Pericentric chromatin loops function as a nonlinear spring in mitotic force balance

Author:

Stephens Andrew D.1,Haggerty Rachel A.1,Vasquez Paula A.1,Vicci Leandra1,Snider Chloe E.1,Shi Fu1,Quammen Cory1,Mullins Christopher1,Haase Julian1,Taylor Russell M.1,Verdaasdonk Jolien S.1,Falvo Michael R.1,Jin Yuan1,Forest M. Gregory1,Bloom Kerry1

Affiliation:

1. Department of Biology, Department of Computer Science, Department of Physics and Astronomy, and Department of Mathematics and Biomedical Engineering, The University of North Carolina at Chapel Hill, Chapel Hill, NC 27599

Abstract

The mechanisms by which sister chromatids maintain biorientation on the metaphase spindle are critical to the fidelity of chromosome segregation. Active force interplay exists between predominantly extensional microtubule-based spindle forces and restoring forces from chromatin. These forces regulate tension at the kinetochore that silences the spindle assembly checkpoint to ensure faithful chromosome segregation. Depletion of pericentric cohesin or condensin has been shown to increase the mean and variance of spindle length, which have been attributed to a softening of the linear chromatin spring. Models of the spindle apparatus with linear chromatin springs that match spindle dynamics fail to predict the behavior of pericentromeric chromatin in wild-type and mutant spindles. We demonstrate that a nonlinear spring with a threshold extension to switch between spring states predicts asymmetric chromatin stretching observed in vivo. The addition of cross-links between adjacent springs recapitulates coordination between pericentromeres of neighboring chromosomes.

Publisher

Rockefeller University Press

Subject

Cell Biology

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