Umemura Kazuo, Ishibashi Yu, Oura Shusuke
Biophysics Section, Department of Physics, Graduate School of Science, Tokyo University of Science, Shinjuku, Tokyo, 162-8601, Japan.
Eur Biophys J. 2016 Sep;45(6):483-9. doi: 10.1007/s00249-016-1116-3. Epub 2016 Feb 4.
We investigated the physisorption phenomenon of single-stranded DNA (ssDNA) molecules onto two types of commercially available chemically functionalized single-walled carbon nanotubes (SWNTs) by atomic force microscopy (AFM) and agarose gel electrophoresis. We found that DNA molecules can adsorb on the water-soluble SWNT surfaces without sonication, although sonication treatment has been used for hybridization of DNA and SWNTs in many previous studies. Using our method, damage of DNA molecules by sonication can be avoided. On the other hand, the amount of DNA molecules adsorbed on SWNT surfaces increased when the samples were sonicated. This fact suggests that the sonication is effective not only at debundling of SWNTs, but also at assisting DNA adsorption. Furthermore, DNA adsorption was affected by the types of functionalized SWNTs. In the case of SWNTs functionalized with polyethylene glycol (PEG-SWNT), physisorption of ssDNA molecules was confirmed only by agarose-gel electrophoresis. In contrast, amino-terminated SWNTs (NH2-SWNTs) showed a change in the height distribution profile based on AFM observations. These results suggest that DNA molecules tended to adsorb to NH2-SWNT surfaces, although DNA molecules can also adsorb on PEG-SWNT surfaces. Our results revealed fundamental information for developing nanobiodevices using hybrids of DNA and SWNTs.
我们通过原子力显微镜(AFM)和琼脂糖凝胶电泳研究了单链DNA(ssDNA)分子在两种市售化学功能化单壁碳纳米管(SWNTs)上的物理吸附现象。我们发现,尽管在许多先前的研究中超声处理已被用于DNA与SWNTs的杂交,但DNA分子无需超声处理就能吸附在水溶性SWNT表面。使用我们的方法,可以避免超声处理对DNA分子造成的损伤。另一方面,超声处理样品时,吸附在SWNT表面的DNA分子数量会增加。这一事实表明,超声处理不仅对SWNTs的解束有效,而且有助于DNA吸附。此外,DNA吸附受功能化SWNTs类型的影响。在用聚乙二醇功能化的SWNTs(PEG-SWNT)的情况下,仅通过琼脂糖凝胶电泳证实了ssDNA分子的物理吸附。相比之下,基于AFM观察,氨基端化的SWNTs(NH2-SWNTs)的高度分布轮廓发生了变化。这些结果表明,DNA分子倾向于吸附在NH2-SWNT表面,尽管DNA分子也能吸附在PEG-SWNT表面。我们的结果揭示了利用DNA与SWNTs的杂化物开发纳米生物器件的基础信息。