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Published on: October 31, 2014
Gene-trap mutagenesis identifies mammalian genes contributing to intoxication by Clostridium perfringens ε-toxin
Susan E Ivie1, Christine M Fennessey, Jinsong Sheng
1Division of Infectious Disease, Department of Medicine, Vanderbilt University School of Medicine, Nashville, Tennessee, United States of America.
Abstract:
The Clostridium perfringens ε-toxin is an extremely potent toxin associated with lethal toxemias in domesticated ruminants and may be toxic to humans. Intoxication results in fluid accumulation in various tissues, most notably in the brain and kidneys. Previous studies suggest that the toxin is a pore-forming toxin, leading to dysregulated ion homeostasis and ultimately cell death. However, mammalian host factors that likely contribute to ε-toxin-induced cytotoxicity are poorly understood. A library of insertional mutant Madin Darby canine kidney (MDCK) cells, which are highly susceptible to the lethal affects of ε-toxin, was used to select clones of cells resistant to ε-toxin-induced cytotoxicity. The genes mutated in 9 surviving resistant cell clones were identified. We focused additional experiments on one of the identified genes as a means of validating the experimental approach. Gene expression microarray analysis revealed that one of the identified genes, hepatitis A virus cellular receptor 1 (HAVCR1, KIM-1, TIM1), is more abundantly expressed in human kidney cell lines than it is expressed in human cells known to be resistant to ε-toxin. One human kidney cell line, ACHN, was found to be sensitive to the toxin and expresses a larger isoform of the HAVCR1 protein than the HAVCR1 protein expressed by other, toxin-resistant human kidney cell lines. RNA interference studies in MDCK and in ACHN cells confirmed that HAVCR1 contributes to ε-toxin-induced cytotoxicity. Additionally, ε-toxin was shown to bind to HAVCR1 in vitro. The results of this study indicate that HAVCR1 and the other genes identified through the use of gene-trap mutagenesis and RNA interference strategies represent important targets for investigation of the process by which ε-toxin induces cell death and new targets for potential therapeutic intervention.
Insights
Clostridium perfringens ε-toxin causes lethal disease by damaging cells. Researchers identified Hepatitis A virus cellular receptor 1 (HAVCR1) as a key factor in toxin susceptibility, offering new therapeutic targets.
Area of Science:
- Toxicology
- Cell Biology
- Molecular Biology
Background:
- Clostridium perfringens ε-toxin is a potent cause of lethal toxemia in ruminants and potentially humans.
- Toxin-induced cell death involves pore formation, ion dysregulation, and fluid accumulation, particularly in the brain and kidneys.
- Mammalian host factors mediating ε-toxin cytotoxicity remain largely unknown.
Purpose of the Study:
- To identify host factors contributing to ε-toxin-induced cytotoxicity.
- To validate a screening approach for discovering toxin-susceptibility genes.
- To investigate the role of Hepatitis A virus cellular receptor 1 (HAVCR1) in ε-toxin action.
Main Methods:
- Generation and screening of a Madin Darby canine kidney (MDCK) cell mutant library for ε-toxin resistance.
- Identification of mutated genes in resistant cell clones using insertional mutagenesis.
- Gene expression analysis, RNA interference, and in vitro binding assays to study HAVCR1 function.
Main Results:
- Nine genes conferring ε-toxin resistance were identified in MDCK cells.
- Hepatitis A virus cellular receptor 1 (HAVCR1) was found to be upregulated in toxin-sensitive human kidney cells.
- HAVCR1 expression and a larger HAVCR1 isoform correlated with ε-toxin sensitivity.
- HAVCR1 was confirmed to mediate ε-toxin-induced cytotoxicity and bind the toxin directly.
Conclusions:
- HAVCR1 is a critical host factor for Clostridium perfringens ε-toxin-induced cell damage.
- The identified genes, including HAVCR1, represent potential therapeutic targets for ε-toxin poisoning.
- The study validates a novel strategy for discovering host factors involved in toxin pathogenesis.

