Abstract

Cells exposed to stimuli exhibit a wide range of responses ensuring phenotypic variability across the population. Such single cell behavior is often examined by flow cytometry; however, gating procedures typically employed to select a small subpopulation of cells with similar morphological characteristics make it difficult, even impossible, to quantitatively compare cells across a large variety of experimental conditions because these conditions can lead to profound morphological variations. To overcome these limitations, we developed a regression approach to correct for variability in fluorescence intensity due to differences in cell size and granularity without discarding any of the cells, which gating ipso facto does. This approach enables quantitative studies of cellular heterogeneity and transcriptional noise in high-throughput experiments involving thousands of samples. We used this approach to analyze a library of yeast knockout strains and reveal genes required for the population to establish a bimodal response to oleic acid induction. We identify a group of epigenetic regulators and nucleoporins that, by maintaining an ‘unresponsive population,’ may provide the population with the advantage of diversified bet hedging.

Details

Title
A regression model approach to enable cell morphology correction in high-throughput flow cytometry
Author
Knijnenburg, Theo A 1 ; Roda, Oriol 1 ; Wan, Yakun 1 ; Nolan, Garry P 2 ; Aitchison, John D 1 ; Shmulevich, Ilya 1 

 Institute for Systems Biology, Seattle, WA, USA 
 Department of Microbiology and Immunology, Stanford University, Stanford, CA, USA 
Section
Article
Publication year
2011
Publication date
2011
Publisher
EMBO Press
e-ISSN
17444292
Source type
Scholarly Journal
Language of publication
English
ProQuest document ID
2058915223
Copyright
© 2011. This work is published under http://creativecommons.org/licenses/by-nc-sa/3.0/ (the “License”). Notwithstanding the ProQuest Terms and Conditions, you may use this content in accordance with the terms of the License.