Single-Cell Chemical Lysis on Microfluidic Chips with Arrays of Microwells

Many conventional biochemical assays are performed using populations of cells to determine their quantitative biomolecular profiles. However, population averages do not reflect actual physiological processes in individual cells, which occur either on short time scales or nonsynchronously. Therefore,...

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Main Authors: Nikolay A. Maslov, Chun-Ping Jen, Ju-Hsiu Hsiao
Format: Article
Language:English
Published: MDPI AG 2011-12-01
Series:Sensors
Subjects:
Online Access:http://www.mdpi.com/1424-8220/12/1/347/
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spelling doaj-f7609d49dcac4045bac9c3959ff9f5aa2020-11-25T00:55:22ZengMDPI AGSensors1424-82202011-12-0112134735810.3390/s120100347Single-Cell Chemical Lysis on Microfluidic Chips with Arrays of MicrowellsNikolay A. MaslovChun-Ping JenJu-Hsiu HsiaoMany conventional biochemical assays are performed using populations of cells to determine their quantitative biomolecular profiles. However, population averages do not reflect actual physiological processes in individual cells, which occur either on short time scales or nonsynchronously. Therefore, accurate analysis at the single-cell level has become a highly attractive tool for investigating cellular content. Microfluidic chips with arrays of microwells were developed for single-cell chemical lysis in the present study. The cellular occupancy in 30-mm-diameter microwells (91.45%) was higher than that in 20-mm-diameter microwells (83.19%) at an injection flow rate of 2.8 mL/min. However, most of the occupied 20-mm-diameter microwells contained individual cells. The results of chemical lysis experiments at the single-cell level indicate that cell membranes were gradually lysed as the lysis buffer was injected; they were fully lysed after 12 s. Single-cell chemical lysis was demonstrated in the proposed microfluidic chip, which is suitable for high-throughput cell lysis.http://www.mdpi.com/1424-8220/12/1/347/microwellsingle-cellcell lysismicrofluidics
collection DOAJ
language English
format Article
sources DOAJ
author Nikolay A. Maslov
Chun-Ping Jen
Ju-Hsiu Hsiao
spellingShingle Nikolay A. Maslov
Chun-Ping Jen
Ju-Hsiu Hsiao
Single-Cell Chemical Lysis on Microfluidic Chips with Arrays of Microwells
Sensors
microwell
single-cell
cell lysis
microfluidics
author_facet Nikolay A. Maslov
Chun-Ping Jen
Ju-Hsiu Hsiao
author_sort Nikolay A. Maslov
title Single-Cell Chemical Lysis on Microfluidic Chips with Arrays of Microwells
title_short Single-Cell Chemical Lysis on Microfluidic Chips with Arrays of Microwells
title_full Single-Cell Chemical Lysis on Microfluidic Chips with Arrays of Microwells
title_fullStr Single-Cell Chemical Lysis on Microfluidic Chips with Arrays of Microwells
title_full_unstemmed Single-Cell Chemical Lysis on Microfluidic Chips with Arrays of Microwells
title_sort single-cell chemical lysis on microfluidic chips with arrays of microwells
publisher MDPI AG
series Sensors
issn 1424-8220
publishDate 2011-12-01
description Many conventional biochemical assays are performed using populations of cells to determine their quantitative biomolecular profiles. However, population averages do not reflect actual physiological processes in individual cells, which occur either on short time scales or nonsynchronously. Therefore, accurate analysis at the single-cell level has become a highly attractive tool for investigating cellular content. Microfluidic chips with arrays of microwells were developed for single-cell chemical lysis in the present study. The cellular occupancy in 30-mm-diameter microwells (91.45%) was higher than that in 20-mm-diameter microwells (83.19%) at an injection flow rate of 2.8 mL/min. However, most of the occupied 20-mm-diameter microwells contained individual cells. The results of chemical lysis experiments at the single-cell level indicate that cell membranes were gradually lysed as the lysis buffer was injected; they were fully lysed after 12 s. Single-cell chemical lysis was demonstrated in the proposed microfluidic chip, which is suitable for high-throughput cell lysis.
topic microwell
single-cell
cell lysis
microfluidics
url http://www.mdpi.com/1424-8220/12/1/347/
work_keys_str_mv AT nikolayamaslov singlecellchemicallysisonmicrofluidicchipswitharraysofmicrowells
AT chunpingjen singlecellchemicallysisonmicrofluidicchipswitharraysofmicrowells
AT juhsiuhsiao singlecellchemicallysisonmicrofluidicchipswitharraysofmicrowells
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