Microtubules can bear enhanced compressive loads in living cells because of lateral reinforcement

Author:

Brangwynne Clifford P.1,MacKintosh Frederick C.2,Kumar Sanjay34,Geisse Nicholas A.1,Talbot Jennifer1,Mahadevan L.1,Parker Kevin K.1,Ingber Donald E.354,Weitz David A.61

Affiliation:

1. Division of Engineering and Applied Sciences, Harvard University, Cambridge, MA 02138

2. Department of Physics and Astronomy, Vrije Universiteit, 1081 HV Amsterdam, Netherlands

3. Vascular Biology Program,

4. Department of Surgery, Children's Hospital, Harvard Medical School, Boston, MA 02115

5. Department of Pathology, and

6. Department of Physics and

Abstract

Cytoskeletal microtubules have been proposed to influence cell shape and mechanics based on their ability to resist large-scale compressive forces exerted by the surrounding contractile cytoskeleton. Consistent with this, cytoplasmic microtubules are often highly curved and appear buckled because of compressive loads. However, the results of in vitro studies suggest that microtubules should buckle at much larger length scales, withstanding only exceedingly small compressive forces. This discrepancy calls into question the structural role of microtubules, and highlights our lack of quantitative knowledge of the magnitude of the forces they experience and can withstand in living cells. We show that intracellular microtubules do bear large-scale compressive loads from a variety of physiological forces, but their buckling wavelength is reduced significantly because of mechanical coupling to the surrounding elastic cytoskeleton. We quantitatively explain this behavior, and show that this coupling dramatically increases the compressive forces that microtubules can sustain, suggesting they can make a more significant structural contribution to the mechanical behavior of the cell than previously thought possible.

Publisher

Rockefeller University Press

Subject

Cell Biology

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