Allocation of resources among multiple daughter cells
Alison C E Wirshing1, Roberto Alonso-Matilla2, Michelle Yan1
1Department of Biology, Massachusetts Institute of Technology, Cambridge, MA 02139.
Biorxiv : the Preprint Server for Biology
|July 14, 2025
Summary
In the yeast Aureobasidium pullulans, large mother cells divide into multiple daughters. Actin networks guide bud growth, ensuring equal partitioning of resources for complex fungal morphologies.
Area of Science:
- Cell Biology
- Mycology
- Genetics
Background:
- Cell division typically yields two daughter cells, but multiple fission occurs in diverse organisms like algae, bacteria, and fungi.
- Some yeast species exhibit multi-budding, where a single mother cell simultaneously produces several daughters.
- Understanding the mechanisms of equal growth partitioning in multi-budding yeast is crucial for comprehending fungal development.
Purpose of the Study:
- To investigate how the multi-budding yeast Aureobasidium pullulans achieves equal growth partitioning among multiple simultaneous daughters.
- To identify the cellular components and processes responsible for equitable distribution of cellular resources during multi-budding.
Main Methods:
- Microscopic observation of actin cable networks and bud growth dynamics in Aureobasidium pullulans.
- Analysis of polarity site establishment and its role in directing bud formation and growth.
- Investigating the relationship between cell geometry, cytoskeletal organization, and partitioning mechanisms.
Main Results:
- Actin cable networks in Aureobasidium pullulans are optimized for even partitioning of growth, even with complex cell shapes.
- Equal partitioning of bud volumes is achieved through the equalization of polarity sites, not compensatory volume adjustments.
- Conserved cell polarity and cytoskeletal networks are adapted for complex morphological development in fungi.
Conclusions:
- Aureobasidium pullulans utilizes a mechanism of polarity site equalization to ensure equitable growth distribution among multiple buds.
- The study highlights the adaptability of conserved cellular machinery for generating complex fungal morphologies.
- Findings provide insights into the fundamental processes governing cell division and growth in eukaryotic microorganisms.
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