TY - JOUR
T1 - Tuning Hydrophobicity of Paper Substrates for Effective Colorimetric detection of Glucose and Nucleic acids
AU - Sudarsan, Sujesh
AU - Shetty, Prashil
AU - Chinnappan, Raja
AU - Mani, Naresh Kumar
N1 - Funding Information:
We extend our special thanks to the Department of Biotechnology, Manipal Institute of Technology. N. K. M. acknowledges Dr. Praveen Kumar and Dr. Vijendra Prabhu for their fruitful discussions. N.K.M also thanks Dr. Revathi P. Shenoy, Department of Biochemistry, Kasturba Medical College, Manipal for providing serum samples.
Funding Information:
Open access funding was provided by Manipal Academy of Higher Education, Manipal. N. K. M. received financial support from the Vision Group on Science and Technology, Government of Karnataka, under RGS/F Scheme [Sanction Letter No.: KSTePS/VGSTRGS/F/GRD No. 711/2017–18]. N. K. M. also received financial support from the Science and Engineering Research Board (SERB), Department of Science and Technology, Govt of India, under the Core Research Grant (CRG) Scheme (File Number: CRG/2020/003060). S.S acknowledges Indian Council of Medical Research (ICMR) for providing Senior Research Fellowship (File Number: 5/3/8/67/ITR-F/2022-ITR).
Publisher Copyright:
© 2023, The Author(s).
PY - 2023/11
Y1 - 2023/11
N2 - This study investigated the colorimetric response of standard glucose, serum glucose, and nucleic acid assays on various paper surfaces with different wettability, including hydrophilic, hydrophobic, and nearly superhydrophobic surfaces. Water contact angles (WCA) formed by water droplets on each surface were measured using ImageJ software. The hydrophilic surface showed no contact angle, while the hydrophobic and nearly superhydrophobic surfaces exhibited contact angles of 115.667° and 133.933°, respectively. The colorimetric sensitivity of the standard glucose assay was analyzed on these surfaces, revealing enhanced sensitivity on the nearly superhydrophobic surface due to the high molecular crowding effect owing to its non-wetting behavior and eventually confined reaction product at the sample loading zone. The hydrophobic nature of the surface restricts the spreading and diffusion of the reaction product, leading to a controlled and localized concentration of the assay product leading to moderate colorimetric intensity. On the other hand, the hydrophilic surface showed the least enhancement in colorimetric sensitivity; this is attributed to the high wettability of the hydrophilic surface causing the reaction product to spread extensively, resulting in a larger area of dispersion and consequently a lower colorimetric intensity. The measured limit of detection (LOD) for nucleic acid on nearly superhydrophobic surfaces was found to be 16.15 ng/µL, which was almost four-fold lower than on hydrophilic surfaces (60.08 ng/µL). Additionally, the LODs of standard glucose and clinical serum samples were two-fold lower on nearly superhydrophobic surfaces compared to hydrophilic surfaces. Our findings clearly highlight the promising potential of utilizing superhydrophobic surfaces to significantly enhance colorimetric sensitivity in paper-based diagnostic applications. This innovative approach holds promise for advancing point-of-care diagnostics and improving disease detection in resource-limited settings.
AB - This study investigated the colorimetric response of standard glucose, serum glucose, and nucleic acid assays on various paper surfaces with different wettability, including hydrophilic, hydrophobic, and nearly superhydrophobic surfaces. Water contact angles (WCA) formed by water droplets on each surface were measured using ImageJ software. The hydrophilic surface showed no contact angle, while the hydrophobic and nearly superhydrophobic surfaces exhibited contact angles of 115.667° and 133.933°, respectively. The colorimetric sensitivity of the standard glucose assay was analyzed on these surfaces, revealing enhanced sensitivity on the nearly superhydrophobic surface due to the high molecular crowding effect owing to its non-wetting behavior and eventually confined reaction product at the sample loading zone. The hydrophobic nature of the surface restricts the spreading and diffusion of the reaction product, leading to a controlled and localized concentration of the assay product leading to moderate colorimetric intensity. On the other hand, the hydrophilic surface showed the least enhancement in colorimetric sensitivity; this is attributed to the high wettability of the hydrophilic surface causing the reaction product to spread extensively, resulting in a larger area of dispersion and consequently a lower colorimetric intensity. The measured limit of detection (LOD) for nucleic acid on nearly superhydrophobic surfaces was found to be 16.15 ng/µL, which was almost four-fold lower than on hydrophilic surfaces (60.08 ng/µL). Additionally, the LODs of standard glucose and clinical serum samples were two-fold lower on nearly superhydrophobic surfaces compared to hydrophilic surfaces. Our findings clearly highlight the promising potential of utilizing superhydrophobic surfaces to significantly enhance colorimetric sensitivity in paper-based diagnostic applications. This innovative approach holds promise for advancing point-of-care diagnostics and improving disease detection in resource-limited settings.
UR - https://www.scopus.com/pages/publications/85169838788
UR - https://www.scopus.com/pages/publications/85169838788#tab=citedBy
U2 - 10.1007/s00216-023-04921-2
DO - 10.1007/s00216-023-04921-2
M3 - Article
C2 - 37665340
AN - SCOPUS:85169838788
SN - 1618-2642
VL - 415
SP - 6449
EP - 6460
JO - Analytical and Bioanalytical Chemistry
JF - Analytical and Bioanalytical Chemistry
IS - 26
ER -