Interplay of self-organization of microtubule asters and crosslinking protein condensates

Author:

Sahu Sumon12ORCID,Chauhan Prashali13,Lumen Ellie4,Moody Kelsey345,Peddireddy Karthik6ORCID,Mani Nandini7ORCID,Subramanian Radhika7ORCID,Robertson-Anderson Rae6ORCID,Wolfe Aaron J345ORCID,Ross Jennifer L13ORCID

Affiliation:

1. Physics Department, Syracuse University , Syracuse, NY 13244 , USA

2. Department of Physics, New York University , New York, NY 10003 , USA

3. The Bioinspired Institute, Syracuse University , Syracuse, NY 13244 , USA

4. Ichor Life Sciences, Inc. , 2561 US Route 11, LaFayette, NY 13084 , USA

5. Lewis School of Health Sciences, Clarkson University , 8 Clarkson Avenue, Potsdam, NY 13699 , USA

6. Physics Department, University of San Diego , San Diego, CA 92110 , USA

7. Massachusetts General Hospital , Boston, MA 02115 , USA

Abstract

Abstract The cytoskeleton is a major focus of physical studies to understand organization inside cells given its primary role in cell motility, cell division, and cell mechanics. Recently, protein condensation has been shown to be another major intracellular organizational strategy. Here, we report that the microtubule crosslinking proteins, MAP65-1 and PRC1, can form phase separated condensates at physiological salt and temperature without additional crowding agents in vitro. The size of the droplets depends on the concentration of protein. MAP65 condensates are liquid at first and can gelate over time. We show that these condensates can nucleate and grow microtubule bundles that form asters, regardless of the viscoelasticity of the condensate. The droplet size directly controls the number of projections in the microtubule asters, demonstrating that the MAP65 concentration can control the organization of microtubules. When gel-like droplets nucleate and grow asters from a shell of tubulin at the surface, the microtubules are able to re-fluidize the MAP65 condensate, returning the MAP65 molecules to solution. This work implies that there is an interplay between condensate formation from microtubule-associated proteins, microtubule organization, and condensate dissolution that could be important for the dynamics of intracellular organization.

Publisher

Oxford University Press (OUP)

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