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Updated: Aug 30, 2026

Analysis of the Epithelial Damage Produced by Entamoeba histolytica Infection
Published on: June 12, 2014
Pathogenic Acanthamoeba spp secrete a mannose-induced cytolytic protein that correlates with the ability to cause
Michael Hurt1, Sudha Neelam, Jerry Niederkorn
1Department of Ophthalmology, University of Texas Southwestern Medical Center at Dallas, Dallas, Texas 75390, USA.
Abstract:
The pathogenesis of Acanthamoeba keratitis begins when Acanthamoeba trophozoites bind specifically to mannosylated glycoproteins upregulated on the surfaces of traumatized corneal epithelial cells. When Acanthamoeba castellanii trophozoites are grown in methyl-alpha-D-mannopyranoside, they are induced to secrete a novel 133-kDa protein that is cytolytic to corneal epithelial cells. Clinical isolates of Acanthamoeba spp., and not the soil isolates, were proficient at producing a mannose-induced protein (MIP-133) and generating disease in Chinese hamsters. The purified protein was efficient at killing corneal epithelial cells, the first mechanistic barrier, by inducing apoptosis in a caspase 3-dependent pathway. Subsequent steps in pathogenesis require the amoebae to penetrate and degrade collagen. Only the clinical isolates tested were efficient at migrating through a collagenous matrix in vitro, presumably by MIP-133 degradation of both human type I and human type IV collagen. A chicken anti-MIP-133 antiserum effectively bound to the protein and blocked collagenolytic activity, migration, and cytopathic effects (CPE) against corneal cells in vitro. Chinese hamsters orally immunized with MIP-133 displayed a >30% reduction in disease. Immunoglobulin A isolated from immunized animals bound MIP-133 and blocked CPE on corneal cells in vitro. Animals induced to generate severe chronic infections displayed significant reductions in disease symptoms upon oral immunization postinfection. These data suggest that MIP-133 production might be necessary to initiate corneal disease and that it may play an important role in the subsequent steps of the pathogenic cascade of Acanthamoeba keratitis. Furthermore, as antibodies produced both prior to and after infection reduced clinical symptoms of disease, the protein may represent an important immunotherapeutic target for Acanthamoeba keratitis.
Insights
Acanthamoeba keratitis pathogenesis involves a novel protein (MIP-133) secreted by Acanthamoeba. This protein damages corneal cells and degrades collagen, suggesting it
Area of Science:
- Ophthalmology
- Microbiology
- Immunology
Background:
- Acanthamoeba keratitis (AK) is a severe eye infection.
- Pathogenesis involves Acanthamoeba binding to corneal cells.
- The initial molecular mechanisms of AK are not fully understood.
Purpose of the Study:
- To investigate the role of a novel secreted protein in Acanthamoeba keratitis pathogenesis.
- To identify potential therapeutic targets for AK.
Main Methods:
- Culturing Acanthamoeba castellanii with methyl-alpha-D-mannopyranoside to induce protein secretion.
- Purifying and characterizing the 133-kDa protein (MIP-133).
- Assessing the protein's cytolytic and collagenolytic activity in vitro.
- Evaluating the efficacy of anti-MIP-133 antibodies and immunization in a hamster model.
Main Results:
- Acanthamoeba castellanii secretes a 133-kDa protein (MIP-133) that is cytolytic to corneal epithelial cells via apoptosis.
- Clinical Acanthamoeba isolates, but not soil isolates, produced MIP-133 and caused disease in hamsters.
- MIP-133 degraded human type I and IV collagen, facilitating amoebic migration.
- Anti-MIP-133 antibodies blocked MIP-133's effects and reduced disease severity in hamsters.
Conclusions:
- MIP-133 is crucial for initiating Acanthamoeba keratitis pathogenesis.
- MIP-133 plays a significant role in corneal cell damage and collagen degradation.
- MIP-133 is a promising immunotherapeutic target for Acanthamoeba keratitis.
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