Jiangsu Engineering Laboratory of Smart Carbon-Rich Materials and Device, Jiangsu Province Hi-Tech Key Laboratory for Bio-Medical Research, School of Chemistry and Chemical Engineering, Southeast University , Nanjing 211189, China.
Medical School, Southeast University , Nanjing 210009, China.
ACS Appl Mater Interfaces. 2018 Feb 28;10(8):6887-6894. doi: 10.1021/acsami.7b17813. Epub 2018 Feb 13.
DNA methylation catalyzed by methylase plays a key role in many biological activities. However, developing a highly sensitive, simple, and reliable way for evaluation of DNA methyltransferase (MTase) activity is still a challenge. Here, we report a sandwich-assembled electrochemiluminescence (ECL) biosensor using multifunctional carbon nitride nanosheets (CNNS) to evaluate the Dam MTase activity. The CNNS could not only be used as an excellent substrate to conjugate a large amount of hairpin probe DNA to improve the sensitivity but also be utilized as an internal reliability checker and an analyte reporter in the bottom and top layers of the biosensor, respectively. Such a unique sandwich configuration of CNNS well coupled the advantages of ECL luminophor that were generally assembled in the bottom or top layer in a conventional manner. As a result, the biosensor exhibited an ultralow detection limit down to 0.043 U/mL and a linear range between 0.05 and 80 U/mL, superior to the MTase activity assay in most previous reports. We highlighted the great potential of emerging CNNS luminophor in developing highly sensitive and smart quality self-testable ECL sensing systems using a sandwiched configuration for early disease diagnosis, treatment, and management.
DNA 甲基化由甲基化酶催化,在许多生物活性中起着关键作用。然而,开发一种高度敏感、简单和可靠的方法来评估 DNA 甲基转移酶(MTase)的活性仍然是一个挑战。在这里,我们报告了一种夹心组装的电化学发光(ECL)生物传感器,使用多功能氮化碳纳米片(CNNS)来评估 Dam MTase 的活性。CNNS 不仅可以用作极好的底物,将大量发夹探针 DNA 连接到其上以提高灵敏度,还可以分别用作生物传感器底层和顶层的内部可靠性检查器和分析物报告器。这种独特的 CNNS 夹心结构很好地结合了 ECL 发光体的优点,这些发光体通常以传统方式组装在底层或顶层。结果,该生物传感器表现出超低的检测限低至 0.043 U/mL 和 0.05 到 80 U/mL 之间的线性范围,优于大多数先前报道的 MTase 活性测定。我们强调了新兴的 CNNS 发光体在使用夹心构型开发高度敏感和智能质量自我检测 ECL 传感系统方面的巨大潜力,用于早期疾病诊断、治疗和管理。