相对较少。c-MYC 癌基因启动子区域富含 G 的链(G-链)已知可以采用一系列构象状态,包括双链体、G-四链体和线圈状态,这取决于互补的富含 C 的链(C-链)的存在和溶液条件。在这项工作中,我们报告了在存在和不存在 C-链的情况下,G-链在 G-四链体、双链体和线圈构象之间的互变伴随的体积变化Δ和绝热压缩率Δ。我们根据每种采样构象状态中 DNA 的水合作用和固有性质来解释这些体积特征。我们进一步使用我们的体积结果以及与 G-四链体到线圈转变相关的膨胀率Δ和热容Δ的报告数据来构建描述 G-四链体稳定性的压力-温度相图。相图呈椭圆形,类似于球形蛋白质的经典椭圆形相图,与双链体 DNA 的相图明显不同。G-四链体和球形蛋白质的压力-温度相图的观察到的相似性源于它们共享的结构和水合特征,这反过来又导致它们的体积性质相似。据我们所知,这是第一个报道的 G-四链体的压力-温度稳定性图。