Electrochemically Synthesized MIP Sensors: Applications in Healthcare Diagnostics
Abstract
:1. Introduction
2. Electrochemical Synthesis of MIPs
3. Electrosynthesized MIP-Based Sensors for Detection of Disease Biomarkers
3.1. Cancer
3.2. Cardiovascular Disease
3.3. Inflammatory Disorders
3.4. Neurological Disorders
3.5. Infectious Diseases
3.6. Other Clinical Disorders
4. Conclusions and Future Perspectives
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Target Analyte | Diseases | Monomer | Transducer | Sample | Linear Range | LOD | Ref. |
---|---|---|---|---|---|---|---|
CEA | Cancer (colorectal, lung, breast) | EDOT and pyrrole | Fluorine-doped Tin Oxide conductive glass substrate | human serum | 0.1 ng mL−1–100 μg mL−1 | 0.08 ng mL−1 | [78] |
CEA | Cancer (colorectal, lung, breast) | DA | human serum | 0.001–1000 ng mL−1 | 0.26 pg mL−1 | [79] | |
CEA | Cancer (colorectal, lung, breast) | gallic acid | Au-SPE | PBS | 1–100 ng mL−1 | 1 ng mL−1 | [80] |
CA 15-3 | Cancer (breast) | o-PDA | Au-SPE | human serum | 0.25–10.00 U mL−1 | 0.05 U mL−1 | [81] |
CA 15-3 | Cancer (breast) | o-PDA | CNT electrode | human serum | 5–35 U mL−1 | 1.16 U mL−1 | [82] |
TnT | AMI | o-PDA | Au electrode | human serum | 0.009–0.8 ng mL−1 | 9 pg mL−1 | [83] |
DA | Neurological diseases | pyrrole | GCE | biological samples | 62.5–100 μM | 0.6 nM | [84] |
PARK7/DJ-1 | Neurological diseases | pyrrole | SPCE | lysis buffer | 1–500 nM | 1 nM | [85] |
HCV-E2 a | Hepatitis C | m-PD | Au SPE | human plasma | 0.01–50 ng mL−1 | 0.46 pg mL−1 | [86] |
SARS-CoV-2 pseudoparticles | COVID-19 | N-hydroxmethylacrylamide | Au-SPE | saliva | 3.0–7.0 log10 pfu mL−1 | 4.9 log10 pfu mL−1 | [87] |
SARS-CoV-2 (ncovS1) | COVID-19 | APBA | Au-TFME | nasopharyngeal swab | 0–400 fM | 64 fM | [47] |
Glucose | Diabetes Mellitus | pyrrole | GCE | plasma | - | 1 μM | [88] |
3-nitrotyrosine | Oxidative stress | phenol | Carbon SPE | human urine | 500 nM–1 mM | 22.3 nM | [89] |
3-nitrotyrosine | Oxidative stress | pyrrole | GCE | human serum and urine | 0.2–50.0 mM | 50 nM | [90] |
Lactate | Hypoxia | APBA | SPE | sweat | 3–100 mM | 1.5 mM | [91] |
Diosgenin | Diabetes | p-ABA b | GCE | human plasma | 0.003–0.13 mM | 89.5 μM | [92] |
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Ayankojo, A.G.; Reut, J.; Syritski, V. Electrochemically Synthesized MIP Sensors: Applications in Healthcare Diagnostics. Biosensors 2024, 14, 71. https://doi.org/10.3390/bios14020071
Ayankojo AG, Reut J, Syritski V. Electrochemically Synthesized MIP Sensors: Applications in Healthcare Diagnostics. Biosensors. 2024; 14(2):71. https://doi.org/10.3390/bios14020071
Chicago/Turabian StyleAyankojo, Akinrinade George, Jekaterina Reut, and Vitali Syritski. 2024. "Electrochemically Synthesized MIP Sensors: Applications in Healthcare Diagnostics" Biosensors 14, no. 2: 71. https://doi.org/10.3390/bios14020071
APA StyleAyankojo, A. G., Reut, J., & Syritski, V. (2024). Electrochemically Synthesized MIP Sensors: Applications in Healthcare Diagnostics. Biosensors, 14(2), 71. https://doi.org/10.3390/bios14020071