Comparison of loop extrusion and diffusion capture as mitotic chromosome formation pathways in fission yeast

Author:

Gerguri Tereza1,Fu Xiao1,Kakui Yasutaka23,Khatri Bhavin S24,Barrington Christopher5,Bates Paul A1ORCID,Uhlmann Frank2ORCID

Affiliation:

1. Biomolecular Modelling Laboratory, The Francis Crick Institute, London NW1 1AT, UK

2. Chromosome Segregation Laboratory, The Francis Crick Institute, London NW1 1AT, UK

3. Waseda Institute for Advanced Study, Waseda University, 1-21-1 Nishiwaseda, Shinjuku-ku, Tokyo 169-0051, Japan

4. Department of Life Sciences, Imperial College London, Silwood Park Campus, Ascot SL5 7PY, UK

5. Bioinformatics and Biostatistics Science Technology Platform, The Francis Crick Institute, London NW1 1AT, UK

Abstract

Abstract Underlying higher order chromatin organization are Structural Maintenance of Chromosomes (SMC) complexes, large protein rings that entrap DNA. The molecular mechanism by which SMC complexes organize chromatin is as yet incompletely understood. Two prominent models posit that SMC complexes actively extrude DNA loops (loop extrusion), or that they sequentially entrap two DNAs that come into proximity by Brownian motion (diffusion capture). To explore the implications of these two mechanisms, we perform biophysical simulations of a 3.76 Mb-long chromatin chain, the size of the long Schizosaccharomyces pombe chromosome I left arm. On it, the SMC complex condensin is modeled to perform loop extrusion or diffusion capture. We then compare computational to experimental observations of mitotic chromosome formation. Both loop extrusion and diffusion capture can result in native-like contact probability distributions. In addition, the diffusion capture model more readily recapitulates mitotic chromosome axis shortening and chromatin compaction. Diffusion capture can also explain why mitotic chromatin shows reduced, as well as more anisotropic, movements, features that lack support from loop extrusion. The condensin distribution within mitotic chromosomes, visualized by stochastic optical reconstruction microscopy (STORM), shows clustering predicted from diffusion capture. Our results inform the evaluation of current models of mitotic chromosome formation.

Funder

European Research Council

The Francis Crick Institute

Cancer Research UK

UK Medical Research Council

Wellcome Trust

Japan Society for the Promotion of Science

Publisher

Oxford University Press (OUP)

Subject

Genetics

Reference65 articles.

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