Dipartimento di Scienze Mediche, Chirurgiche e Sperimentali, Università degli Studi di Sassari, Viale San Pietro 43/b, 07100 Sassari, Italy.
Dipartimento di Agraria and Unità di Ricerca Istituto Nazionale di Biostrutture e Biosistemi, Università degli Studi di Sassari, Viale Italia 39, 07100 Sassari, Italy.
Biosensors (Basel). 2019 Jul 30;9(3):95. doi: 10.3390/bios9030095.
The use of amperometric biosensors has attracted particular attention in recent years, both from researchers and from companies, as they have proven to be low-cost, reliable, and very sensitive devices, with a wide range of uses in different matrices. The continuous development of amperometric biosensors, since their use involves an enzyme, is specifically aimed at keeping and increasing the catalytic properties of the loaded protein, so as to be able to use the same device over time. The present study aimed to investigate the impact of glycerol and polysaccharides, in the presence of polycationic substances to constitute a hydrogel, in enhancing the enzymatic and analytic performance of a glucose biosensor. Initially, it was possible to verify how the deposition of the starch-based hydrogel, in addition to allowing the electropolymerization of the poly(p-phenylenediamine) polymer and the maintenance of its ability to shield the ascorbic acid, did not substantially limit the permeability towards hydrogen peroxide. Moreover, different biosensor designs, loading a mixture containing all the components (alone or in combination) and the enzyme, were tested in order to evaluate the changes of the apparent enzyme kinetic parameters, such as V and K, and analytical response in terms of Linear Region Slope, highlighting how the presence of all components (starch, glycerol, and polyethyleneimine) were able to substantially enhance the performance of the biosensors. The surface analysis of the biosensors was performed by scanning electron microscope (SEM). More, it was shown that the same performances were kept unchanged for seven days, proving the suitability of this biosensor design for short- and mid-term use.
近年来,安培生物传感器的应用引起了研究人员和公司的特别关注,因为它们已被证明是低成本、可靠且非常灵敏的设备,在不同基质中有广泛的用途。安培生物传感器的不断发展,由于其使用涉及酶,因此特别旨在保持和增加负载蛋白的催化特性,以便能够随着时间的推移使用相同的设备。本研究旨在探讨甘油和多糖的影响,以及多阳离子物质构成水凝胶,以增强葡萄糖生物传感器的酶和分析性能。最初,我们可以验证基于淀粉的水凝胶的沉积如何除了允许聚(对苯二胺)聚合物的电聚合和维持其屏蔽抗坏血酸的能力之外,不会实质上限制过氧化氢的渗透性。此外,为了评估表观酶动力学参数(如 V 和 K)和线性区域斜率的分析响应的变化,测试了不同的生物传感器设计,加载包含所有成分(单独或组合)和酶的混合物,突出了所有成分(淀粉、甘油和聚乙烯亚胺)的存在如何能够大大提高生物传感器的性能。生物传感器的表面分析通过扫描电子显微镜(SEM)进行。此外,结果表明,这种生物传感器设计在七天内保持不变的性能,证明了这种生物传感器设计适用于短期和中期使用。