Nanoliter centrifugal liquid dispenser coupled with superhydrophobic microwell array chips for high-throughput cell assays

  • Yuyi Wang
  • , Yushuai Wu
  • , Yue Chen
  • , Jianxiong Zhang
  • , Xiaofang Chen
  • , Peng Liu*
  • *Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

Abstract

Microfluidic systems have been regarded as a potential platform for high-throughput screening technology in drug discovery due to their low sample consumption, high integration, and easy operation. The handling of small-volume liquid is an essential operation in microfluidic systems, especially in investigating large-scale combination conditions. Here, we develop a nanoliter centrifugal liquid dispenser (NanoCLD) coupled with superhydrophobic microwell array chips for high-throughput cell-based assays in the nanoliter scale. The NanoCLD consists of a plastic stock block with an array of drilled through holes, a reagent microwell array chip (reagent chip), and an alignment bottom assembled together in a fixture. A simple centrifugation at 800 rpm can dispense ~160 nL reagents into microwells in 5 min. The dispensed reagents are then delivered to cells by sandwiching the reagent chip upside down with another microwell array chip (cell chip) on which cells are cultured. A gradient of doxorubicin is then dispensed to the cell chip using the NanoCLD for validating the feasibility of performing drug tests on our microchip platform. This novel nanoliter-volume liquid dispensing method is simple, easy to operate, and especially suitable for repeatedly dispensing many different reagents simultaneously to microwells.

Original languageEnglish
Article number286
JournalMicromachines
Volume9
Issue number6
DOIs
StatePublished - 6 Jun 2018

Keywords

  • Drug screening
  • High-throughput screening
  • Microfluidics
  • Microwell array
  • Nanoliter liquid dispensing
  • Superhydrophobicity

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