Non-enzymatic electrochemical sensors for point-of-care testing: Current status, challenges, and future prospects

被引:2
作者
Bruckschlegel, Christoph [1 ]
Fleischmann, Vivien [1 ]
Gajovic-Eichelmann, Nenad [2 ]
Wongkaew, Nongnoot [1 ]
机构
[1] Univ Regensburg, Inst Analyt Chem Chemo & Biosensors, Univ Str 31, D-93053 Regensburg, Germany
[2] Fraunhofer Inst Cell Therapy & Immunol, Branch Bioanalyt & Bioproc, Am Muehlenberg 13, D-14476 Potsdam, Germany
关键词
Non-enzymatic detection; Electrochemical sensors; Nanomaterials; Point-of-care detection; Wearable devices; Onsite detection; ACID CONCENTRATIONS; HYDROGEN-PEROXIDE; GLUCOSE-OXIDATION; ASCORBIC-ACID; URIC-ACID; BLOOD; ELECTRODES; NANOPARTICLES; BIOSENSOR; GRAPHENE;
D O I
10.1016/j.talanta.2025.127850
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
Current electrochemical sensors in point-of-care (POC) testing devices rely mainly on enzyme-based sensors owing to superior sensitivity and selectivity. Nevertheless, the poor stability, high reagent cost, complex fabrication methods and requirement of specific operational conditions make their adaptability in real-world applications unfavorable. Non-enzymatic electrochemical sensors are thus developed as they are more robust and cost-effective strategies. The advancement in material science and nanotechnology enables the development of novel non-enzymatic electrodes with favorable analytical performance. However, the developments are yet far from being adopted as viable products. This review therefore aims to gain insight into the field and evaluate the current progress and challenges to eventually propose future research directions. Here, fabrication strategies based on traditional and emerging technology are discussed in the light of analytical performance and costeffectiveness. Moreover, the discussion is given on the pros and cons of non-enzymatic sensors when they are employed with various kinds of sample matrices, i.e., clinical and non-clinical samples, which must be taken into consideration for sensor development. Furthermore, molecular imprinting technology in tackling the selectivity issue is introduced and current progress is provided. Finally, the promising strategies from literature for solving the remaining challenges are included which could facilitate further development of robust POC testing devices based non-enzymatic sensors. We believe that once researchers and technology developers have reached the point where most problems are solved, the non-enzymatic sensors are going to be the robust choice for POC testing in clinical diagnostic, ensuring food safety, monitoring contaminants in environment, and bioprocess control.
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页数:22
相关论文
共 193 条
[91]   Physicochemical Stability of Monoclonal Antibodies: A Review [J].
Le Basle, Yoann ;
Chennell, Philip ;
Tokhadze, Nicolas ;
Astier, Alain ;
Sautou, Valerie .
JOURNAL OF PHARMACEUTICAL SCIENCES, 2020, 109 (01) :169-190
[92]   Enzyme-Based Glucose Sensor: From Invasive to Wearable Device [J].
Lee, Hyunjae ;
Hong, Yongseok Joseph ;
Baik, Seungmin ;
Hyeon, Taeghwan ;
Kim, Dae-Hyeong .
ADVANCED HEALTHCARE MATERIALS, 2018, 7 (08)
[93]   Comparison of enzymatic and non-enzymatic glucose sensors based on hierarchical Au-Ni alloy with conductive polymer [J].
Lee, Won-Chul ;
Kim, Kwang-Bok ;
Gurudatt, N. G. ;
Hussain, Khalil K. ;
Choi, Cheol Soo ;
Park, Deog-Su ;
Shim, Yoon-Bo .
BIOSENSORS & BIOELECTRONICS, 2019, 130 :48-54
[94]   Smart Diaper Based on Integrated Multiplex Carbon Nanotube-Coated Electrode Array Sensors for In Situ Urine Monitoring [J].
Li, Xiangling ;
Zhan, Changyuan ;
Huang, Qiqi ;
He, Mengyi ;
Yang, Cheng ;
Yang, Chengduan ;
Huang, Xinshuo ;
Chen, Meiwan ;
Xie, Xi ;
Chen, Hui-Jiuan .
ACS APPLIED NANO MATERIALS, 2022, 5 (04) :4767-4778
[95]   Recent advances in molecularly imprinted polymer-based electrochemical sensors [J].
Li, Yixuan ;
Luo, Liuxiong ;
Kong, Yingqi ;
Li, Yujia ;
Wang, Quansheng ;
Wang, Mingqing ;
Li, Ying ;
Davenport, Andrew ;
Li, Bing .
BIOSENSORS & BIOELECTRONICS, 2024, 249
[96]   A graphene nanoplatelet-polydopamine molecularly imprinted biosensor for Ultratrace creatinine detection [J].
Li, Yixuan ;
Luo, Liuxiong ;
Nie, Mengyan ;
Davenport, Andrew ;
Li, Ying ;
Li, Bing ;
Choy, Kwang-Leong .
BIOSENSORS & BIOELECTRONICS, 2022, 216
[97]  
Li ZT, 2013, NAT MATER, V12, P925, DOI [10.1038/NMAT3709, 10.1038/nmat3709]
[98]   Antifouling strategies in advanced electrochemical sensors and biosensors [J].
Lin, Pei-Heng ;
Li, Bor-Ran .
ANALYST, 2020, 145 (04) :1110-1120
[99]   Amperometric acetylcholine sensor catalyzed by nickel anode electrode [J].
Lin, S ;
Liu, CC ;
Chou, TC .
BIOSENSORS & BIOELECTRONICS, 2004, 20 (01) :9-14
[100]   Regulation of Vitamin C Homeostasis during Deficiency [J].
Lindblad, Maiken ;
Tveden-Nyborg, Pernille ;
Lykkesfeldt, Jens .
NUTRIENTS, 2013, 5 (08) :2860-2879