Tubulin depolymerization may be an ancient biological motor

Author:

McIntosh J. Richard1,Volkov Vladimir12,Ataullakhanov Fazly I.23,Grishchuk Ekaterina L.4

Affiliation:

1. Department of Molecular, Cellular, and Developmental Biology, University of Colorado, Boulder, CO 80309, USA

2. Center for Theoretical Problems of Physicochemical Pharmacology, Russian Academy of Sciences, Moscow, 119991, Russia

3. National Center for Hematology, Moscow, 125167, Russia

4. Department of Physiology, University of Pennsylvania School of Medicine, Philadelphia, PA 19104, USA

Abstract

The motions of mitotic chromosomes are complex and show considerable variety across species. A wealth of evidence supports the idea that microtubule-dependent motor enzymes contribute to this variation and are important both for spindle formation and for the accurate completion of chromosome segregation. Motors that walk towards the spindle pole are, however, dispensable for at least some poleward movements of chromosomes in yeasts, suggesting that depolymerizing spindle microtubules can generate mitotic forces in vivo. Tubulin protofilaments that flare outward in association with microtubule shortening may be the origin of such forces, because they can move objects that are appropriately attached to a microtubule wall. For example, some kinetochore-associated proteins can couple experimental objects, such as microspheres, to shortening microtubules in vitro, moving them over many micrometers. Here, we review recent evidence about such phenomena, highlighting the force-generation mechanisms and different coupling strategies. We also consider bending filaments of the tubulin-like protein FtsZ, which form rings girding bacteria at their sites of cytokinesis. Mechanical similarities between these force-generation systems suggest a deep phylogenetic relationship between tubulin depolymerization in eukaryotic mitosis and FtsZ-mediated ring contraction in bacteria.

Publisher

The Company of Biologists

Subject

Cell Biology

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