State Key Laboratory of Military Stomatology and National Clinical Research Center for Oral Diseases & Shaanxi Engineering Research Center for Dental Materials and Advanced Manufacture, Department of Cranio-facial Trauma and Orthognathic Surgery, School of Stomatology, The Fourth Military Medical University, Xi'an 710032, P.R.China.
Department of Stomatology, General Hospital of Northern Theater Command, 83 Wenhua Road, Shenyang 110016, P.R.China.
J Microbiol Biotechnol. 2023 Aug 28;33(8):1101-1110. doi: 10.4014/jmb.2304.04026. Epub 2023 May 19.
is the primary causative agent of caries, which is one of the most common human diseases. Thus, rapid and early detection of cariogenic bacteria is critical for its prevention. This study investigated the combination of loop-mediated isothermal amplification (LAMP) and microfluid technology to quantitatively detect . A low-cost, rapid microfluidic chip using LAMP technology was developed to amplify and detect bacteria at 2.2-2.2 × 10 colony-forming units (CFU)/ml and its detection limits were compared to those of standard polymerase chain reaction. A visualization system was established to quantitatively determine the experimental results, and a functional relationship between the bacterial concentration and quantitative results was established. The detection limit of using this microfluidic chip was 2.2 CFU/ml, which was lower than that of the standard approach. After quantification, the experimental results showed a good linear relationship with the concentration of , thereby confirming the effectiveness and accuracy of the custom-made integrated LAMP microfluidic system for the detection of . The microfluidic system described herein may represent a promising simple detection method for the specific and rapid testing of individuals at risk of caries.
是龋齿的主要致病因子,而龋齿是最常见的人类疾病之一。因此,快速和早期检测致龋菌对于预防龋齿至关重要。本研究探讨了环介导等温扩增(LAMP)与微流控技术相结合,以定量检测 。开发了一种使用 LAMP 技术的低成本、快速微流控芯片,可在 2.2-2.2×10 菌落形成单位(CFU)/ml 下扩增和检测细菌,其检测限与标准聚合酶链反应(PCR)的检测限进行了比较。建立了可视化系统来定量确定实验结果,并建立了细菌浓度与定量结果之间的函数关系。使用这种微流控芯片检测 的检测限为 2.2 CFU/ml,低于标准方法。经过定量后,实验结果与 的浓度呈良好的线性关系,从而证实了定制集成 LAMP 微流控系统用于检测 的有效性和准确性。本文所述的微流控系统可能代表了一种有前途的简单检测方法,可用于特定的、快速的个体龋病风险检测。