该文构建一种基于靶标诱导滚环扩增(rolling circle amplification,RCA)的无标记适配体快速检测赭曲霉毒素A(ochratoxin A,OTA)生物传感器。该生物传感器探针由RCA引物与OTA适配体两部分组成,在OTA存在的环境中,OTA适配体特异性识别靶标...该文构建一种基于靶标诱导滚环扩增(rolling circle amplification,RCA)的无标记适配体快速检测赭曲霉毒素A(ochratoxin A,OTA)生物传感器。该生物传感器探针由RCA引物与OTA适配体两部分组成,在OTA存在的环境中,OTA适配体特异性识别靶标,探针结构被打开,RCA引物与环状DNA模板(circular DNA template,CT)结合开启RCA反应,加入核酸染料SYBR Gold产生荧光信号。此生物传感器具有较高的特异性,检测限为6.6×10^(-2)nmol/L,线性检测范围为6.6×10^(-2)~660 nmol/L,可用于具体的分析检测。此生物传感器无需复杂化学修饰且操作简单,在食品安全检测中具有良好的应用前景。展开更多
The development of high-performance glucose sensors is an urgent need, especially for diabetes mellitus diagnosis. However, the glucose monitoring is conventionally operated in an invasive finger-prick manner and thei...The development of high-performance glucose sensors is an urgent need, especially for diabetes mellitus diagnosis. However, the glucose monitoring is conventionally operated in an invasive finger-prick manner and their noninvasive alternatives largely suffered from the relatively poor sensitivity, selectivity, and stability, resulted from the lack of robust and efficient catalysts. In this paper, we design a concave shaped nitrogen-doped carbon framework embellished with single Co site catalyst(Co SSC) by selectively controlling the etching rate on different facet of carbon substrate, which is beneficial to the diffusion and contact of analyte. The Co SSC prompts a significant improvement in the sensitivity of the solutiongated graphene transistor(SGGT) devices, with three orders of magnitude better than those of SGGT devices without catalysts. Our findings expand the field of single site catalyst in the application of biosensors, diabetes diagnostics and personalized health-care monitoring.展开更多
文摘该文构建一种基于靶标诱导滚环扩增(rolling circle amplification,RCA)的无标记适配体快速检测赭曲霉毒素A(ochratoxin A,OTA)生物传感器。该生物传感器探针由RCA引物与OTA适配体两部分组成,在OTA存在的环境中,OTA适配体特异性识别靶标,探针结构被打开,RCA引物与环状DNA模板(circular DNA template,CT)结合开启RCA反应,加入核酸染料SYBR Gold产生荧光信号。此生物传感器具有较高的特异性,检测限为6.6×10^(-2)nmol/L,线性检测范围为6.6×10^(-2)~660 nmol/L,可用于具体的分析检测。此生物传感器无需复杂化学修饰且操作简单,在食品安全检测中具有良好的应用前景。
基金supported by the Postdoctoral Science Foundation of China (2019M653052)the Fundamental Research Funds for the Central Universities (WK2060120002)+1 种基金the National Key R&D Program of China (2017YFA, 0208300)the National Natural Science Foundation of China (21671180)。
文摘The development of high-performance glucose sensors is an urgent need, especially for diabetes mellitus diagnosis. However, the glucose monitoring is conventionally operated in an invasive finger-prick manner and their noninvasive alternatives largely suffered from the relatively poor sensitivity, selectivity, and stability, resulted from the lack of robust and efficient catalysts. In this paper, we design a concave shaped nitrogen-doped carbon framework embellished with single Co site catalyst(Co SSC) by selectively controlling the etching rate on different facet of carbon substrate, which is beneficial to the diffusion and contact of analyte. The Co SSC prompts a significant improvement in the sensitivity of the solutiongated graphene transistor(SGGT) devices, with three orders of magnitude better than those of SGGT devices without catalysts. Our findings expand the field of single site catalyst in the application of biosensors, diabetes diagnostics and personalized health-care monitoring.