Microtubule dynamics in the chromosomal spindle fiber: analysis by fluorescence and high-resolution polarization

L Cassimeris1, S Inoué, E D Salmon

  • 1Department of Biology, University of North Carolina, Chapel Hill 27599-3280.

Insights

Chromosomal spindle fibers are dynamic structures. Microtubule assembly and lateral interactions within these fibers are transient, suggesting kinetochore-microtubule attachments may also be temporary.

Area of Science:

  • Cell Biology
  • Cytoskeleton Dynamics
  • Mitotic Spindle Organization

Background:

  • Chromosomal spindle fibers are crucial for chromosome segregation during mitosis.
  • Understanding microtubule dynamics within these fibers is key to cell division.
  • Previous models often assumed static or less dynamic fiber structures.

Purpose of the Study:

  • To investigate the dynamic assembly and organization of microtubules within chromosomal spindle fibers.
  • To determine the turnover rate of tubulin within these structures.
  • To explore the mechanisms underlying chromosomal fiber formation.

Main Methods:

  • Fluorescence Redistribution After Photobleaching (FRAP) in PtK1 cells to measure tubulin dynamics.
  • Microinjection of fluorescently labeled tubulin.
  • High-resolution polarization microscopy in newt lung epithelial cells.
  • Analysis of microtubule lateral associations and fiber clustering.

Main Results:

  • Tubulin within chromosomal fibers exchanges rapidly (72% with a 77-sec half-time).
  • No poleward flux of subunits was observed.
  • Transient lateral associations between microtubules form 'rods', contributing to fiber clustering.
  • Kinetochore microtubule attachment half-life may be less than several minutes.

Conclusions:

  • Chromosomal spindle fibers are highly dynamic structures.
  • Microtubule assembly, lateral interactions, and kinetochore attachments are transient.
  • Dynamic instability and transient interactions govern spindle fiber organization and function.

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