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Spatiotemporal Analysis of Cytokinetic Events in Fission Yeast
Published on: February 20, 2017
Banding and polarity of actin filaments in interphase and cleaving cells
Abstract:
Heavy meromyosin (HMM) decoration of actin filaments was used to detect the polarity of microfilaments in interphase and cleaving rat kangaroo (PtK2) cells. Ethanol at -20 degrees C was used to make the cells permeable to HMM followed by tannic acid-glutaraldehyde fixation for electron microscopy. Uniform polarity of actin filaments was observed at cell junctions and central attachment plaques with the HMM arrowheads always pointing away from the junction or plaque. Stress fibers were banded in appearance with their component microfilaments exhibiting both parallel and antiparallel orientation with respect to one another. Identical banding of microfilament bundles was also seen in cleavage furrows with the same variation in filament polarity as found in stress fibers. Similarly banded fibers were not seen outside the cleavage furrow in mitotic cells. By the time that a mid-body was present, the actin filaments in the cleavage furrow were no longer in banded fibers. The alternating dark and light bands of both the stress fibers and cleavage furrow fibers are approximately equal in length, each measuring approximately 0.16 micrometer. Actin filaments were present in both bands, and individual decorated filaments could sometimes be traced through four band lengths. Undecorated filaments, 10 nm in diameter, could often be seen within the light bands. A model is proposed to explain the arrangement of filaments in stress fibers and cleavage furrows based on the striations observed with tannic acid and the polarity of the actin filaments.
Insights
Heavy meromyosin (HMM) decoration reveals uniform actin filament polarity at cell junctions and attachment plaques in PtK2 cells. Microfilaments in stress fibers and cleavage furrows show banded arrangements with varied polarity.
Area of Science:
- Cell Biology
- Cytoskeleton Dynamics
- Electron Microscopy
Background:
- Actin filaments (microfilaments) are crucial for cell structure and division.
- Understanding microfilament polarity is key to deciphering cellular mechanics.
Purpose of the Study:
- To determine the polarity of actin filaments in interphase and cleaving PtK2 cells.
- To investigate the structural organization of microfilaments in stress fibers and cleavage furrows.
Main Methods:
- Heavy meromyosin (HMM) decoration to label actin filament polarity.
- Ethanol permeabilization and tannic acid-glutaraldehyde fixation for electron microscopy.
- Analysis of microfilament arrangement in stress fibers and cleavage furrows.
Main Results:
- Uniform actin filament polarity observed at cell junctions and attachment plaques, with HMM arrowheads pointing away.
- Stress fibers and cleavage furrow microfilaments exhibit banded structures (approx. 0.16 µm) with mixed parallel and antiparallel orientations.
- Banded fibers were absent in mitotic cells outside the furrow; cleavage furrow fibers lost banding by mid-body formation.
Conclusions:
- Proposed a model for filament arrangement in stress fibers and cleavage furrows based on observed striations and polarity.
- Demonstrated distinct microfilament organization patterns during different cellular processes (interphase vs. cleavage).
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