A novel two-layer-integrated microfluidic device for high-throughput yeast proteomic dynamics analysis at the single-cell level

Author:

Chen Kaiyue12,Rong Nan2,Wang Shujing12,Luo Chunxiong12

Affiliation:

1. The State Key Laboratory for Artificial Microstructures and Mesoscopic Physics, School of Physics, Peking University, China

2. Center for Quantitative Biology, Academy for Advanced Interdisciplinary Studies, Peking University, China

Abstract

Abstract Current microfluidic methods for studying multicell strains (e.g., m-types) with multienvironments (e.g., n-types) require large numbers of inlets/outlets (m*n), a complicated procedure or expensive machinery. Here, we developed a novel two-layer-integrated method to combine different PDMS microchannel layers with different functions into one chip by a PDMS through-hole array, which improved the design of a PDMS-based microfluidic system. Using this method, we succeeded in converting 2 × m × n inlets/outlets into m + n inlets/outlets and reduced the time cost of loading processing (from m × n to m) of the device for studying multicell strains (e.g., m-types) in varied multitemporal environments (i.e., n-types). Using this device, the dynamic behavior of the cell-stress-response proteins was studied when the glucose concentration decreased from 2% to a series of lower concentrations. Our device could also be widely used in high-throughput studies of various stress responses, and the new concept of a multilayer-integrated fabrication method could greatly improve the design of PDMS-based microfluidic systems.

Funder

National Key Research and Development

National Natural Science Foundation of China

Publisher

Oxford University Press (OUP)

Subject

Biochemistry,Biophysics

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