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首页> 外文期刊>Mikrochimica Acta: An International Journal for Physical and Chemical Methods of Analysis >Layer by layer construction of ascorbate interference-free amperometric lactate biosensors with lactate oxidase, ascorbate oxidase, and ceria nanoparticles
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Layer by layer construction of ascorbate interference-free amperometric lactate biosensors with lactate oxidase, ascorbate oxidase, and ceria nanoparticles

机译:具有乳酸氧化酶,抗坏血酸氧化酶和二氧化铈纳米颗粒的抗坏血酸无干扰安培乳酸生物传感器的逐层构造

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We report on the design of an ascorbate interference-free lactate biosensor that takes advantage of the redox properties of ceria (CeO2) nanoparticles that make this material suitable to be used in electrochemical biosensors operating in low oxygen conditions. First, ceria-free lactate biosensors were fabricated using a positively charged polymer, polyethylenimine (PEI), for the immobilization of lactate oxidase (LOx) and ascorbate oxidase (AOx) on Pt electrodes. When AOx was not immobilized on the electrode, the sensor was interfered by ascorbate. Immobilization of AOx on the electrode surface, however, resulted in a loss of interference by ascorbate due to the depletion of oxygen in the enzyme layer. To address this challenge, we exploited the oxygen storage capacity of ceria nanoparticles. Their introduction into the enzyme layer enabled the fabrication of lactate biosensors that are not interfered by ascorbate and yet can be operated under low oxygen conditions. The Pt/CeO2-3(PEI/LOx)-3(PEI/AOx) biosensors, if operated at a working voltage of 0.6 V (vs. Ag/AgCl) display a wide linear range (20 mu M to 1 mM), a low detection limit (0.3 mu M) and a sensitivity of 172.9 +/- A 11.7 mu Aa (TM) mM(-1)a (TM) cm(-2). Evidently, the layer-by-layer configuration eliminates interferences by common species such as ascorbic acid, uric acid, and glucose. The practical applicability of the sensors was evaluated by detecting lactate in human serum.
机译:我们报告了抗坏血酸无干扰的乳酸生物传感器的设计,该传感器利用了氧化铈(CeO2)纳米粒子的氧化还原特性,使该材料适合在低氧条件下运行的电化学生物传感器中使用。首先,使用带正电的聚合物聚乙烯亚胺(PEI)制造无铈的乳酸生物传感器,以将乳酸氧化酶(LOx)和抗坏血酸氧化酶(AOx)固定在Pt电极上。当AOx未固定在电极上时,传感器受到抗坏血酸的干扰。然而,由于酶层中氧的消耗,AOx固定在电极表面会导致抗坏血酸的干扰损失。为了应对这一挑战,我们利用了氧化铈纳米颗粒的储氧能力。将它们引入酶层使得能够制造乳酸生物传感器,该传感器不受抗坏血酸干扰,但可以在低氧条件下运行。如果Pt / CeO2-3(PEI / LOx)-3(PEI / AOx)生物传感器在0.6 V(vs. Ag / AgCl)的工作电压下运行,则显示的线性范围很广(20μM至1 mM),低检测限(0.3μM)和172.9 +/- A 11.7μAa(TM)mM(-1)a(TM)cm(-2)的灵敏度。显然,逐层配置消除了常见物质(例如抗坏血酸,尿酸和葡萄糖)的干扰。通过检测人血清中的乳酸来评估传感器的实际适用性。

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