A mechanistic stochastic framework for regulating bacterial cell division

Author(s)Ghusinga,Khem Raj
Author(s)Vargas-Garcia,Cesar A.
Author(s)Singh,Abhyudai
Ordered AuthorKhem Raj Ghusinga, Cesar A. Vargas-Garcia,Abhyudai Singh
UD AuthorSingh, Abhyudai
Date Accessioned2017-07-13T20:01:49Z
Date Available2017-07-13T20:01:49Z
Copyright DateThe Author(s) 2016
Publication Date2016-07-26
DescriptionPublisher's PDF
AbstractHow exponentially growing cells maintain size homeostasis is an important fundamental problem. Recent single-cell studies in prokaryotes have uncovered the adder principle, where cells add a fixed size (volume) from birth to division, irrespective of their size at birth. To mechanistically explain the adder principle, we consider a timekeeper protein that begins to get stochastically expressed after cell birth at a rate proportional to the volume. Cell-division time is formulated as the first-passage time for protein copy numbers to hit a fixed threshold. Consistent with data, the model predicts that the noise in division timing increases with size at birth. Intriguingly, our results show that the distribution of the volume added between successive cell-division events is independent of the newborn cell size. This was dramatically seen in experimental studies, where histograms of the added volume corresponding to different newborn sizes collapsed on top of each other. The model provides further insights consistent with experimental observations: the distribution of the added volume when scaled by its mean becomes invariant of the growth rate. In summary, our simple yet elegant model explains key experimental findings and suggests a mechanism for regulating both the mean and fluctuations in cell-division timing for controlling size.
DepartmentUniversity of Delaware, Department of Electrical & Computer Engineering University of Delaware, Department of Biomedical Engineering University of Delaware, Department of Mathematical Sciences University of Delaware, Department of Electrical & Computer Engineering University of Delaware, Department of Biomedical Engineering
CitationGhusinga, K. R., Vargas-Garcia, C. A., & Singh, A. (2016). A mechanistic stochastic framework for regulating bacterial cell division. Scientific Reports, 6, 30229. doi:10.1038/srep30229
DOI10.1038/srep30229
ISSN2045-2322
URLhttp://udspace.udel.edu/handle/19716/21528
LanguageEnglish
PublisherNature Publishing Group
dc.rightsCC BY 4.0
dc.sourceScientific Reports
dc.source.urihttps://www.nature.com/articles/srep30229
TitleA mechanistic stochastic framework for regulating bacterial cell division
TypeArticle
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