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功能化石墨烯基仿生微传感器与活细胞连接以灵敏监测一氧化氮释放。

Functionalized graphene-based biomimetic microsensor interfacing with living cells to sensitively monitor nitric oxide release.

作者信息

Liu Yan-Ling, Wang Xue-Ying, Xu Jia-Quan, Xiao Chong, Liu Yan-Hong, Zhang Xin-Wei, Liu Jun-Tao, Huang Wei-Hua

机构信息

Key Laboratory of Analytical Chemistry for Biology and Medicine (Ministry of Education) , College of Chemistry and Molecular Sciences , Wuhan University , Wuhan , 430072 , China . Email:

出版信息

Chem Sci. 2015 Mar 1;6(3):1853-1858. doi: 10.1039/c4sc03123g. Epub 2015 Jan 28.

Abstract

It is a great challenge to develop electrochemical sensors with superior sensitivity that concurrently possess high biocompatibility for monitoring at the single cell level. Herein we report a novel and reusable biomimetic micro-electrochemical sensor array with nitric oxide (NO) sensing-interface based on metalloporphyrin and 3-aminophenylboronic acid (APBA) co-functionalized reduced graphene oxide (rGO). The assembling of high specificity catalytic but semi-conductive metalloporphyrin with high electric conductive rGO confers the sensor with sub-nanomolar sensitivity. Further coupling with the small cell-adhesive molecule APBA obviously enhances the cytocompatibility of the microsensor without diminishing the sensitivity, while the reversible reactivity between APBA and cell membrane carbohydrates allows practical reusability. The microsensor was successfully used to sensitively monitor, in real-time, the release of NO molecules from human endothelial cells being cultured directly on the sensor. This demonstrates its potential application in the detection of NO with very low bioactive concentrations for the better understanding of its physiological function and for medical tracking of patient states.

摘要

开发具有卓越灵敏度且同时具备高生物相容性以用于单细胞水平监测的电化学传感器是一项巨大挑战。在此,我们报道了一种基于金属卟啉和3-氨基苯硼酸(APBA)共功能化还原氧化石墨烯(rGO)的具有一氧化氮(NO)传感界面的新型可重复使用的仿生微电化学传感器阵列。高特异性催化但半导电的金属卟啉与高导电性rGO的组装赋予了该传感器亚纳摩尔级的灵敏度。进一步与小细胞粘附分子APBA偶联明显增强了微传感器的细胞相容性而不降低灵敏度,同时APBA与细胞膜碳水化合物之间的可逆反应性实现了实际的可重复使用性。该微传感器成功用于实时灵敏监测直接培养在传感器上的人内皮细胞释放的NO分子。这证明了其在检测极低生物活性浓度的NO方面的潜在应用,有助于更好地理解其生理功能并对患者状态进行医学追踪。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/376a/5486208/00a1b29b6193/c4sc03123g-s1.jpg

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