Evaluation of Thermal Stability of DNA Oligonucleotide Structures Embedded in Hydrogels

D. Yamaguchi, M. Yoshida, S. Nakano
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Abstract

Understanding the self-assembly and hybridization properties of DNA oligonucleotides in confined spaces can help to improve their applications in biotechnology and nanotechnology. This study investigates the effects of spatial confinement in the pores of hydrogels on the thermal stability of DNA oligonucleotide structures. The preparation of oligonucleotides embedded in agarose gels was simple, whereas the preparation of oligonucleotides embedded in polyacrylamide gels was required to remove unpolymerized monomers. In the latter case, a method for rehydrating a washed dry gel with a buffer solution containing oligonucleotides was developed. Fluorescence measurements of oligonucleotides bearing fluorescent probes revealed no significant influence of the internal environment of the gel pores on the stability of DNA duplex, hairpin, and G-quadruplex structures. Moreover, the effects of poly(ethylene glycol) on the stability of DNA structures in the gels were similar to those in solutions. It is likely that the oligonucleotides are not strongly constrained in the gels and may be preferentially located in a water-rich environment in the gel matrix. The gel preparation was also applied to the assessment of the stability of DNA structures under the conditions of a reduced number of water molecules. The studies using hydrogels provide insights into the ability of self-assembly and hybridization of oligonucleotides in confined environments and under low-water-content conditions.
水凝胶中DNA寡核苷酸结构热稳定性的评价
了解DNA寡核苷酸在密闭空间中的自组装和杂交特性有助于提高其在生物技术和纳米技术中的应用。本研究探讨了水凝胶孔隙中的空间限制对DNA寡核苷酸结构热稳定性的影响。琼脂糖凝胶包埋的寡核苷酸制备简单,而聚丙烯酰胺凝胶包埋的寡核苷酸制备需要去除未聚合的单体。在后一种情况下,开发了一种用含有寡核苷酸的缓冲溶液再水合洗涤干凝胶的方法。携带荧光探针的寡核苷酸荧光测量显示,凝胶孔的内部环境对DNA双链、发夹和g -四链结构的稳定性没有显著影响。此外,聚乙二醇对凝胶中DNA结构稳定性的影响与溶液中相似。很可能寡核苷酸在凝胶中没有受到强烈的限制,可能优先位于凝胶基质中的富水环境中。凝胶制备还应用于评估水分子数量减少条件下DNA结构的稳定性。使用水凝胶的研究提供了对寡核苷酸在受限环境和低含水量条件下的自组装和杂交能力的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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