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Molecular characterization of a fungal gasdermin-like protein
by
Mitchell, Patrick S.
, Vance, Russell E.
, Daskalov, Asen
, Glass, N. Louise
, Sandstrom, Andrew
in
Alleles
/ Apoptosis
/ BASIC BIOLOGICAL SCIENCES
/ Biological Sciences
/ Cardiolipin
/ Cell death
/ Fungal Proteins - chemistry
/ Fungal Proteins - genetics
/ Fungal Proteins - metabolism
/ Fungal Proteins - physiology
/ Fungi
/ gasdermin
/ Genetics
/ Genomes
/ HEK293 Cells
/ Helices
/ Homology
/ Humans
/ Immunity, Innate - physiology
/ Incompatibility
/ Inflammation
/ Innate immunity
/ Lipids
/ Liposomes
/ Localization
/ Mortality
/ Neoplasm Proteins - chemistry
/ Neoplasm Proteins - genetics
/ Neoplasm Proteins - metabolism
/ Neoplasm Proteins - physiology
/ Neurospora
/ Neurospora crassa - metabolism
/ Oligomers
/ Phosphatidylserine
/ Phospholipids
/ Plasmids
/ Population genetics
/ Pore formation
/ programmed cell death
/ Proteins
/ Pyroptosis
/ Pyroptosis - physiology
/ Senescence
/ Spores
2020
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Molecular characterization of a fungal gasdermin-like protein
by
Mitchell, Patrick S.
, Vance, Russell E.
, Daskalov, Asen
, Glass, N. Louise
, Sandstrom, Andrew
in
Alleles
/ Apoptosis
/ BASIC BIOLOGICAL SCIENCES
/ Biological Sciences
/ Cardiolipin
/ Cell death
/ Fungal Proteins - chemistry
/ Fungal Proteins - genetics
/ Fungal Proteins - metabolism
/ Fungal Proteins - physiology
/ Fungi
/ gasdermin
/ Genetics
/ Genomes
/ HEK293 Cells
/ Helices
/ Homology
/ Humans
/ Immunity, Innate - physiology
/ Incompatibility
/ Inflammation
/ Innate immunity
/ Lipids
/ Liposomes
/ Localization
/ Mortality
/ Neoplasm Proteins - chemistry
/ Neoplasm Proteins - genetics
/ Neoplasm Proteins - metabolism
/ Neoplasm Proteins - physiology
/ Neurospora
/ Neurospora crassa - metabolism
/ Oligomers
/ Phosphatidylserine
/ Phospholipids
/ Plasmids
/ Population genetics
/ Pore formation
/ programmed cell death
/ Proteins
/ Pyroptosis
/ Pyroptosis - physiology
/ Senescence
/ Spores
2020
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Molecular characterization of a fungal gasdermin-like protein
by
Mitchell, Patrick S.
, Vance, Russell E.
, Daskalov, Asen
, Glass, N. Louise
, Sandstrom, Andrew
in
Alleles
/ Apoptosis
/ BASIC BIOLOGICAL SCIENCES
/ Biological Sciences
/ Cardiolipin
/ Cell death
/ Fungal Proteins - chemistry
/ Fungal Proteins - genetics
/ Fungal Proteins - metabolism
/ Fungal Proteins - physiology
/ Fungi
/ gasdermin
/ Genetics
/ Genomes
/ HEK293 Cells
/ Helices
/ Homology
/ Humans
/ Immunity, Innate - physiology
/ Incompatibility
/ Inflammation
/ Innate immunity
/ Lipids
/ Liposomes
/ Localization
/ Mortality
/ Neoplasm Proteins - chemistry
/ Neoplasm Proteins - genetics
/ Neoplasm Proteins - metabolism
/ Neoplasm Proteins - physiology
/ Neurospora
/ Neurospora crassa - metabolism
/ Oligomers
/ Phosphatidylserine
/ Phospholipids
/ Plasmids
/ Population genetics
/ Pore formation
/ programmed cell death
/ Proteins
/ Pyroptosis
/ Pyroptosis - physiology
/ Senescence
/ Spores
2020
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Molecular characterization of a fungal gasdermin-like protein
Journal Article
Molecular characterization of a fungal gasdermin-like protein
2020
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Overview
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 regulator of cell death-1 (rcd-1), a gene controlling PCD in germinated asexual spores in the filamentous fungus Neurospora crassa. rcd-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.
Publisher
National Academy of Sciences
Subject
/ Fungal Proteins - metabolism
/ Fungal Proteins - physiology
/ Fungi
/ Genetics
/ Genomes
/ Helices
/ Homology
/ Humans
/ Immunity, Innate - physiology
/ Lipids
/ Neoplasm Proteins - chemistry
/ Neoplasm Proteins - genetics
/ Neoplasm Proteins - metabolism
/ Neoplasm Proteins - physiology
/ Neurospora crassa - metabolism
/ Plasmids
/ Proteins
/ Spores
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