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Programmable microfluidics for zebrafish larvae manipulation using multiple magnetic microrobots
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Programmable microfluidics for zebrafish larvae manipulation using multiple magnetic microrobots

Dineshkumar Loganathan, Pu-Hsiang Wang, Yueh-Hsun LuChia-Yuan Chen
Sensors and actuators reports, 卷.12, 頁.100484
12/2026
Web of Science ID: WOS:001812816800001

摘要

Magnetics Microfluidics Microrobots Zebrafish
•A programmable microfluidic platform was developed using multiple magnetic microrobots.•Distinct flow patterns were enabled by independent control of the microrobot’s rotation.•Induced hydrodynamic forces enabled the efficient movement of zebrafish larvae in the channel.•Short-pause rotation generated the fastest larval movement in the microchannel.•The proposed system outperformed natural food cues with higher target approach success. Microfluidic platforms capable of generating reconfigurable flow environments play an increasingly essential role in zebrafish-based behavioral studies, in which controlled and non-invasive larval transportation is required to ensure reliable assay outcomes. Various magnetically actuated and flow-based systems have demonstrated dynamic modulation of microfluidic flow fields. The realization of spatially reconfigurable and independently addressable hydrodynamic actuation within a unified platform for transport-oriented applications, however, remains technically challenging. To address these limitations, a programmable microfluidic platform was developed by employing multiple magnetic microrobots whose rotational motion was systematically engineered across distinct patterns, including continuous, short-pause intermittent, and long-pause intermittent actuations to enable larval transport. Among these motions, the short-pause intermittent rotation was observed to achieve the fastest transport time of 20 s, corresponding to a 70% and 25% improvement relative to the control and continuous microrobot rotation, respectively. To further elucidate the hydrodynamic mechanisms underlying this enhanced performance, μPIV analysis was conducted to characterize the flow fields generated by the rotational patterns. In addition, the proposed paradigm was compared with its natural food-cue-based counterpart, and it was observed to exhibit a 26.8% higher target-approach efficiency than the food-cue-driven motion. These findings showed that the platform enabled programmable, flow-based larval manipulation and offered a foundation for future microfluidic control strategies. [Display omitted]

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https://doi.org/10.1016/j.snr.2026.100484檢視
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