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Preparation of Segmented Microtubules to Study Motions Driven by the Disassembling Microtubule Ends
Published on: March 15, 2014
Visualization of the stop of microtubule depolymerization that occurs at the high-density region of
K Ichihara1, H Kitazawa, Y Iguchi
1Division of Biological Science, Graduate School of Science, Nagoya University, Furo-cho, Chikusa-ku, Nagoya 464-8602, Japan.
Abstract:
Individual microtubules (MTs) repeat alternating phases of polymerization and depolymerization, a process known as dynamic instability. Microtubule-associated proteins (MAPs) regulate the dynamic instability by increasing the rescue frequency. To explore the influence of MAP2 on in vitro MT dynamics, we correlated the distribution of MAP2 on individual MTs with the dynamic phase changes of the same MTs. MAP2 was modified selectively on its projection region by X-rhodamine iodoacetamide without altering the MT-binding activity. When the labeled MAP2 was added to MTs, the fluorescence was distributed along almost the entire length of individual MTs. However, the inhomogeneity of the distribution gradually became obvious due to the fluorescence bleaching, and the MTs appeared to consist of rapidly bleached portions (RBPs) and slowly bleached portions (SBPs), which were distributed randomly along the MT. By measuring the duration of fluorescence bleaching, the density of MAP2 in SBP was estimated to be approximately 2.5 times higher than the RBP. The average tubulin:MAP2 ratio in SBP was calculated to be 16. When the MT dynamics were observed by dark-field microscopy after determining the MAP2 distribution, rescues were always found to occur only at the SBPs. MTs also displayed intermittent shortening by repeated depolymerization phases separated by pause phases. In these cases, depolymerization phases stopped only at the SBPs. Not every SBP stopped depolymerization, but depolymerization always stopped at an SBP. Taken together, we suggest that there is a minimum density of MAP2 that is necessary to stop depolymerization.
Insights
Microtubule-associated protein 2 (MAP2) regulates microtubule (MT) dynamics. Higher MAP2 density at specific sites on MTs is necessary to halt depolymerization and promote rescue, influencing MT stability.
Area of Science:
- Cell Biology
- Biochemistry
- Biophysics
Background:
- Microtubules (MTs) exhibit dynamic instability, alternating between growth (polymerization) and shrinkage (depolymerization).
- Microtubule-associated proteins (MAPs) modulate MT dynamic instability, primarily by increasing the frequency of rescue events (switching from depolymerization to polymerization).
Purpose of the Study:
- To investigate the specific influence of MAP2 on in vitro MT dynamics.
- To correlate the spatial distribution of MAP2 along individual MTs with their dynamic phase transitions.
Main Methods:
- MAP2 was fluorescently labeled with X-rhodamine without affecting its MT-binding activity.
- Labeled MAP2 was added to purified MTs, and its distribution was analyzed using fluorescence bleaching patterns.
- MT dynamics were observed via dark-field microscopy, correlating dynamic events with MAP2 distribution.
Main Results:
- Fluorescently labeled MAP2 exhibited inhomogeneous distribution along MTs, forming rapidly bleached portions (RBPs) and slowly bleached portions (SBPs).
- MAP2 density in SBPs was approximately 2.5 times higher than in RBPs, with a tubulin:MAP2 ratio of 16 in SBPs.
- MT rescue events and the cessation of depolymerization phases consistently occurred at SBPs, indicating a localized effect of MAP2.
Conclusions:
- MAP2 density is not uniform along MTs; higher concentrations are found at specific sites (SBPs).
- A minimum threshold density of MAP2 at specific sites is required to inhibit depolymerization and promote MT rescue.
- These findings suggest a localized regulatory mechanism for MT dynamic instability mediated by MAP2.
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