School of Chemical and Biological Engineering, College of Engineering, Seoul National University, 599 Gwanangno, Gwanakgu, Seoul, 151-742, South Korea.
Small. 2015 May;11(20):2399-406. doi: 10.1002/smll.201403263. Epub 2015 Jan 21.
Dopamine (DA), as one of catecholamine family of neurotransmitters, is crucially important in humans owing to various critical effects on biometric system such as brine circuitry, neuronal plasticity, organization of stress responses, and control of cardiovascular and renal organizations. Abnormal level of dopamine in the central nervous system causes several neurological diseases, e.g., schizophrenia, Parkinson's disease, and attention deficit hybperactivity disorder (ADHD)/attention deficit disorder (ADD). In this report, we suggest the fabrication of nonenzyme field effect transistor (FET) sensor composed of immobilized Pt particle decorated conducting-polymer (3-carboxylate polypyrrole) nanoparticles (Pt_CPPy) to detect dopamine. The hybrid nanoparticles (NPs) are produced by means of facile chemical reduction of pristine CPPyNP-contained Pt precursor (PtCl4 ) solution. The Pt_CPPys are then immobilized on an amine-functionalized (-NH2 ) interdigitated-array electrode substrate, through the formation of covalent bonds with amine groups (-CONH). The resulting Pt_CPPy-based FET sensors exhibit high sensitivity and selectivity toward DA at unprecedentedly low concentrations (100 × 10(-15) m) and among interfering biomolecules, respectively. Additionally, due to the covalent bonding involved in the immobilization process, a longer lifetime is expected for the FET sensor.
多巴胺(DA)作为儿茶酚胺类神经递质家族的一员,由于其对生物计量系统的各种关键影响,如盐水电路、神经元可塑性、应激反应的组织、心血管和肾脏组织的控制等,对人类至关重要。中枢神经系统中多巴胺水平异常会导致多种神经疾病,例如精神分裂症、帕金森病和注意缺陷多动障碍(ADHD)/注意缺陷障碍(ADD)。在本报告中,我们建议制造由固定化 Pt 颗粒修饰的导电聚合物(3-羧基聚吡咯)纳米颗粒(Pt_CPPy)组成的非酶场效应晶体管(FET)传感器,以检测多巴胺。通过简单的化学还原法制备了含有 Pt 前体(PtCl4)溶液的原始 CPPyNP 的混合纳米颗粒(NPs)。然后,Pt_CPPys 通过与胺基(-CONH)形成共价键固定在胺功能化(-NH2)叉指式阵列电极基底上。所得的基于 Pt_CPPy 的 FET 传感器对 DA 具有高灵敏度和选择性,检测限低至前所未有的 100×10(-15) m,并且对干扰生物分子具有选择性。此外,由于固定化过程中涉及共价键,预计 FET 传感器的寿命更长。