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Published on: March 7, 2019
A Multistate Toggle Switch Defines Fungal Cell Fates and Is Regulated by Synergistic Genetic Cues
Matthew Z Anderson1, Allison M Porman1, Na Wang1
1Department of Microbiology and Immunology, Brown University, Providence, Rhode Island, United States of America.
Abstract:
Heritable epigenetic changes underlie the ability of cells to differentiate into distinct cell types. Here, we demonstrate that the fungal pathogen Candida tropicalis exhibits multipotency, undergoing stochastic and reversible switching between three cellular states. The three cell states exhibit unique cellular morphologies, growth rates, and global gene expression profiles. Genetic analysis identified six transcription factors that play key roles in regulating cell differentiation. In particular, we show that forced expression of Wor1 or Efg1 transcription factors can be used to manipulate transitions between all three cell states. A model for tristability is proposed in which Wor1 and Efg1 are self-activating but mutually antagonistic transcription factors, thereby forming a symmetrical self-activating toggle switch. We explicitly test this model and show that ectopic expression of WOR1 can induce white-to-hybrid-to-opaque switching, whereas ectopic expression of EFG1 drives switching in the opposite direction, from opaque-to-hybrid-to-white cell states. We also address the stability of induced cell states and demonstrate that stable differentiation events require ectopic gene expression in combination with chromatin-based cues. These studies therefore experimentally test a model of multistate stability and demonstrate that transcriptional circuits act synergistically with chromatin-based changes to drive cell state transitions. We also establish close mechanistic parallels between phenotypic switching in unicellular fungi and cell fate decisions during stem cell reprogramming.
Insights
The fungal pathogen Candida tropicalis can switch between three cell states, controlled by transcription factors Wor1 and Efg1. This epigenetic plasticity offers insights into cell differentiation and reprogramming.
Area of Science:
- Microbiology
- Epigenetics
- Cell Biology
Background:
- Heritable epigenetic changes drive cellular differentiation.
- Fungal pathogens can exhibit complex cellular behaviors.
Purpose of the Study:
- To investigate the multipotency and cell state switching in Candida tropicalis.
- To identify genetic regulators of cell differentiation in this fungus.
- To model the transcriptional circuitry governing cell state transitions.
Main Methods:
- Stochastic cell switching experiments.
- Analysis of cellular morphology, growth rates, and gene expression.
- Genetic manipulation of transcription factors (Wor1, Efg1).
- Ectopic gene expression studies.
- Chromatin-based cue analysis.
Main Results:
- Candida tropicalis exhibits stochastic and reversible switching between three distinct cell states.
- Six transcription factors were identified as key regulators of differentiation.
- Wor1 and Efg1 act as mutually antagonistic, self-activating transcription factors, forming a tristable switch.
- Ectopic expression of WOR1 and EFG1 drives switching in opposite directions.
- Stable differentiation requires both ectopic gene expression and chromatin modifications.
Conclusions:
- A model for tristability in Candida tropicalis is experimentally validated.
- Transcriptional circuits and chromatin changes synergize to control cell state transitions.
- Phenotypic switching in fungi shares mechanistic parallels with stem cell reprogramming.
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