Ab'/> Evaluation of novel Fmoc-tripeptide based hydrogels as immobilization supports for electrochemical biosensors
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Evaluation of novel Fmoc-tripeptide based hydrogels as immobilization supports for electrochemical biosensors

机译:用于电化学生物传感器的固定载体的新型FMOC三维水凝胶的评价

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AbstractThe immobilization procedure is one of the key factors affecting the electron transfer based biosensors performance. It must assure both the enzyme retention activity and an efficient communication between the redox center of the enzyme and the electrode surface. In this regard, hydrogels are attractive materials due to their three-dimensional hydrophilic networks and their high-water concentration, promoting the biomolecule long-term stability and providing a suitable scaffold for trapping. To this aim, we have synthesized a gelling tripeptide Fluorenylmethyloxycarbonyl-triphenylalanine (FmocPhe3) produced starting from Fmoc-phenylalanine and diphenylalanine by the catalytic activity of Lipase in water and characterized its performance as a new immobilization support for biosensors. For this purpose, we have evaluated the main bioelectrochemical properties ofTrametes versicolorLaccase (TvL) immobilized within the hydrogel and a hydrogel-nanocomposite structure in the presence of gold nanoparticles (AuNPs). Either the Fmoc and the benzyl rings inside the tripeptide structure contributed to the hydrogel network formation by π-π stacking interactions, which promoted the physical entrapment of Laccase as well as the interaction with the carbon-based electrode surface. Furthermore, the π-electrons flow throughout the tripeptide based hydrogel allowed a good electron transfer between the immobilized enzyme and the electrode. The obtained results showed a significative increase in the hydrogel nanocomposite-based graphite biosensor performance with respect to those obtained with the hydrogel-based graphite biosensor. The
机译:<![cdata [ 抽象 固定过程是影响基于电子转移的生物传感器性能的关键因素之一。它必须确保酶保留活动和酶的氧化还原中心和电极表面之间的有效沟通。在这方面,由于其三维亲水网络及其高水浓度,水凝胶是有吸引力的材料,促进生物分子的长期稳定性并提供适当的支架用于捕获。为此目的,我们合成了从Fmoc-苯丙氨酸和二苯基碱在水中催化活性产生的“> 3 ”的胶凝三肽芴基甲氧基氧基羰基 - 三苯基甲氧基甲氧基甲氧基甲氧基甲氧基甲氧基甲氧基甲氧基甲氧基甲氧基甲氧基甲氧基 - 三苯基甲氧基甲氧基 - 三苯基丙烯酸(FMOCPHE )。将其表现为对生物传感器的新的固定支持。为此目的,我们评估了在金纳米颗粒(AUNP)的存在下固定在水凝胶内的 versicolor 漆酶(TV1)的主要生物电化学性质。 FMOC和三肽结构内的苄基环无论是通过π-π堆叠相互作用的水凝胶网络形成,它促进了漆酶的物理夹带以及与碳基电极表面的相互作用。此外,整个三肽的水凝胶中的π电子允许在固定化酶和电极之间允许良好的电子传递。所得结果表明,基于水凝胶纳米复合材料的石墨生物传感器性能的重要性增加了与水凝胶基石墨生物传感器所获得的那些。这

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