Department of Biomolecular Engineering, Graduate School of Engineering, Nagoya University, Furo-cho, Chikusa-ku, Nagoya 464-8603, Japan.
Anal Methods. 2021 Jan 28;13(3):337-344. doi: 10.1039/d0ay02138e.
Atomic layer deposition (ALD) is capable of providing an ultrathin layer on high-aspect ratio structures with good conformality and tunable film properties. In this research, we modified the surface of ZnO nanowires through ALD for the fabrication of a ZnO/SiO2 (core/shell) nanowire microfluidic device which we utilized for the capture of CpG-rich single-stranded DNAs (ssDNA). Structural changes of the nanowires while varying the number of ALD cycles were evaluated by statistical analysis and their relationship with the capture efficiency was investigated. We hypothesized that finding the optimum number of ALD cycles would be crucial to ensure adequate coating for successful tuning to the desired surface properties, besides promoting a sufficient trapping region with optimal spacing size for capturing the ssDNAs as the biomolecules traverse through the dispersed nanowires. Using the optimal condition, we achieved high capture efficiency of ssDNAs (86.7%) which showed good potential to be further extended for the analysis of CpG sites in cancer-related genes. This finding is beneficial to the future design of core/shell nanowires for capturing ssDNAs in biomedical applications.
原子层沉积(ALD)能够在高纵横比结构上提供超薄层,具有良好的保形性和可调节的薄膜性能。在这项研究中,我们通过 ALD 对 ZnO 纳米线进行表面改性,用于制造 ZnO/SiO2(核/壳)纳米线微流控器件,用于捕获富含 CpG 的单链 DNA(ssDNA)。通过统计分析评估了纳米线在改变 ALD 循环数时的结构变化,并研究了它们与捕获效率的关系。我们假设找到最佳的 ALD 循环数对于确保适当的涂层以成功调整到所需的表面性能至关重要,此外还需要促进具有最佳间隔尺寸的足够捕获区域,以在生物分子穿过分散的纳米线时捕获 ssDNA。使用最佳条件,我们实现了 ssDNA 的高捕获效率(86.7%),这表明有很大的潜力可以进一步扩展用于分析癌症相关基因中的 CpG 位点。这一发现有利于未来设计用于在生物医学应用中捕获 ssDNA 的核/壳纳米线。