Arunrut Narong, Suebsing Rungkarn, Withyachumnarnkul Boonsirm, Kiatpathomchai Wansika
Center of Excellence for Shrimp Molecular Biology and Biotechnology (CENTEX Shrimp), Faculty of Science, Mahidol University, Bangkok, Thailand; National Center for Genetic Engineering and Biotechnology (BIOTEC), National Science and Technology Development Agency, Pathum Thani, Thailand.
Center of Excellence for Shrimp Molecular Biology and Biotechnology (CENTEX Shrimp), Faculty of Science, Mahidol University, Bangkok, Thailand; Department of Anatomy, Faculty of Science, Mahidol University, Bangkok, Thailand; Aquatic Animal Biotechnology Research Center, Faculty of Science and Industrial Technology, Prince of Songkla University, Surat Thani Campus, Surat Thani, Thailand.
PLoS One. 2014 Sep 25;9(9):e108047. doi: 10.1371/journal.pone.0108047. eCollection 2014.
Rapid and accurate detection of pathogens under field laboratory conditions is necessary for effective control of veterinary pathogens. Here we describe a prototype, portable, pathogen detection device developed for single tube, real-time, reverse transcription, loop-mediated isothermal amplification (RT-LAMP) using Laem-Singh virus (LSNV) as a model. LSNV is an RNA virus and a component cause of growth retardation in black tiger shrimp. We chose its RNA-dependent RNA polymerase (RdRp) gene as the target for our tests. The basis for detection was measurement of turbidity arising from formation of a white, insoluble magnesium pyrophosphate precipitate byproduct upon amplification of the RdRp target sequence from 100 ng template RNA extracted from shrimp. The measurement device consisted of a heating block to maintain constant temperature in the RT-LAMP reaction for 8 Eppindorf sample tubes, a light-emitting diode (LED) light source providing red light emission at 650 nm wavelength to pass through sample tubes, a light dependent resistance (LDR) photo-detector and a software program to report turbidity events and could potentially be marketed for under US$3000. The device was connected to a computer to display real-time results in a variety of formats. The optimized protocol for LSNV detection consisted of incubation of the sample tubes at 65 °C for 1 h during which turbidity was continuously measured, and quantitative results could be obtained by reaction time measurement. The sensitivity of detection was comparable to that of conventional nested RT-PCR and there was no cross reaction with other common shrimp viruses. The device was used for quantitative measurement of relative copy numbers of LSNV RdRp in 8 shrimp tissues and they were found to be highest in the gills followed in order by the lymphoid organ and hemolymph (p ≤ 0.05). This platform can be easily adapted for detection of other pathogens under field laboratory settings.
在野外实验室条件下快速准确地检测病原体对于有效控制兽医病原体至关重要。在此,我们描述了一种原型便携式病原体检测设备,该设备以莱姆 - 辛格病毒(LSNV)为模型,用于单管实时逆转录环介导等温扩增(RT - LAMP)。LSNV是一种RNA病毒,也是黑虎虾生长迟缓的一个致病因素。我们选择其RNA依赖性RNA聚合酶(RdRp)基因作为检测靶点。检测的依据是,在从虾中提取的100 ng模板RNA扩增RdRp靶序列时,测量白色不溶性焦磷酸镁沉淀副产物形成所产生的浊度。测量装置包括一个加热块,用于在RT - LAMP反应中为8个Eppendorf样品管维持恒定温度;一个发光二极管(LED)光源,提供波长为650 nm的红光穿过样品管;一个光敏电阻(LDR)光电探测器以及一个报告浊度事件的软件程序,该设备潜在售价可能低于3000美元。该设备连接到计算机以多种格式显示实时结果。用于LSNV检测的优化方案包括将样品管在65℃孵育1小时,在此期间持续测量浊度,通过测量反应时间可获得定量结果。检测灵敏度与传统巢式RT - PCR相当,且与其他常见虾病毒无交叉反应。该设备用于定量测量8种虾组织中LSNV RdRp的相对拷贝数,结果发现鳃中的拷贝数最高,其次是淋巴器官和血淋巴(p≤0.05)。该平台可轻松适用于野外实验室环境下其他病原体的检测。