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IROS 2023

Parallel Cell Array Patterning and Target Cell Lysis on an Optoelectronic Micro-Well Device

Conference Paper Accepted Paper Artificial Intelligence ยท Robotics

Abstract

This work presents a novel electrical method, implemented in the form of a microfluidic device, for cell arraying and target cell lysis. The microfluidic device contains a micro-well array on the photoconductive layer based on the optoelectronic tweezers (OET) method, where parallel cell manipulation is performed. As cell suspension flows over the micro-wells, cells can be actively captured in the micro-wells by light-induced dielectrophoresis (DEP) forces, form the designed pattern array in less than 120 s. The single-cell capture rate is over 83 % in the patterned cell array, and about 94% of micro-wells are occupied by cells. Then, the target cell in the specific micro-well is illuminated and lysed by electroporation in 5 seconds. The micro-well barriers and DEP forces block the influence of the flow, and a relatively closed space is critical to preserve the cell lysates. Through experiments, light-induced DEP force cell capture and target cell electroporation can be modulated by changing the light patterns and the applied signal. This device, based on the OET and dynamic electroporation, allows the rapidity in the cell capture and target lysis at the single-cell level and can enable single-cell-based studies, such as molecular diagnostics and disease detection.

Authors

Keywords

  • Performance evaluation
  • Fluidic microsystems
  • Force
  • Dynamics
  • Switches
  • Electroporation
  • Genetics
  • Cell Lysates
  • Target Cells
  • Target Cell Lysis
  • Microfluidic
  • Disease Detection
  • Microfluidic Device
  • Compact Manifold
  • Light Patterns
  • Microwell Array
  • Cell Isolation
  • HepG2 Cells
  • Electric Field Strength
  • Indium Tin Oxide
  • Field Gradient
  • Long-pass Filter
  • Transmembrane Potential
  • Top Electrode
  • Partial Factor
  • Electric Permittivity
  • Permittivity Of Medium
  • Irreversible Electroporation
  • Top Glass
  • Non-uniform Electric Field
  • Fluidic Device

Context

Venue
IEEE/RSJ International Conference on Intelligent Robots and Systems
Archive span
1988-2025
Indexed papers
26578
Paper id
773575404132363331
v2026.09.13