Iizuka Ryo, Yamazaki Hirohito, Uemura Sotaro
Department of Biological Sciences, Graduate School of Science, The University of Tokyo, Tokyo 113-0033, Japan.
Biophys Physicobiol. 2022 Aug 30;19:e190032. doi: 10.2142/biophysico.bppb-v19.0032. eCollection 2022.
Single-molecule technologies can provide detailed information regarding molecular mechanisms and interactions that cannot easily be studied on the bulk scale; generally, individual molecular behaviors cannot be distinguished, and only average characteristics can be measured. Nevertheless, the development of the single-molecule sequencer had a significant impact on conventional single-molecule research, featuring automated equipment, high-throughput chips, and automated analysis systems. However, the utilization of sequencing technology in single-molecule research is not yet globally prevalent, owing to the large gap between highly organized single-molecule sequencing and manual-based single-molecule research. Here, we describe the principles of zero-mode waveguides (ZMWs) and nanopore methods used as single-molecule DNA sequencing techniques, and provide examples of functional biological measurements beyond DNA sequencing that contribute to a global understanding of the current applications of these sequencing technologies. Furthermore, through a comparison of these two technologies, we discuss future applications of DNA sequencing technologies in single-molecule research.
单分子技术能够提供有关分子机制和相互作用的详细信息,而这些信息在宏观尺度上难以轻易研究;一般来说,单个分子的行为无法区分,只能测量平均特征。尽管如此,单分子测序仪的发展对传统单分子研究产生了重大影响,其特点是自动化设备、高通量芯片和自动化分析系统。然而,由于高度组织化的单分子测序与基于手工的单分子研究之间存在巨大差距,测序技术在单分子研究中的应用尚未在全球范围内普及。在这里,我们描述了用作单分子DNA测序技术的零模式波导(ZMW)和纳米孔方法的原理,并提供了除DNA测序之外的功能性生物学测量示例,这些示例有助于全球范围内理解这些测序技术的当前应用。此外,通过对这两种技术的比较,我们讨论了DNA测序技术在单分子研究中的未来应用。