A Microfluidic Volume Sensor for Single-Cell Growth Measurements
The multidisciplinary field of microfluidics has shown great promise for research at the interface of biology, chemistry, engineering, and physics. Laminar flow, versatile fabrication, and small length scales have made microfluidics especially well-suited for single-cell characterization. In particu...
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Université d'Ottawa / University of Ottawa
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ndltd-uottawa.ca-oai-ruor.uottawa.ca-10393-347702018-01-05T19:02:41Z A Microfluidic Volume Sensor for Single-Cell Growth Measurements Jing, Wenyang Godin, Michel Microfluidics Cell Growth Impedance Cytometry Cell Volume Sensor Microfabrication Bet-Hedging The multidisciplinary field of microfluidics has shown great promise for research at the interface of biology, chemistry, engineering, and physics. Laminar flow, versatile fabrication, and small length scales have made microfluidics especially well-suited for single-cell characterization. In particular, the evaluation of single-cell growth rates is of fundamental interest for studying the cell cycle and the effects of environmental factors, such as drugs, on cellular growth. This work presents aspects in the development of a microfluidic cell impedance sensor for measuring the volumetric growth rate of single cells and covers its application in the investigation of a new discovery relating to multidrug resistance in S. cerevisiae. While there are many avenues for the utilization and interpretation of growth rates, this application focused on the quantitative assessment of biological fitness—an important parameter in population genetics and mathematical biology. Through a combination of growth measurements and optics, this work concludes a novel case of bet-hedging in yeast, as well as the first ever case of bet-hedging in eukaryotic multidrug resistance. 2016-05-24T18:52:25Z 2016-05-24T18:52:25Z 2016 Thesis http://hdl.handle.net/10393/34770 http://dx.doi.org/10.20381/ruor-6022 en Université d'Ottawa / University of Ottawa |
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en |
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topic |
Microfluidics Cell Growth Impedance Cytometry Cell Volume Sensor Microfabrication Bet-Hedging |
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Microfluidics Cell Growth Impedance Cytometry Cell Volume Sensor Microfabrication Bet-Hedging Jing, Wenyang A Microfluidic Volume Sensor for Single-Cell Growth Measurements |
description |
The multidisciplinary field of microfluidics has shown great promise for research at the interface of biology, chemistry, engineering, and physics. Laminar flow, versatile fabrication, and small length scales have made microfluidics especially well-suited for single-cell characterization. In particular, the evaluation of single-cell growth rates is of fundamental interest for studying the cell cycle and the effects of environmental factors, such as drugs, on cellular growth. This work presents aspects in the development of a microfluidic cell impedance sensor for measuring the volumetric growth rate of single cells and covers its application in the investigation of a new discovery relating to multidrug resistance in S. cerevisiae. While there are many avenues for the utilization and interpretation of growth rates, this application focused on the quantitative assessment of biological fitness—an important parameter in population genetics and mathematical biology. Through a combination of growth measurements and optics, this work concludes a novel case of bet-hedging in yeast, as well as the first ever case of bet-hedging in eukaryotic multidrug resistance. |
author2 |
Godin, Michel |
author_facet |
Godin, Michel Jing, Wenyang |
author |
Jing, Wenyang |
author_sort |
Jing, Wenyang |
title |
A Microfluidic Volume Sensor for Single-Cell Growth Measurements |
title_short |
A Microfluidic Volume Sensor for Single-Cell Growth Measurements |
title_full |
A Microfluidic Volume Sensor for Single-Cell Growth Measurements |
title_fullStr |
A Microfluidic Volume Sensor for Single-Cell Growth Measurements |
title_full_unstemmed |
A Microfluidic Volume Sensor for Single-Cell Growth Measurements |
title_sort |
microfluidic volume sensor for single-cell growth measurements |
publisher |
Université d'Ottawa / University of Ottawa |
publishDate |
2016 |
url |
http://hdl.handle.net/10393/34770 http://dx.doi.org/10.20381/ruor-6022 |
work_keys_str_mv |
AT jingwenyang amicrofluidicvolumesensorforsinglecellgrowthmeasurements AT jingwenyang microfluidicvolumesensorforsinglecellgrowthmeasurements |
_version_ |
1718598582840328192 |