Three-dimensional ready-to-pick reservoir-based preconcentrator with a pillar-structured channel for miRNA applications

A sample preconcentration technique that exceeds a microfluidic device’s limited processing volume (up to microliters) is critical for real sample pretreatment applications. Here, we have developed a 3D-printed preconcentrator with a pillar structure (3DP2) to enrich the biological samples up to hun...

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Bibliographic Details
Main Authors: Seungmin Lee, Jinhwan Kim, Na Eun Lee, Kang Hyeon Kim, Seong Jun Park, Jeong Soo Park, Cheonjung Kim, Ji Hye Hong, Dae Sung Yoon, Yong Kyoung Yoo, Jeong Hoon Lee
Format: Article
Language:English
Published: Frontiers Media S.A. 2022-11-01
Series:Frontiers in Sensors
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Online Access:https://www.frontiersin.org/articles/10.3389/fsens.2022.1066974/full
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Summary:A sample preconcentration technique that exceeds a microfluidic device’s limited processing volume (up to microliters) is critical for real sample pretreatment applications. Here, we have developed a 3D-printed preconcentrator with a pillar structure (3DP2) to enrich the biological samples up to hundreds of microliter scales (700 μL) within 20 min by utilizing ion concentration polarization (ICP). We designed three-dimensional ready-to-pick reservoirs serially connected with a pillar-structured channel to enable large-volume preconcentration by balancing the preconcentrating forces (depletion, electrophoretic, and electroosmotic force) generated by ICP. Using the I-t and I-V curves, we confirmed that ICP performance was enhanced due to a pillar structure’s suppression of the vortex. Finally, we preconcentrated bovine serum albumin (BSA) and micro ribonucleic acid-21 (miRNA-21) two-fold. Moreover, depending on their size and charge, these were concentrated at different locations and could be extracted easily using pipettes. We believe that this study provides a novel strategy for downstream applications.
ISSN:2673-5067