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用长寿命金属-配体配合物探测超螺旋和松弛的pTZ18U质粒的动力学。

Dynamics of supercoiled and relaxed pTZ18U plasmids probed with a long-lifetime metal-ligand complex.

作者信息

Kang Jung Sook, Abugo Omoefe O, Lakowicz Joseph R

机构信息

Department of Oral Biochemistry and Molecular Biology, College of Dentistry and Research Institute for Oral Biotechnology, Pusan National University, Pusan 602-739, Korea.

出版信息

J Biochem Mol Biol. 2002 Jul 31;35(4):389-94. doi: 10.5483/bmbrep.2002.35.4.389.

Abstract

Ru(bpy)2(dppz) (bpy = 2,2'-bipyridine, dppz = dipyrido- [3,2-a:2',3'-c]phenazine) (RuBD), a long-lifetime metalligand complex, displays favorable photophysical properties. These include long lifetime, polarized emission, but no significant fluorescence from the complex that is not bound to DNA. To show the usefulness of this luminophore (RuBD) for probing the bending and torsional dynamics of nucleic acids, its intensity and anisotropy decays when intercalated into supercoiled and relaxed pTZ18U plasmids were examined using frequency-domain fluorometry with a blue light-emitting diode (LED) as the modulated light source. The mean lifetimes for the supercoiled plasmids (< tau > = 148 ns) were somewhat shorter than those for the relaxed plasmids (< tau > = 160 ns). This suggests that the relaxed plasmids were shielded more efficiently from water. The anisotropy decay data also showed somewhat shorter slow rotational correlation times for supercoiled plasmids (288 ns) than for the relaxed plasmids (355 ns). The presence of two rotational correlation times suggests that RuBD reveals both the bending and torsional motions of the plasmids. These results indicate that RuBD can be useful for studying both the bending and torsional dynamics of nucleic acids.

摘要

Ru(bpy)₂(dppz)(bpy = 2,2'-联吡啶,dppz = 二吡啶并[3,2-a:2',3'-c]吩嗪)(RuBD)是一种具有长寿命的金属配体配合物,具有良好的光物理性质。这些性质包括长寿命、偏振发射,但未与DNA结合的配合物没有明显荧光。为了证明这种发光体(RuBD)在探测核酸弯曲和扭转动力学方面的有用性,使用以蓝色发光二极管(LED)作为调制光源的频域荧光法,研究了其插入超螺旋和松弛的pTZ18U质粒时的强度和各向异性衰减。超螺旋质粒的平均寿命(<τ> = 148 ns)略短于松弛质粒的平均寿命(<τ> = 160 ns)。这表明松弛质粒被水屏蔽的效率更高。各向异性衰减数据还显示,超螺旋质粒的慢旋转相关时间(288 ns)比松弛质粒的慢旋转相关时间(355 ns)略短。存在两个旋转相关时间表明RuBD揭示了质粒的弯曲和扭转运动。这些结果表明RuBD可用于研究核酸的弯曲和扭转动力学。

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