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水凝胶基质受限条件下DNA和蛋白质的热稳定性及构象

Thermal stability and conformation of DNA and proteins under the confined condition in the matrix of hydrogels.

作者信息

Nakano Shu-Ichi, Yamaguchi Daisuke, Sugimoto Naoki

机构信息

Department of Nanobiochemistry, Faculty of Frontiers of Innovative Research in Science and Technology (FIRST), Konan University, 7-1-20, Minatojima-minamimachi, Chuo-ku, Kobe, 650-0047, Japan.

Frontier Institute for Biomolecular Engineering Research (FIBER), Konan University, 7-1-20, Minatojima-minamimachi, Chuo-ku, Kobe, 650-0047, Japan.

出版信息

Mol Biol Rep. 2018 Aug;45(4):403-411. doi: 10.1007/s11033-018-4174-z. Epub 2018 Apr 6.

Abstract

Spatially confined environments are seen in biological systems and in the fields of biotechnology and nanotechnology. The confinement restricts the conformational space of polymeric molecules and increasing the degree of molecular crowding. Here, we developed preparation methods for agarose and polyacrylamide gels applicable to UV spectroscopy that can evaluate the confinement effects on DNA and protein structures. Measurements of UV absorbance and CD spectra showed no significant effect of the confinement in the porous media of agarose gels on the base-pair stability of DNA polynucleotides [poly(dA)/poly(dT)] and oligonucleotides (hairpin, duplex, and triplex structures). On the other hand, a highly confined environment created by polyacrylamide gels at high concentrations increased the stability of polynucleotides while leaving that of oligonucleotides unaffected. The changes in the base-pair stability of the polynucleotides were accompanied by the perturbation of the helical conformation. The polyacrylamide gels prepared in this study were also used for the studies on proteins (lysozyme, bovine serum albumin, and myoglobin). The effects on the proteins were different from the effects on DNA structures, suggesting different nature of interactions within the gel. The experimental methods and results are useful to understand the physical properties of nucleic acids and proteins under confined conditions.

摘要

在生物系统以及生物技术和纳米技术领域中都存在空间受限的环境。这种限制会约束聚合物分子的构象空间,并增加分子拥挤程度。在此,我们开发了适用于紫外光谱的琼脂糖凝胶和聚丙烯酰胺凝胶的制备方法,这些方法能够评估对DNA和蛋白质结构的限制效应。紫外吸光度和圆二色光谱的测量结果表明,琼脂糖凝胶多孔介质中的限制对DNA多核苷酸[聚(dA)/聚(dT)]和寡核苷酸(发夹、双链和三链结构)的碱基对稳定性没有显著影响。另一方面,高浓度聚丙烯酰胺凝胶形成的高度受限环境增加了多核苷酸的稳定性,而寡核苷酸的稳定性不受影响。多核苷酸碱基对稳定性的变化伴随着螺旋构象的扰动。本研究制备的聚丙烯酰胺凝胶还用于对蛋白质(溶菌酶、牛血清白蛋白和肌红蛋白)的研究。对蛋白质的影响与对DNA结构的影响不同,这表明凝胶内部相互作用的性质不同。这些实验方法和结果有助于理解受限条件下核酸和蛋白质的物理性质。

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