Department of Biotechnology, Faculty of Science, Mahidol University, Bangkok, Thailand.
National Center for Genetic Engineering and Biotechnology (BIOTEC), National Science and Technology Development Agency (NSTDA), Pathum Thani, Thailand.
J Fish Dis. 2022 Jan;45(1):107-120. doi: 10.1111/jfd.13541. Epub 2021 Oct 6.
Scale drop disease virus (SDDV) is a major pathogen of Asian sea bass that has emerged in many countries across the Asia Pacific since 1992 and carries the potential to cause drastic economic losses to the aquaculture sector. The lack of an approved vaccine for SDDV necessitates timely prevention as the first line of defence against the disease, but current diagnostic platforms still face challenges that render them incompatible with field applications, particularly in resource-limited settings. Here, we developed a novel detection platform for SDDV based on a CRISPR-Cas12a-based nucleic acid detection technology combined with recombinase polymerase amplification (RPA-Cas12a). Using the viral adenosine triphosphatase (SDDV-ATPase) gene as a target, we achieved the detection limit of 40 copies per reaction and high specificity for SDDV. The coupling with fluorescence and lateral flow readouts enables naked-eye visualization and straightforward data interpretation requiring minimal scientific background. Compared with semi-nested PCR in field sample evaluation, our RPA-Cas12a assay is more sensitive and capable of detecting SDDV in asymptomatic fish. Importantly, the entire workflow can be carried out at a constant temperature of 37°C within an hour from start to finish, thus removing the need for an expensive thermal cycling apparatus and long turnaround times associated with PCR-based methods. Therefore, owing to its high accuracy, rapidity and user-friendliness, the developed RPA-Cas12a platform shows the potential for diagnosis of SDDV at point of need and could be a valuable tool to help protect fish farming communities from large-scale epidemics.
病毒性皮下及造血组织坏死病病毒(SDDV)是一种主要的亚洲鲈鱼病原体,自 1992 年以来在亚太地区许多国家出现,有可能给水产养殖业造成巨大的经济损失。由于缺乏针对 SDDV 的批准疫苗,因此需要及时采取预防措施作为疾病的第一道防线,但目前的诊断平台仍然存在与现场应用不兼容的挑战,特别是在资源有限的环境中。在这里,我们开发了一种基于 CRISPR-Cas12a 核酸检测技术与重组酶聚合酶扩增(RPA-Cas12a)相结合的新型 SDDV 检测平台。我们以病毒三磷酸腺苷酶(SDDV-ATPase)基因为靶标,实现了每个反应 40 拷贝的检测限和对 SDDV 的高特异性。与荧光和横向流动读数相结合,实现了肉眼可视化和简单的数据解释,几乎不需要科学背景。与现场样本评估中的半巢式 PCR 相比,我们的 RPA-Cas12a 检测法更灵敏,能够检测无症状鱼中的 SDDV。重要的是,整个工作流程可以在 37°C 的恒温下在 1 小时内完成,从而无需昂贵的热循环仪器和与 PCR 方法相关的长周转时间。因此,由于其准确性、快速性和易用性,开发的 RPA-Cas12a 平台显示出在需要时诊断 SDDV 的潜力,并且可以成为帮助保护养鱼社区免受大规模流行的有价值工具。