Advanced Photonics and Biosensing Open Innovation Laboratory (Photo-BIO OIL), National Institute of Advanced Industrial Science and Technology (AIST), 2-1 Yamadaoka, Suita 565-0871, Osaka, Japan.
Department of Emergency and Critical Care Medicine, Nara Medical University, 840 Shijo, Kashihara 634-8522, Nara, Japan.
Sensors (Basel). 2022 Mar 9;22(6):2130. doi: 10.3390/s22062130.
Antimicrobial resistance, a global health concern, has been increasing due to inappropriate use of antibacterial agents. To facilitate early treatment of sepsis, rapid bacterial identification is imperative to determine appropriate antibacterial agent for better therapeutic outcomes. In this study, we developed a rapid PCR method, rapid cycle sequencing, and microchip electrophoresis, which are the three elemental technologies for DNA sequencing based on the Sanger sequencing method, for bacterial identification. We achieved PCR amplification within 13 min and cycle sequencing within 14 min using a rapid thermal cycle system applying microfluidic technology. Furthermore, DNA analysis was completed in 14 min by constructing an algorithm for analyzing and performing microchip electrophoresis. Thus, the three elemental Sanger-based DNA sequencing steps were accomplished within 41 min. Development of a rapid purification process subsequent to PCR and cycle sequence using a microchip would help realize the identification of causative bacterial agents within one hour, and facilitate early treatment of sepsis.
由于抗菌药物的不当使用,导致抗菌药物耐药性日益增加,这成为了一个全球性的健康问题。为了促进脓毒症的早期治疗,快速鉴定细菌对于确定合适的抗菌药物以获得更好的治疗效果至关重要。在本研究中,我们开发了一种快速 PCR 方法、快速循环测序和微芯片电泳,这三种技术是基于 Sanger 测序法的 DNA 测序的基本技术,用于细菌鉴定。我们使用微流控技术的快速热循环系统,在 13 分钟内实现了 PCR 扩增,在 14 分钟内实现了循环测序。此外,通过构建分析和进行微芯片电泳的算法,在 14 分钟内完成了 DNA 分析。因此,基于 Sanger 的三个基本 DNA 测序步骤在 41 分钟内完成。在 PCR 和循环序列后开发快速纯化过程,使用微芯片,将有助于在一小时内实现对病原体的鉴定,并促进脓毒症的早期治疗。