首页> 外文期刊>Journal of the American Chemical Society >Glutamate receptor incorporated in a mixed hybrid bilayer lipid membrane array, as a sensing element of a biosensor working under flowing conditions
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Glutamate receptor incorporated in a mixed hybrid bilayer lipid membrane array, as a sensing element of a biosensor working under flowing conditions

机译:谷氨酸受体掺入混合的混合双层脂质膜阵列中,作为在流动条件下工作的生物传感器的传感元件

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The realization of a reliable receptor biosensor requires stable, long-lasting, reconstituted biomembranes able to supply a suitable biomimetic environment where the receptor can properly work after incorporation. To this end, we developed a new method for preparing stable biological membranes that couple the biomimetic properties of BLMs (bilayer lipid membranes) with the high stability of HBMs (hybrid bilayer membranes); this gives rise to an innovative assembly, named MHBLM (mixed hybrid bilayer lipid membrane). The present work deals with the characterization of biosensors achieved by embedding an ionotropic glutamate receptor (GluR) on MHBLM. Thanks to signal (transmembrane current) amplification, which is typical of natural receptors, the biosensor here produced detects glutamate at a level of nmol L-1. The transmembrane current changes linearly vs glutamate up to 100 nmol L-1, while the limit of detection is 1 nmol L-1. In addition, the biosensor response can be modulated both by receptor agonists (glycine) and antagonists (Mg2+) as well, and by exploiting the biosensor response, the distribution of different kinds of ionotropic GluR present in the purified sample, and embedded in MHBLM, was also evaluated. Finally, one of the most important aspects of this investigation is represented by the high stability of the biomimetic system, which allows the use of biosensor under flowing conditions, where the solutions flow on both biomembrane faces.
机译:为了实现可靠的受体生物传感器,需要稳定,持久,可重构的生物膜,以提供合适的仿生环境,使受体在掺入后可以正常工作。为此,我们开发了一种制备稳定的生物膜的新方法,该方法将BLM(双层脂质膜)的仿生特性与HBM(混合双层膜)的高稳定性相结合;这样就产生了一种创新的组件,名为MHBLM(混合杂化双层脂质膜)。本工作涉及通过在MHBLM上嵌入离子型谷氨酸受体(GluR)实现的生物传感器的表征。由于天然受体的典型信号(跨膜电流)扩增,此处产生的生物传感器可检测到nmol L-1水平的谷氨酸。跨膜电流相对于谷氨酸线性变化,直至100 nmol L-1,而检出限为1 nmol L-1。此外,生物传感器响应还可以通过受体激动剂(甘氨酸)和拮抗剂(Mg2 +)进行调节,并且可以利用生物传感器响应,纯化样品中存在并嵌入MHBLM的各种离子型GluR的分布进行调节,也进行了评估。最后,该研究最重要的方面之一是仿生系统的高稳定性,它允许在流动条件下使用生物传感器,其中溶液在两个生物膜表面上均流动。

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