• DocumentCode
    3193542
  • Title

    Measurement and analysis of Vibrio Fischeri cell-based microfluidic device for personal health monitoring

  • Author

    Xinyan Zhao ; Tao Dong

  • Author_Institution
    Dept. of Micro & Nano Syst. Technol. (IMST, Vestfold Univ. Coll., Tonsberg, Norway
  • fYear
    2013
  • fDate
    3-7 July 2013
  • Firstpage
    2433
  • Lastpage
    2436
  • Abstract
    The cell-based microfluidic chip was designed and fabricated as a low-cost detector to continuously monitor toxicants in drinking water or human urine samples, which is expected to be an important component of a household health monitoring system in the future. The bioluminescent bacterium, Vibrio Fischeri, was selected to validate the function of device. Water samples and Vibrio fischeri cells were mixed and encapsulated into droplets in air flow, which can guarantee sufficient oxygen supply for cells in droplets. Preliminary tests were performed using copper ion (Cu2+) as the model toxicant. The droplet system was measured and analyzed at various flow rates in different observation chambers. Both deionized water and human urine samples were tested in the cell-based device. Interestingly, a strong relation between the R.L.U. (Relative Luminescence Units) in the observation chamber and the minute concentration of toxicant (Cu2+) was found using deionized water as solvent, whereas the relation was insignificant using human urine as solvent. This study showed the Vibrio fischeri cell-based device might be reliably employed as an early-warning system for the safety of drinking water. However, Vibrio fischeri is not competent to detect dangerous mThe cell-based microfluidic chip was designed and fabricated as a low-cost detector to continuously monitor toxicants in drinking water or human urine samples, which is expected to be an important component of a household health monitoring system in the future. The bioluminescent bacterium, Vibrio Fischeri, was selected to validate the function of device. Water samples and Vibrio fischeri cells were mixed and encapsulated into droplets in air flow, which can guarantee sufficient oxygen supply for cells in droplets. Preliminary tests were performed using copper ion (Cu2+) as the model toxicant. The droplet system was measured and analyzed at various flow rates in different observation chambers. - oth deionized water and human urine samples were tested in the cell-based device. Interestingly, a strong relation between the R.L.U. (Relative Luminescence Units) in the observation chamber and the minute concentration of toxicant (Cu2+) was found using deionized water as solvent, whereas the relation was insignificant using human urine as solvent. This study showed the Vibrio fischeri cell-based device might be reliably employed as an early-warning system for the safety of drinking water. However, Vibrio fischeri is not competent to detect dangerous materials in a complex biofluid. With the replacement of cell sensors, the microfluidic device might be functional to analyze urine samples in theory.aterials in a complex biofluid. With the replacement of cell sensors, the microfluidic device might be functional to analyze urine samples in theory.
  • Keywords
    bioMEMS; biochemistry; biological fluid dynamics; bioluminescence; biosensors; cellular biophysics; copper; drops; electrochemical sensors; encapsulation; health care; lab-on-a-chip; microfabrication; microfluidics; microorganisms; microsensors; molecular biophysics; patient monitoring; positive ions; toxicology; water; Cu2+; H2O; Vibrio Fischeri cell-based microfluidic chip; air flow; bioluminescent bacterium; cell sensor; complex biofluid; deionized water sample; droplet system; encapsulation; household health monitoring system; human urine sample; oxygen supply; personal health monitoring; relative luminescence unit; solvent; toxicant concentration monitoring; Biomedical monitoring; Biosensors; Chemical sensors; Chemicals; Microfluidics; Monitoring;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Engineering in Medicine and Biology Society (EMBC), 2013 35th Annual International Conference of the IEEE
  • Conference_Location
    Osaka
  • ISSN
    1557-170X
  • Type

    conf

  • DOI
    10.1109/EMBC.2013.6610031
  • Filename
    6610031