4.6 Article

Label-Free Optical Detection of Multiple Biomarkers in Sweat, Plasma, Urine, and Saliva

期刊

ACS SENSORS
卷 4, 期 5, 页码 1346-1357

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acssensors.9b00301

关键词

biomarkers; UV spectroscopy; optical sensor; point-of-care; stress detection; biofluids; optoelectronics

资金

  1. National Science Foundation
  2. Center for Advanced Design and Manufacturing of Integrated Microfluidics [NSF I/UCRC IIP-1738617]
  3. UES Inc. [S-104-000-001]
  4. AFRL [FA8650-15-C-6631]

向作者/读者索取更多资源

We report a novel label-free quantitative detection of human performance stress biomarkers in different body fluids based on optical absorbance of the biomarkers in the ultraviolet (UV) region. Stress biomarker (hormones and neurotransmitters) concentrations in bodily fluids (blood, sweat, urine, saliva) predict the physical and mental state of the individual. The stress biomarkers primarily focused on in this manuscript are cortisol, serotonin, dopamine, norepinephrine, and neuropeptide Y. UV spectroscopy of stress biomarkers performed in the 190-400 nm range has revealed primary and secondary absorption peaks at near-UV wavelengths depending on their molecular structure. UV characterization of individual and multiple biomarkers is reported in various biofluids. A microfluidic/optoelectronic platform for biomarker detection is reported, with a prime focus toward cortisol evaluation. The current limit of detection of cortisol in sweat is similar to 200 ng/mL (similar to 0.5 mu M), which is in the normal (healthy) range. Plasma samples containing both serotonin and cortisol resulted in readily detectable absorption peaks at 203 (serotonin) and 247 (cortisol) nm, confirming feasibility of simultaneous detection of multiple biomarkers in biofluid samples. UV spectroscopy performed on various stress biomarkers shows a similar increasing absorption trend with concentration. The detection mechanism is label free, applicable to a variety of biomarker types, and able to detect multiple biomarkers simultaneously in various biofluids. A microfluidic flow cell has been fabricated on a polymer substrate to enable point-of-use/care UV measurement of target biomarkers. The overall sensor combines sample dispensing and fluid transport to the detection location with optical absorption measurements with a UV light emitting diode (LED) and photodiode. The biomarker concentration is indicated as a function of photocurrent generated at the target wavelength.

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