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Genetic Manipulation of the Plant Pathogen Ustilago maydis to Study Fungal Biology and Plant Microbe Interactions
Published on: September 30, 2016
Molecular characterization of a fungal gasdermin-like protein
Asen Daskalov1, Patrick S Mitchell2, Andrew Sandstrom3
1Plant and Microbial Biology Department, University of California, Berkeley, CA 94720; asen.daskalov@u-bordeaux.fr Lglass@berkeley.edu.
Abstract:
Programmed cell death (PCD) in filamentous fungi prevents cytoplasmic mixing following fusion between conspecific genetically distinct individuals (allorecognition) and serves as a defense mechanism against mycoparasitism, genome exploitation, and deleterious cytoplasmic elements (i.e., senescence plasmids). Recently, we identified regulatorof cell death-1 (rcd-1), a gene controlling PCD in germinated asexual spores in the filamentous fungus Neurospora crassarcd-1 alleles are highly polymorphic and fall into two haplogroups in N. crassa populations. Coexpression of alleles from the two haplogroups, rcd-1-1 and rcd-1-2, is necessary and sufficient to trigger a cell death reaction. Here, we investigated the molecular bases of rcd-1-dependent cell death. Based on in silico analyses, we found that RCD-1 is a remote homolog of the N-terminal pore-forming domain of gasdermin, the executioner protein of a highly inflammatory cell death reaction termed pyroptosis, which plays a key role in mammalian innate immunity. We show that RCD-1 localizes to the cell periphery and that cellular localization of RCD-1 was correlated with conserved positively charged residues on predicted amphipathic α-helices, as shown for murine gasdermin-D. Similar to gasdermin, RCD-1 binds acidic phospholipids in vitro, notably, cardiolipin and phosphatidylserine, and interacts with liposomes containing such lipids. The RCD-1 incompatibility system was reconstituted in human 293T cells, where coexpression of incompatible rcd-1-1/rcd-1-2 alleles triggered pyroptotic-like cell death. Oligomers of RCD-1 were associated with the cell death reaction, further supporting the evolutionary relationship between gasdermin and rcd-1 This report documents an ancient transkingdom relationship of cell death execution modules involved in organismal defense.
Insights
Regulator of cell death-1 (RCD-1) in fungi acts like mammalian gasdermin, triggering programmed cell death. Co-expressed RCD-1 variants initiate cell death, revealing an ancient defense mechanism across kingdoms.
Area of Science:
- Mycology
- Cell Biology
- Evolutionary Biology
Background:
- Programmed cell death (PCD) in filamentous fungi is crucial for allorecognition and defense against pathogens.
- The gene regulator of cell death-1 (rcd-1) controls PCD in Neurospora crassa.
- rcd-1 alleles exhibit high polymorphism, falling into two distinct haplogroups.
Purpose of the Study:
- To investigate the molecular mechanisms underlying rcd-1-dependent cell death in N. crassa.
- To explore the evolutionary relationship between fungal RCD-1 and mammalian cell death effectors.
Main Methods:
- In silico analysis to identify RCD-1 homologs.
- In vitro binding assays with acidic phospholipids.
- Reconstitution of the RCD-1 incompatibility system in human 293T cells.
Main Results:
- RCD-1 is a remote homolog of the N-terminal pore-forming domain of gasdermin.
- RCD-1 localizes to the cell periphery and binds acidic phospholipids like cardiolipin and phosphatidylserine.
- Coexpression of incompatible rcd-1 alleles in human cells triggered pyroptotic-like cell death, with RCD-1 oligomers associated with this process.
Conclusions:
- Fungal RCD-1 functions similarly to mammalian gasdermin in executing cell death.
- This study reveals an ancient, conserved transkingdom mechanism for cell death execution in organismal defense.
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