Kalinke Cristiane, Neumsteir Naile Vacionotto, Roberto de Oliveira Paulo, Janegitz Bruno Campos, Bonacin Juliano Alves
Institute of Chemistry, University of Campinas, 13083-970, Campinas, SP, Brazil.
Department of Nature Science, Mathematics and Education, Federal University of São Carlos, 13600-970, Araras, SP, Brazil.
Anal Chim Acta. 2021 Jan 15;1142:135-142. doi: 10.1016/j.aca.2020.10.034. Epub 2020 Nov 4.
The variation in biomarkers levels, such as L-methionine, can be an indicator of health problems or diseases, such as metabolism, neuropsychiatric disorders, or some virus infections. Thus, the development of accurate sensors, with low-cost and rapid response has been gaining increasing importance and attractiveness for the early diagnosis of diseases. In this regard, we have proposed a method for L-methionine electrochemical detection using a low-cost and simple arrangement of 3D-printed electrodes (working, reference, and auxiliary electrodes) based on polylactic acid/graphene filament (PLA-G), in which all electrodes were printed. The working electrode was chemically and electrochemically treated, showing a high electroactive area, with graphene edge plans exposure and better electron transfer when compared to the untreated electrode. An excellent analytical performance was obtained with a sensitivity of 0.176 μAL μmol, a linear dynamic range of 5.0 μmol L 3000 μmol L and limit of detection of 1.39 μmol L. The proposed device was successfully applied for L-methionine detection in spiked serum samples, showing satisfactory recovery values. This indicates the potentiality of the proposed arrangement of electrodes for the L-methionine detection in biological samples at different concentration levels.
生物标志物水平的变化,如L-蛋氨酸,可能是健康问题或疾病的指标,如代谢、神经精神疾病或某些病毒感染。因此,开发低成本、快速响应的精确传感器对于疾病的早期诊断越来越重要且具有吸引力。在这方面,我们提出了一种基于聚乳酸/石墨烯细丝(PLA-G)的低成本、简单的3D打印电极(工作电极、参比电极和辅助电极)排列来检测L-蛋氨酸的电化学方法,其中所有电极均为打印而成。对工作电极进行了化学和电化学处理,与未处理的电极相比,其显示出高电活性面积,石墨烯边缘平面暴露且电子转移更好。该方法具有优异的分析性能,灵敏度为0.176 μA/μmol,线性动态范围为5.0 μmol/L至3000 μmol/L,检测限为1.39 μmol/L。所提出的装置成功应用于加标血清样品中L-蛋氨酸的检测,回收率令人满意。这表明所提出的电极排列在不同浓度水平的生物样品中检测L-蛋氨酸的潜力。