Strachan Simon, Chakraborty Moutoshi, Sallam Mohamed, Bhuiyan Shamsul A, Ford Rebecca, Nguyen Nam-Trung
School of Environment and Science, Griffith University, Nathan Campus, Brisbane, QLD 4111, Australia.
Queensland Micro- and Nanotechnology Centre (QMNC), Griffith University, Nathan Campus, Brisbane, QLD 4111, Australia.
Micromachines (Basel). 2023 Nov 15;14(11):2101. doi: 10.3390/mi14112101.
Molecular diagnostics have become indispensable in healthcare, agriculture, and environmental monitoring. This diagnostic form can offer rapid and precise identification of pathogens and biomarkers. However, traditional laboratory-based molecular testing methods can be expensive and require specialised training, limiting their accessibility in resource-limited settings and on-site applications. To overcome these challenges, this study proposes an innovative approach to reducing costs and complexity in portable colorimetric loop-mediated isothermal amplification (LAMP) devices. The research evaluates different resistive heating systems to create an energy-efficient, cost-effective, and compact device to heat a polydimethylsiloxane (PDMS) block for precise temperature control during LAMP reactions. By combining this novel heating system with an off-the-shelf red-green-blue (RGB) sensor to detect and quantify colour changes, the integrated system can accurately detect subsp. , the bacteria responsible for ratoon stunting disease (RSD) in sugarcane. The experimental validation of this system demonstrates its ability to detect the target pathogen in real time, making it an important development for low cost, portable, and easy-to-use molecular diagnostics in healthcare, agriculture, and environmental monitoring applications.
分子诊断在医疗保健、农业和环境监测中已变得不可或缺。这种诊断形式能够快速、精确地识别病原体和生物标志物。然而,传统的基于实验室的分子检测方法可能成本高昂且需要专业培训,这限制了它们在资源有限的环境和现场应用中的可及性。为克服这些挑战,本研究提出一种创新方法,以降低便携式比色环介导等温扩增(LAMP)设备的成本和复杂性。该研究评估了不同的电阻加热系统,以制造一种节能、经济高效且紧凑的设备,用于加热聚二甲基硅氧烷(PDMS)块,以便在LAMP反应期间进行精确的温度控制。通过将这种新型加热系统与现成的红绿蓝(RGB)传感器相结合来检测和量化颜色变化,该集成系统能够准确检测 亚种,即导致甘蔗宿根矮化病(RSD)的细菌。该系统的实验验证表明其能够实时检测目标病原体,这使其成为医疗保健、农业和环境监测应用中低成本、便携式且易于使用的分子诊断的一项重要进展。