Physical models of bacterial chromosomes

Author:

Harju Janni1ORCID,Broedersz Chase P.12

Affiliation:

1. Department of Physics and Astronomy Vrije Universiteit Amsterdam Amsterdam The Netherlands

2. Department of Physics, Arnold Sommerfeld Center for Theoretical Physics and Center for NanoScience Ludwig‐Maximilian‐University Munich Munich Germany

Abstract

AbstractThe interplay between bacterial chromosome organization and functions such as transcription and replication can be studied in increasing detail using novel experimental techniques. Interpreting the resulting quantitative data, however, can be theoretically challenging. In this minireview, we discuss how connecting experimental observations to biophysical theory and modeling can give rise to new insights on bacterial chromosome organization. We consider three flavors of models of increasing complexity: simple polymer models that explore how physical constraints, such as confinement or plectoneme branching, can affect bacterial chromosome organization; bottom‐up mechanistic models that connect these constraints to their underlying causes, for instance, chromosome compaction to macromolecular crowding, or supercoiling to transcription; and finally, data‐driven methods for inferring interpretable and quantitative models directly from complex experimental data. Using recent examples, we discuss how biophysical models can both deepen our understanding of how bacterial chromosomes are structured and give rise to novel predictions about bacterial chromosome organization.

Publisher

Wiley

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