Current Advancements and Future Road Map to Develop ASSURED Microfluidic Biosensors for Infectious and Non-Infectious Diseases
Abstract
:1. Introduction
2. Brief History of Microfluidics
3. Current Practices in the Selection of Materials for Microfluidic Devices
4. Microfluidic Chip Biosensors for Diagnosis of Infectious Diseases
4.1. Malaria
4.1.1. Immunoassay-Based Microfluidic Chip Biosensors
4.1.2. Nucleic Acid-Based Microfluidic Chip Biosensors
4.2. Sepsis
4.2.1. Immunoassay-Based Microfluidic Chip Biosensors
4.2.2. Nucleic Acid-Based Microfluidic Chip Biosensors
4.3. AIDS
4.3.1. Immunoassay-Based Microfluidic Chip Biosensors
4.3.2. Nucleic Acid-Based Microfluidic Chip Biosensors
5. Microfluidic Chips for Diagnosis of Non-Infectious Diseases
5.1. Immunoassay-Based Microfluidic Chip Biosensors
5.2. Aptamer-Based Microfluidic Chip Biosensors
6. Future Roadmap
7. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Target | Material | Principle | Detection | LOD | ASSURED Criteria (Fulfilled or Not) | Ref. |
---|---|---|---|---|---|---|
Malaria | ||||||
pfLDH | Polystyrene | Immunoassay | Chemiluminiscence | 1 pg/µL | Affordable, rapid, user-friendly, sensitivity | [83] |
pfLDH | Paper | Immunoassay | Electrochemical (amperometric) | 300 parasites/µL | Affordable, rapid, sensitivity | [84] |
P. falciparum and P. vivax | Plastic (cyclic olefin polymer) | Nucleic acid | Fluorescence | 2 parasites/μL | Affordable, user-friendly, portable | [8] |
P. falciparum and P. vivax | Paper | Nucleic acid | Fluorescence | 5 parasites/µL | Affordable, user-friendly, sensitivity | [85] |
Sepsis | ||||||
E.coli | PMMA/glass | Immunoassay | Fluorescence imaging | 50 CFUs/mL | Low fabrication cost, user-friendly | [86] |
CRP and NP | PMMA | Immunoassay | Fluorescence | CRP:10 μg/L NP:2.1 μg/L | Rapid, simple, user-friendly, portable | [87] |
CRP | PMMA | Immunoassay | Colorimetric (visual analysis) | 0.01 μg/mL | Affordable, portable, equipment-free | [88] |
CRP | Paper | Immunoassay | Colorimetric | 40 ng/mL | Affordable, portable, equipment-free, user-friendly | [89] |
S.enterica | PDMS and glass | Nucleic acid (LAMP) | Amperometric | <1000 CFU/mL | User-friendly, affordable | [90] |
E. coli, K. pneumoniae, P. aeruginosa, S. epidermidis, and S. saprophyticus | PMMA, glass, and PDMS | Nucleic acid (PCR) | Fluorescence | 5 CFU/mL | Affordable, user-friendly, sensitivity | [91] |
AIDS | ||||||
Anti-HIV-1-antibodies | PDMS and polystyrene | Immunoassay | Optical | 5 pg/mL | Portable, affordable | [92] |
HBsAg, NSP4 and gp41 | PDMS | Immunoassay | Fluorescence | Sensitivtiy range HBsAg and gp41: 10−10–10−12 M NSP4: pM range | Rapid, required small sample | [93] |
p24 protein | Paper | Immunoassay | Colorimetric | 54 fmol | User-friendly, equipment free | [94] |
HIV-RNA | Membranes, paper and plastic | Nucleic acid (RT-LAMP) | LFIA | 2.3 × 107 virus copies/mL | Affordable, user-friendly, sensitive, portable | [95] |
HIV-DNA | Paper, glass and plastic | Nucleic acid (Isothermal enzymatic amplification) | LFIA | 10 copies of HIV DNA | Rapid, sensitive, portable, user-friendly | [96] |
Cardiovascular diseases | ||||||
CRP | Silicon | Immunoassay | Fluorescence | 1 ng/mL | Sensitive | [97] |
BNP | Glass and PDMS | Immunoassay | SPR | 15 fg | Sensitive, simple | [98] |
CK-MB, cTnI and myoglobin | Silicon and PDMS | Immunoassay | Chemiluminescence | cTnI: 1.02 pg/mL, CK-MB: 1.37 pg/mL Myo: 4.15 pg/mL | Rapid, sensitive, portable | [99] |
cTnI | PMMA | Immunoassay | Fluorescence | 24 pg/mL | Affordable, portable, sensitive, rapid | [100] |
FABP, cTnI and myoglobin | Paper | Immunoassay | Fluorescence | FABP: 1.36 ng/mL cTnI: 1.00 ng/mL, Myo: 2.38 ng/mL | Simple, affordable, rapid, robust, portable | [101] |
CRP, NT-proBNP, cTnI and fibrinogen | PDMS | Aptamers-based assay | Potentiometric | CRP: 0.14 mg/L NT-proBNP: 0.832 pg/mL cTnI: 0.394 pg/mL Fibrinogen: 20.2 mg/dL | Portable, user-friendly, rapid, robust | [102] |
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Bhardwaj, T.; Ramana, L.N.; Sharma, T.K. Current Advancements and Future Road Map to Develop ASSURED Microfluidic Biosensors for Infectious and Non-Infectious Diseases. Biosensors 2022, 12, 357. https://doi.org/10.3390/bios12050357
Bhardwaj T, Ramana LN, Sharma TK. Current Advancements and Future Road Map to Develop ASSURED Microfluidic Biosensors for Infectious and Non-Infectious Diseases. Biosensors. 2022; 12(5):357. https://doi.org/10.3390/bios12050357
Chicago/Turabian StyleBhardwaj, Tanu, Lakshmi Narashimhan Ramana, and Tarun Kumar Sharma. 2022. "Current Advancements and Future Road Map to Develop ASSURED Microfluidic Biosensors for Infectious and Non-Infectious Diseases" Biosensors 12, no. 5: 357. https://doi.org/10.3390/bios12050357
APA StyleBhardwaj, T., Ramana, L. N., & Sharma, T. K. (2022). Current Advancements and Future Road Map to Develop ASSURED Microfluidic Biosensors for Infectious and Non-Infectious Diseases. Biosensors, 12(5), 357. https://doi.org/10.3390/bios12050357