一种用于检测中链脂肪酸的仿生心肌细胞生物传感器

Yating Chen, L. Du, Ping Zhu, Shuge Liu, Dongxin Liang, Chunsheng Wu
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引用次数: 0

摘要

基于细胞的仿生生物传感器在食品、饮料、制药和环境安全等领域得到了广泛的应用。然而,有限的灵敏度和特异性阻碍了它们的进一步发展和实际应用。近年来,以生物材料为敏感材料,以各种检测装置为换能器的仿生生物传感器被广泛提出,旨在弥补电子系统与生物嗅觉之间的差距。本文首次研制了以SD原代心肌细胞为主要敏感元件,微电极阵列(MEA)为传感器装置的中链脂肪酸(MCFA)检测仿生生物传感器。将提取的内源性表达or51e1嗅觉受体的原代心肌细胞培养在MEA表面,形成合胞体进行电位传导和机械跳动。结果表明,MEA芯片的表面涂层为心肌细胞培养提供了良好的生物相容性,使心肌细胞在MEA芯片表面生长良好,为进一步测量细胞响应信号提供了条件。测量结果表明,该仿生传感器对5种脂肪酸有特异性响应,响应信号显著,并通过主成分分析(PCA)成功区分了不同的脂肪酸气味。本研究开发的基于心肌细胞的生物传感器为仿生生物传感器的构建提供了一种新的方法,在嗅觉检测和药物研究中具有广阔的应用前景。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Biomimetic Cardiomyocyte-based Biosensor for the Detection of Medium Chain Fatty Acids
Biomimetic cell-based biosensors have been developed for applications in many fields such as food, beverage, pharmaceutical and environment safety. However, the limited sensitivity and specificity have hampered their further development and practical applications. In recent years, biomimetic biosensors based on the combination of biomaterials as sensitive materials and various detection device as transducers have been widely proposed for the purpose of bridging the gap between the electronic system and the biological sense of smell. In this work, a biomimetic biosensor based on SD primary cardiomyocytes as the main sensitive element and microelectrode array (MEA) as the transducer device was developed for medium-chain fatty acid (MCFA) detection for the first time. The extracted primary cardiomyocytes endogenously expressing the OR51 E 1 olfactory receptor were cultured on the MEA surface and formed syncytium for potential conduction and mechanical beating. The obtained results indicated that the surface coating of MEA chip provided good biocompatibility for cardiomyocyte culture which grow well on the surface of MEA chip, allowing for the further measurement on cell responsive signals. The measurement results showed that this biomimetic biosensor had specific responses to five fatty acids with significant responsive signals and different fatty acid odorants were successfully distinguished by principal component analysis (PCA). The cardiomyocyte-based biosensor developed in this work provides a new method for biomimetic biosensor construction and has promising applications in olfactory detection and pharmaceutical researches.
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