Natsuhara Daigo, Takishita Keisuke, Tanaka Kisuke, Kage Azusa, Suzuki Ryoji, Mizukami Yuko, Saka Norikuni, Nagai Moeto, Shibata Takayuki
Department of Mechanical Engineering, Toyohashi University of Technology, Toyohashi, Aichi 441-8560, Japan.
Agro-Environmental Division, Aichi Agricultural Research Center, Nagakute, Aichi 480-1193, Japan.
Micromachines (Basel). 2020 May 26;11(6):540. doi: 10.3390/mi11060540.
As an efficient approach to risk management in agriculture, the elimination of losses due to plant diseases and insect pests is one of the most important and urgent technological challenges for improving the crop yield. Therefore, we have developed a polydimethylsiloxane (PDMS)-based microfluidic device for the multiplex genetic diagnosis of plant diseases and pests. It offers unique features, such as rapid detection, portability, simplicity, and the low-cost genetic diagnosis of a wide variety of plant viruses. In this study, to realize such a diagnostic device, we developed a method for the autonomous dispensing of fluid into a microchamber array, which was integrated with a set of three passive stop valves with different burst pressures (referred to as phaseguides) to facilitate precise fluid handling. Additionally, we estimated the mixing efficiencies of several types of passive mixers (referred to as chaotic mixers), which were integrated into a microchannel, through experimental and computational analyses. We first demonstrated the ability of the fabricated diagnostic devices to detect DNA-based plant viruses from an infected tomato crop based on the loop-mediated isothermal amplification (LAMP) method. Moreover, we demonstrated the simultaneous detection of RNA-based plant viruses, which can infect cucurbits, by using the reverse transcription LAMP (RT-LAMP) method. The multiplex RT-LAMP assays revealed that multiple RNA viruses extracted from diseased cucumber leaves were successfully detected within 60 min, without any cross-contamination between reaction microchambers, on our diagnostic device.
作为农业风险管理的一种有效方法,消除植物病虫害造成的损失是提高作物产量最重要且最紧迫的技术挑战之一。因此,我们开发了一种基于聚二甲基硅氧烷(PDMS)的微流控装置,用于对植物病虫害进行多重基因诊断。它具有快速检测、便携、操作简单以及能低成本对多种植物病毒进行基因诊断等独特特性。在本研究中,为实现这样一种诊断装置,我们开发了一种将流体自动分配到微腔阵列中的方法,该微腔阵列与一组具有不同破裂压力的三个被动截止阀(称为相位导向器)集成在一起,以方便精确的流体处理。此外,我们通过实验和计算分析评估了集成在微通道中的几种类型的被动混合器(称为混沌混合器)的混合效率。我们首先展示了所制造的诊断装置基于环介导等温扩增(LAMP)方法从受感染的番茄作物中检测基于DNA的植物病毒的能力。此外,我们通过使用逆转录LAMP(RT-LAMP)方法展示了对可感染葫芦科植物的基于RNA的植物病毒的同时检测。多重RT-LAMP分析表明,在我们的诊断装置上,从患病黄瓜叶片中提取的多种RNA病毒在60分钟内被成功检测到,反应微腔之间没有任何交叉污染。