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Modulation of microtubule dynamic instability in vivo by brain microtubule associated proteins
1Molecular and Cellular Biology Program, University of Massachusetts at Amherst 01003, USA.
Abstract:
Heat-stable brain microtubule associated proteins (MAPs) and purified microtubule associated protein 2 (MAP-2) were microinjected into cultured BSC-1 cells which had been previously injected with rhodamine-labeled tubulin. The dynamic instability behavior of individual microtubules was then examined using low-light-level fluorescence microscopy and quantitative microtubule tracking methods. Both MAP preparations suppressed microtubule dynamics in vivo, by reducing the average rate and extent of both growing and shortening events. The average duration of growing events was not affected. When measured as events/unit time, heat-stable MAPs and MAP-2 did not significantly alter the frequency of rescue; the frequency of catastrophe was decreased approximately two-fold by heat-stable MAPs and MAP-2. When transition frequencies were calculated as events/unit distance, both MAP preparations increased the frequency of rescue, without altering the frequency of catastrophe. The percentage of total time spent in the phases of growth, shrink and pause was determined. Both MAP-2 and heat-stable MAPs decreased the percentage of time spent shortening, increased the percentage of time spent paused, and had no effect on percentage of time spent growing. Heat-stable MAPs increased the average pause duration, decreased the average number of events per minute per microtubule and increased the probability that a paused microtubule would switch to growing rather than shortening. The results demonstrate that addition of MAPs to living cells reduces the dynamic behavior of individual microtubules primarily by suppressing the magnitude of dynamic events and increasing the time spent in pause, where no change in the microtubule length can be detected. The results further suggest that the expression of MAPs directly contributes to cell type-specific microtubule dynamic behavior.
Insights
Microtubule-associated proteins (MAPs) reduce microtubule dynamics in living cells by decreasing growth and shortening events. MAPs increase pause duration, contributing to cell-specific microtubule behavior.
Area of Science:
- Cell Biology
- Molecular Biology
- Biophysics
Background:
- Microtubules are essential cytoskeletal components involved in cell structure, division, and transport.
- Microtubule dynamics, characterized by polymerization and depolymerization, are crucial for cellular functions.
- Microtubule-associated proteins (MAPs) are known to regulate microtubule stability and dynamics.
Purpose of the Study:
- To investigate the effect of heat-stable brain MAPs and purified MAP-2 on microtubule dynamics in living cells.
- To elucidate how MAPs influence the dynamic instability of individual microtubules in vivo.
- To determine the contribution of MAPs to cell type-specific microtubule dynamic behavior.
Main Methods:
- Microinjection of heat-stable MAPs and MAP-2 into cultured BSC-1 cells.
- Injection of rhodamine-labeled tubulin to visualize microtubules.
- Low-light-level fluorescence microscopy for real-time observation.
- Quantitative microtubule tracking to analyze dynamic parameters.
Main Results:
- Both MAP preparations significantly suppressed microtubule dynamics by reducing the rate and extent of growing and shortening events.
- MAPs decreased the frequency of catastrophe and increased the frequency of rescue when measured per unit distance.
- MAPs increased the time spent in pause and decreased the time spent shortening, without affecting growing time.
Conclusions:
- MAPs reduce microtubule dynamics in living cells primarily by suppressing the magnitude of dynamic events and increasing pause duration.
- The addition of MAPs alters microtubule transition frequencies, favoring rescue over catastrophe under certain measurements.
- MAP expression directly contributes to establishing cell type-specific microtubule dynamic characteristics.