THE CHANGING PATTERN OF BIREFRINGENCE IN PLASMODIA OF THE SLIME MOLD, PHYSARUM POLYCEPHALUM

Insights

Physarum polycephalum slime molds exhibit dynamic birefringence patterns. These changing fibril structures, visible under polarized light, likely drive cytoplasmic streaming and cellular movement.

Area of Science:

  • Cell Biology
  • Biophysics
  • Microscopy

Background:

  • The acellular slime mold Physarum polycephalum displays complex behaviors.
  • Understanding the physical basis of its movement is crucial for cell motility research.

Purpose of the Study:

  • To investigate the birefringence patterns in Physarum polycephalum plasmodia.
  • To correlate these patterns with cytoplasmic streaming and overall cellular motion.

Main Methods:

  • Polarizing microscopy was used to observe birefringence in Physarum plasmodia.
  • Analysis focused on fibril orientation, changes in birefringence, and organization during movement.

Main Results:

  • Positively birefringent fibrils were observed in the ectoplasm, with varied orientations.
  • Fibrils showed dynamic changes in birefringence, especially during cyclic deformations.
  • Negative endoplasmic birefringence remained constant during the streaming cycle.
  • Fibrils tended to form orthogonal arrays in specific regions.

Conclusions:

  • Birefringence patterns provide insights into the physical mechanisms of Physarum.
  • Coordinated contractions of visible fibrils likely explain both cytoplasmic streaming and plasmodial locomotion.