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Characterization of MLKL-mediated Plasma Membrane Rupture in Necroptosis
Published on: August 7, 2018
RIP1, RIP3, and MLKL Contribute to Cell Death Caused by Clostridium perfringens Enterotoxin
Archana Shrestha1, Iman Mehdizadeh Gohari1, Bruce A McClane2
1Department of Microbiology and Molecular Genetics, University of Pittsburgh School of Medicine, Pittsburgh, Pennsylvania, USA.
Abstract:
Clostridium perfringens type F strains cause gastrointestinal disease when they produce a pore-forming toxin named C. perfringens enterotoxin (CPE). In human enterocyte-like Caco-2 cells, low CPE concentrations cause caspase-3-dependent apoptosis, while high CPE concentrations cause necrosis. Since necrosis or apoptosis sometimes involves receptor-interacting serine/threonine-protein kinase-1 or 3 (RIP1 or RIP3), this study examined whether those kinases are important for CPE-induced apoptosis or necrosis. Highly specific RIP1 or RIP3 inhibitors reduced both CPE-induced apoptosis and necrosis in Caco-2 cells. Those findings suggested that the form of necrosis induced by treating Caco-2 cells with high CPE concentrations involves necroptosis, which was confirmed when high, but not low, CPE concentrations were shown to induce oligomerization of mixed-lineage kinase domain-like pseudokinase (MLKL), a key late step in necroptosis. Furthermore, an MLKL oligomerization inhibitor reduced cell death caused by high, but not low, CPE concentrations. Supporting RIP1 and RIP3 involvement in CPE-induced necroptosis, inhibitors of those kinases also reduced MLKL oligomerization during treatment with high CPE concentrations. Calpain inhibitors similarly blocked MLKL oligomerization induced by high CPE concentrations, implicating calpain activation as a key intermediate in initiating CPE-induced necroptosis. In two other CPE-sensitive cell lines, i.e., Vero cells and human enterocyte-like T84 cells, low CPE concentrations also caused primarily apoptosis/late apoptosis, while high CPE concentrations mainly induced necroptosis. Collectively, these results establish that high, but not low, CPE concentrations cause necroptosis and suggest that RIP1, RIP3, MLKL, or calpain inhibitors can be explored as potential therapeutics against CPE effects in vivoIMPORTANCEC. perfringens type F strains are a common cause of food poisoning and antibiotic-associated diarrhea. Type F strain virulence requires production of C. perfringens enterotoxin (CPE). In Caco-2 cells, high CPE concentrations cause necrosis while low enterotoxin concentrations induce apoptosis. The current study determined that receptor-interacting serine/threonine-protein kinases 1 and 3 are involved in both CPE-induced apoptosis and necrosis in Caco-2 cells, while mixed-lineage kinase domain-like pseudokinase (MLKL) oligomerization is involved in CPE-induced necrosis, thereby indicating that this form of CPE-induced cell death involves necroptosis. High CPE concentrations also caused necroptosis in T84 and Vero cells. Calpain activation was identified as a key intermediate for CPE-induced necroptosis. These results suggest inhibitors of RIP1, RIP3, MLKL oligomerization, or calpain are useful therapeutics against CPE-mediated diseases.
Insights
Clostridium perfringens enterotoxin (CPE) causes cell death via apoptosis or necroptosis. This study shows RIP1, RIP3, MLKL, and calpain are key in CPE-induced necroptosis, suggesting potential therapeutic targets.
Area of Science:
- Cell Biology
- Molecular Biology
- Toxicology
Background:
- Clostridium perfringens type F strains produce C. perfringens enterotoxin (CPE), a key virulence factor in gastrointestinal diseases.
- CPE induces apoptosis at low concentrations and necrosis at high concentrations in Caco-2 cells.
- Receptor-interacting serine/threonine-protein kinases (RIP1/RIP3) are implicated in programmed cell death pathways.
Purpose of the Study:
- To investigate the role of RIP1, RIP3, and downstream effectors in CPE-induced apoptosis and necrosis.
- To determine if CPE-induced necrosis involves necroptosis.
- To identify key molecular intermediates in CPE-induced necroptosis.
Main Methods:
- Utilized Caco-2, Vero, and T84 cell lines.
- Administered varying concentrations of CPE.
- Employed specific inhibitors for RIP1, RIP3, MLKL oligomerization, and calpain.
- Assessed cell death, apoptosis, necrosis, and MLKL oligomerization.
Main Results:
- RIP1 and RIP3 inhibitors reduced both CPE-induced apoptosis and necrosis.
- High CPE concentrations induced MLKL oligomerization, a hallmark of necroptosis.
- MLKL oligomerization inhibitors specifically blocked high CPE concentration-induced cell death.
- Calpain inhibitors blocked MLKL oligomerization, indicating calpain's role in initiating necroptosis.
- Necroptosis was observed in Vero and T84 cells at high CPE concentrations.
Conclusions:
- High CPE concentrations induce necroptosis, involving RIP1, RIP3, MLKL, and calpain.
- Low CPE concentrations induce apoptosis.
- Calpain activation is a critical early step in CPE-induced necroptosis.
- Inhibitors targeting these pathways may offer therapeutic strategies against CPE-mediated diseases.
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