Vinblastine suppresses dynamics of individual microtubules in living interphase cells.

R Dhamodharan, MA Jordan, D Thrower… - Molecular biology of …, 1995 - Am Soc Cell Biol
R Dhamodharan, MA Jordan, D Thrower, L Wilson, P Wadsworth
Molecular biology of the cell, 1995Am Soc Cell Biol
We have characterized the effects of vinblastine on the dynamic instability behavior of
individual microtubules in living BS-C-1 cells microinjected with rhodamine-labeled tubulin
and have found that at low concentrations (3-64 nM), vinblastine potently suppresses
dynamic instability without causing net microtubule depolymerization. Vinblastine
suppressed the rates of microtubule growth and shortening, and decreased the frequency of
transitions from growth or pause to shortening, also called catastrophe. In vinblastine-treated …
We have characterized the effects of vinblastine on the dynamic instability behavior of individual microtubules in living BS-C-1 cells microinjected with rhodamine-labeled tubulin and have found that at low concentrations (3-64 nM), vinblastine potently suppresses dynamic instability without causing net microtubule depolymerization. Vinblastine suppressed the rates of microtubule growth and shortening, and decreased the frequency of transitions from growth or pause to shortening, also called catastrophe. In vinblastine-treated cells, both the average duration of a pause (a state of attenuated dynamics where neither growth nor shortening could be detected) and the percentage of total time spent in pause were significantly increased. Vinblastine potently decreased dynamicity, a measure of the overall dynamic activity of microtubules, reducing this parameter by 75% at 32 nM. The present work, consistent with earlier in vitro studies, demonstrates that vinblastine kinetically caps the ends of microtubules in living cells and supports the hypothesis that the potent chemotherapeutic action of vinblastine as an antitumor drug is suppression of mitotic spindle microtubule dynamics. Further, the results indicate that molecules that bind to microtubule ends can regulate microtubule dynamic behavior in living cells and suggest that endogenous regulators of microtubule dynamics that work by similar mechanisms may exist in living cells.
Am Soc Cell Biol