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六氨合钴(III)在醇 - 水混合物中引起的DNA凝聚:介电常数及其他溶剂效应

DNA condensation by cobalt hexaammine (III) in alcohol-water mixtures: dielectric constant and other solvent effects.

作者信息

Arscott P G, Ma C, Wenner J R, Bloomfield V A

机构信息

Department of Biochemistry, University of Minnesota, St. Paul 55108, USA.

出版信息

Biopolymers. 1995 Sep;36(3):345-64. doi: 10.1002/bip.360360309.

Abstract

DNA molecules condense into compact structures in the presence of a critical concentration of multivalent cations. To probe the contribution of electrostatic forces to condensation, we used mixtures of water with methanol (MeOH), ethanol (EtOH), and isopropanol (iPrOH) to vary the dielectric constant epsilon from 80 to 50. The condensation of pUC18 plasmids by hexaammine cobalt (III), Co(NH3)(3+)6, was monitored by total intensity and dynamic light scattering, electron microscopy, and CD. The total scattering intensity increased as epsilon went from 80 to 70, and the decreased as epsilon decreased further. Ultraviolet spectrophotometry confirmed that the loss of intensity at low epsilon was not due to the particles' settling out of solution. The rate as well as the extent of condensation increased as epsilon was lowered from 80 to 70, and also depended on the species of alcohol (MeOH < EtOH < iPrOH). The hydrodynamic radii RH of the particles, however, remained roughly the same at 300-350 A and was independent of the species of alcohol. RH increased below epsilon = 70. The critical concentration of Co(NH3)6(3+) required to induce DNA condensation decreased from 21 microM to about 16 microM as the dielectric constant decreased from 80 to 70, and decreased moderately with the nonpolarity of the alcohol. The fraction of DNA charge neutralized at the onset of DNA condensation was calculated by a modification of Manning's two-variable counterion condensation theory to be 0.90 +/- 0.01, independent of epsilon. By electron microscopy we observed that the condensed particles changed from about 93% toroids at epsilon = 80 to 89% rods at epsilon = 70 and 98% rods at epsilon = 65. At epsilon lower than 65, DNA collapsed into a network of multistranded fibers. The morphology of condensed DNA particles, whether toroids, rods, or fibers, was independent of the alcohol species. CD spectra in ethanol-water mixtures indicated that both closed circular and linearized plasmids were in the B conformation when condensed with Co(NH3)6(3+) at epsilon > or = 70, although the closed circular molecules exhibited a weak psi-DNA spectrum. A transition from the B to A form took place between epsilon = 70 and 60, well above the normal dielectric constant of epsilon = 40 for this transition, indicating that ethanol and Co(NH3)6(3+) synergistically promote the B-A transition. We interpret these results to mean that alcohols have both electrostatic and structural effects on DNA, leading to three regimes of condensation. At the lowest alcohol concentrations the B conformation is stable and condensation is relatively slow, allowing time for the packing adjustments necessary to form toroids.(ABSTRACT TRUNCATED AT 400 WORDS)

摘要

在临界浓度的多价阳离子存在下,DNA分子会凝聚成紧密的结构。为了探究静电力对凝聚的贡献,我们使用水与甲醇(MeOH)、乙醇(EtOH)和异丙醇(iPrOH)的混合物将介电常数ε从80改变到50。通过总强度、动态光散射、电子显微镜和圆二色光谱(CD)监测六氨合钴(III)[Co(NH₃)₆³⁺]对pUC18质粒的凝聚作用。随着ε从80降至70,总散射强度增加,而当ε进一步降低时总散射强度则下降。紫外分光光度法证实,在低ε时强度的损失并非由于颗粒从溶液中沉降出来。随着ε从80降至70,凝聚的速率和程度都增加了,并且还取决于醇的种类(MeOH < EtOH < iPrOH)。然而,颗粒的流体动力学半径RH在300 - 350 Å大致保持不变,且与醇的种类无关。在ε < 70时RH增大。随着介电常数从80降至70,诱导DNA凝聚所需的Co(NH₃)₆³⁺的临界浓度从21 μM降至约16 μM,并且随着醇的非极性适度降低。通过对曼宁双变量抗衡离子凝聚理论进行修正计算得出,在DNA凝聚开始时被中和的DNA电荷分数为0.90 ± 0.01,与ε无关。通过电子显微镜我们观察到,凝聚颗粒从ε = 80时约93%为环形变为ε = 70时89%为棒状以及ε = 65时98%为棒状。在ε低于65时,DNA塌缩成多链纤维网络。凝聚的DNA颗粒的形态,无论是环形、棒状还是纤维状,都与醇的种类无关。乙醇 - 水混合物中的CD光谱表明,当在ε≥70时与Co(NH₃)₆³⁺凝聚时,闭环和线性化的质粒均处于B构象,尽管闭环分子呈现出较弱的ψ - DNA光谱。在ε = 70和60之间发生了从B型到A型的转变,远高于此转变正常的介电常数40,这表明乙醇和Co(NH₃)₆³⁺协同促进了B - A转变。我们将这些结果解释为意味着醇对DNA具有静电和结构效应,导致了三种凝聚状态。在最低的醇浓度下,B构象是稳定的,凝聚相对较慢,这为形成环形所需的堆积调整留出了时间。(摘要截断于400字)

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