TY - JOUR
T1 - Closed Bipolar Electrode-Enabled Electrochromic Sensing of Multiple Metabolites in Whole Blood
AU - Oh, Christiana
AU - Park, Bumjun
AU - Sundaresan, Vignesh
AU - Schaefer, Jennifer L.
AU - Bohn, Paul W.
N1 - Funding Information:
This work was supported by the National Science Foundation through grant 1904196 and by the Discovery Fund of Notre Dame’s Berthiaume Institute for Precision Health. C.O. was also partially supported by a Berry Family Fellowship and by a Jack and Mary Ann Remick Fellowship. B.P. was supported by the Notre Dame Center for Environmental Science and Technology Fellowship (CEST). The authors are grateful to M. Lee and A. Cutri for assistance with image acquisition.
Publisher Copyright:
© 2023 American Chemical Society. All rights reserved.
PY - 2023/1/27
Y1 - 2023/1/27
N2 - We report a closed bipolar electrode (CBE)-based sensing platform for the detection of diagnostic metabolites in undiluted whole human blood. The sensor is enabled by electrode chemistry based on: (1) a mixed layer of blood-compatible adsorption-resistant phosphorylcholine (PPC) and phenylbutyric acid (PBA), (2) ferrocene (Fc) redox mediators, and (3) immobilized redox-active enzymes. This scheme is designed to overcome nonspecific protein adsorption and amplify sensing currents in whole human fluids. The scheme also incorporates a diffusing mediator to increase electronic communication between the immobilized redox enzyme and the working electrode. The use of both bound and freely diffusing mediators is synergistic in producing the electrochemical response. The sensor is realized by linking the analyte cell, containing the specific electrode surface architecture, through a CBE to a reporter cell containing the electrochromic reporter, methyl viologen (MV). The colorless-to-purple color change accompanying the 1e-reduction of MV2+is captured using a smartphone camera. Subsequent red-green-blue analysis is performed on the acquired images to determine cholesterol, glucose, and lactate concentrations in whole blood. The CBE blood metabolite sensor produces a linear color change at clinically relevant concentration ranges for all metabolites with good reproducibility (∼5% or better) and with limits of detection of 79 μM for cholesterol, 59 μM for glucose, and 86 μM for lactate. Finally, metabolite concentration measurements from the CBE blood metabolite sensor are compared with results from commercially available FDA-approved blood cholesterol, glucose, and lactate meters, with an average difference of ∼3.5% across all three metabolites in the ranges studied.
AB - We report a closed bipolar electrode (CBE)-based sensing platform for the detection of diagnostic metabolites in undiluted whole human blood. The sensor is enabled by electrode chemistry based on: (1) a mixed layer of blood-compatible adsorption-resistant phosphorylcholine (PPC) and phenylbutyric acid (PBA), (2) ferrocene (Fc) redox mediators, and (3) immobilized redox-active enzymes. This scheme is designed to overcome nonspecific protein adsorption and amplify sensing currents in whole human fluids. The scheme also incorporates a diffusing mediator to increase electronic communication between the immobilized redox enzyme and the working electrode. The use of both bound and freely diffusing mediators is synergistic in producing the electrochemical response. The sensor is realized by linking the analyte cell, containing the specific electrode surface architecture, through a CBE to a reporter cell containing the electrochromic reporter, methyl viologen (MV). The colorless-to-purple color change accompanying the 1e-reduction of MV2+is captured using a smartphone camera. Subsequent red-green-blue analysis is performed on the acquired images to determine cholesterol, glucose, and lactate concentrations in whole blood. The CBE blood metabolite sensor produces a linear color change at clinically relevant concentration ranges for all metabolites with good reproducibility (∼5% or better) and with limits of detection of 79 μM for cholesterol, 59 μM for glucose, and 86 μM for lactate. Finally, metabolite concentration measurements from the CBE blood metabolite sensor are compared with results from commercially available FDA-approved blood cholesterol, glucose, and lactate meters, with an average difference of ∼3.5% across all three metabolites in the ranges studied.
KW - biosensor
KW - blood
KW - cholesterol
KW - closed bipolar electrode
KW - colorimetric
KW - glucose
KW - lactate
KW - point-of-care
UR - https://www.scopus.com/pages/publications/85144889396
UR - https://www.mendeley.com/catalogue/3aa3e69f-35f1-38a8-bbde-67a2097a3280/
U2 - 10.1021/acssensors.2c02140
DO - 10.1021/acssensors.2c02140
M3 - Article
C2 - 36547518
AN - SCOPUS:85144889396
SN - 2379-3694
VL - 8
SP - 270
EP - 279
JO - ACS Sensors
JF - ACS Sensors
IS - 1
ER -