| Literature DB >> 32260295 |
Antonio Baldassarre1, Nicola Mucci1, Luigi Isaia Lecca1, Emanuela Tomasini1, Maria Julia Parcias-do-Rosario2, Carolina Tauil Pereira2, Giulio Arcangeli1, Paulo Antonio Barros Oliveira2.
Abstract
A sensor is a device used to gather information registered by some biological, physical or chemical change, and then convert the information into a measurable signal. The first biosensor prototype was conceived more than a century ago, in 1906, but a properly defined biosensor was only developed later in 1956. Some of them have reached the commercial stage and are routinely used in environmental and agricultural applications, and especially, in clinical laboratory and industrial analysis, mostly because it is an economical, simple and efficient instrument for the in situ detection of the bioavailability of a broad range of environmental pollutants. We propose a narrative review, that found 32 papers and aims to discuss the possible uses of biosensors, focusing on their use in the area of occupational safety and health (OSH).Entities:
Keywords: biosensors; complex adaptive systems; digital epidemiology; e-health; environmental medicine; ergonomics; health and safety; health biomarker; high fidelity data acquisition; high-throughput artificial intelligence; nanotechnology; occupational medicine
Year: 2020 PMID: 32260295 PMCID: PMC7177223 DOI: 10.3390/ijerph17072461
Source DB: PubMed Journal: Int J Environ Res Public Health ISSN: 1660-4601 Impact factor: 3.390
Figure 1Scheme of a standard biosensor. The biological part is either integrated or closely associated with the physical transducer, and behaves as a recognition element, capable to detect a specific biological analyte, thus generating a measurable signal.
Figure 2Research strategy flow-chart.
Research strategy selected articles.
| Title | Year | 1st Author | Method | Key Messages | PICO Criteria | |
|---|---|---|---|---|---|---|
| 1 | Disease-Related Detection with Electrochemical: A Review [ | 2017 | Huang Y | Narrative review | Disease-related detection with electrochemical biosensors | P ☐ |
| 2 | A Review on Carbon Nanotubes in Biosensor Devices and their Applications in Medicine [ | 2018 | Sireesha M | Narrative review | Carbon nanotubes (CNTs) biosensors | P ☐ |
| 3 | Multiplex Biomarker Analysis Biosensor for Detection of Hepatitis B Virus [ | 2015 | Xu H | Scientific report | In vitro study | P ☐ |
| 4 | Toward the Development of Smart and Low Cost Point-of-Care Biosensors Based on Screen Printed Electrodes [ | 2015 | Ahmed MU | Narrative review | Biosensor applications in environmental analysis | P ☐ |
| 5 | Biosensor and Enviromental Health [ | 2012 | Preedy VR | Book | General information - history | P ☐ |
| 6 | How cutting-edge technologies impact the design of electrochemical (bio)sensors for environmental analysis. A review [ | 2016 | Arduini F | Narrative review | Screen printed electrodes | P ☐ |
| 7 | The Application of Whole Cell-Based Biosensors for Use in Environmental Analysis and in Medical Diagnostics [ | 2017 | Gui Q | Narrative review | Whole cell-based biosensors in the areas of pollution detection in environmental and in biomedical diagnostics | P ☑ |
| 8 | Technology features - Pocket laboratories [ | 2017 | Perkel JM | Scientific report | Mobile phone use as laboratory-based science | P ☑ |
| 9 | Immunoassays and Biosensors for Monitoring Environmental and Human Exposure to Pyrethroid Insecticides [ | 2011 | Ahn KC | Narrative review | Immunochemical approaches for the detection of pyrethroid insecticides | P ☐ |
| 10 | Paper Electrodes for Bioelectrochemistry: Biosensors and Biofuel Cells [ | 2015 | Desmet C | Narrative review | Electrochemical paper- based biosensors | P ☐ |
| 11 | Inkjet Printing for Biosensor Fabrication: Combining Chemistry and Technology for Advanced Manufacturing [ | 2012 | Li J | Narrative review | Inkjet biosensor fabrication | P ☐ |
| 12 | Plug-and-Play Metabolic Transducers Expand the Chemical Detection Space of Cell-Free Biosensors [ | 2019 | Voyvodic PL | Narrative review | Cell-free transcription/translation (TXTL) systems | P ☐ |
| 13 | Detection of Stress Using Biosensors [ | 2018 | Singh SA | Clinical trial | A sensor based biological method of stress measurement | P ☑ |
| 14 | Point of Care Testing: The Impact of Nanotechnology [ | 2016 | Syedmoradi L | Narrative review | Point-of-care (POC) diagnostic devices | P ☐ |
| 15 | Printed Organo-Functionalized Graphene for Biosensing Applications [ | 2016 | Wisitsoraat A | Narrative review | Organo-functionalized graphene and printed biosensor | P ☐ |
| 16 | Advances in Point-of-Care Technologies for Molecular Diagnostics [ | 2017 | Zarei M | Narrative review | Miniaturization, nanotechnology, and microfluidics, along with developments in cloud-connected point-of-care (POC) diagnostics technologies | P ☐ |
| 17 | Advances in Molecularly Imprinting Technology for Bioanalytical Applications [ | 2019 | Li R | Narrative review | Molecularly Imprinted Polymers (MIPs) bioprobes and biosensors | P ☐ |
| 18 | Fusion of Heart Rate, Respiration and Motion | 2018 | Lu K | Experimental clinical trial | A new method that integrates heart rate, respiration, and motion information obtained from a wearable sensor system to estimate energy expenditure | P ☑ |
| 19 | Design and Fabrication of a BiCMOS Dielectric | 2018 | Zarrin PS | Clinical trial | Complementary metal-oxide semiconductor (CMOS) based dielectric sensor for the real-time monitoring of sputum viscosity as early diagnosis of COPD | P ☐ |
| 20 | Validation of the AppleWatch for Heart Rate Variability Measurements during Relax and Mental Stress in Healthy Subjects [ | 2018 | Hernando D | Clinical trial | Validation of the AppleWatch in terms of patient monitorization | P ☐ |
| 21 | Thermal Energy Harvesting on the Bodily Surfaces of Arms and Legs through a Wearable Thermo-Electric Generator [ | 2018 | Proto A | Experimental clinical trial | Measurements on thermal energy harvesting through a wearable thermo-electric generator (TEG) | P ☑ |
| 22 | Coverage of Emotion Recognition for Common Wearable Biosensors [ | 2018 | Hui T | Experimental clinical trial | Emotion recognition using common off-the-shelf wearable biosensors | P ☐ |
| 23 | Mining the Potential of Label-Free Biosensors for In Vitro Antipsychotic Drug Screening [ | 2018 | Kilik K | Experimental clinical trial | Electrochemical biosensors for the screening of antipsychotic drugs (APDs) | P ☐ |
| 24 | Re-usable Electrochemical Glucose Sensors Integrated into a Smartphone Platform [ | 2018 | Bandodkar AJ | Experimental clinical trial | New smartphone-based reusable glucose meter | P ☐ |
| 25 | Emerging Strategies and Applications of Layer-by-Layer Self-Assembly [ | 2014 | Rawtani D | Narrative review | Layer-by-layer self-assembly | P ☐ |
| 26 | Feasibility of a Secure Wireless Sensing Smartwatch Application for the Self-Management of Pediatric Asthma [ | 2017 | Hosseini A | Experimental clinical trial | Real-time asthma attack through physiological and environmental sensors | P ☐ |
| 27 | Antibody-Conjugated Gold Nanoparticle-Based Immunosensor for Ultra-Sensitive Detection of Troponin-T [ | 2014 | Jacobs M | In vitro study | In-vitro study | P ☐ |
| 28 | Evaluating the Effectiveness of Organizational-Level Strategies with or without an Activity Tracker to Reduce Office Workers‘ Sitting Time: A Cluster-Randomized Tria [ | 2016 | Brakenridge CL | Cluster-randomized trial | Activity tracker to reduce sitting amongst office workers | P ☑ |
| 29 | Health at Hand: A Systematic Review of Smart Watch Uses for Health and Wellness [ | 2016 | Reeder B | Systematic review | Smart watches | P ☐ |
| 30 | Estimation of Thermal Sensation Based on Wrist Skin Temperatures [ | 2016 | Sim SY | Experimental clinical trial | Thermal sensation estimation technology based on wrist skin temperatures | P ☐ |
| 31 | Photonics-on-a-Chip: Recent Advances in Integrated Waveguides as Enabling Detection Elements for Real-World, Lab-on-a-Chip Biosensing Applications [ | 2011 | Washburn AL | Narrative review | Grating-coupled, interferometric, photonic crystal, and micro resonator waveguide sensors. | P ☐ |
| 32 | Advances and Future Perspectives in 4D Bioprinting [ | 2018 | Ashammaki N | Narrative review | 4D bioprinting | P ☐ |