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Volvox barberi (Chlorophyceae) actively forms two-dimensional flocks in culture
Ravi N Balasubramanian1, Richard M McCourt2
1Yale University, New Haven, Connecticut, 06520, USA.
Journal of Phycology
|February 1, 2021
Summary
Volvox barberi colonies spontaneously form dynamic "flocks," creating active 2D crystals. Colony rotations generate fluid vortices, suggesting a physical mechanism for this self-organization in green algae.
Area of Science:
- Algal biology
- Biophysics
- Developmental biology
Background:
- Volvox barberi is a multicellular green alga.
- Colonies consist of 10,000-50,000 differentiated somatic and germ cells.
- These algae exhibit complex behaviors in culture.
Purpose of the Study:
- To investigate the self-organization of Volvox barberi colonies.
- To characterize the structure and dynamics of colony groupings.
- To explore potential mechanisms driving aggregation.
Main Methods:
- Observation of Volvox barberi colonies in laboratory cultures.
- Analysis of colony movement and rotation patterns.
- Use of tracer dye to visualize fluid dynamics.
Main Results:
- Colonies rapidly self-organized into 'flocks' of up to 100 individuals.
- Flocks exhibited collective movement and rotation, forming 2D active crystals.
- Colony and flock rotations generated fluid vortices, potentially facilitating aggregation.
- Flock formation and disassembly occurred on timescales of minutes to hours.
Conclusions:
- Volvox barberi colonies demonstrate remarkable self-organization capabilities.
- Active crystal formation and collective behavior are key features of these groupings.
- Fluid dynamics, specifically vortex generation, likely plays a crucial role in flock formation and stability.
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