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Updated: May 5, 2026

Deciphering the Molecular Mechanism and Function of Pore-Forming Toxins Using Leishmania major
Published on: October 28, 2022
Killing machines: three pore-forming proteins of the immune system
Ryan McCormack1, Lesley de Armas, Motoaki Shiratsuchi
1Department of Microbiology and Immunology, Leonard Miller School of Medicine, University of Miami, Miami, FL, USA.
Abstract:
The evolution of early multicellular eukaryotes 400-500 million years ago required a defensive strategy against microbial invasion. Pore-forming proteins containing the membrane-attack-complex-perforin (MACPF) domain were selected as the most efficient means to destroy bacteria or virally infected cells. The mechanism of pore formation by the MACPF domain is distinctive in that pore formation is purely physical and unspecific. The MACPF domain polymerizes, refolds, and inserts itself into bilayer membranes or bacterial outer cell walls. The displacement of surface lipid/carbohydrate molecules by the polymerizing MACPF domain creates clusters of large, water-filled holes that destabilize the barrier function and provide access for additional anti-bacterial or anti-viral effectors to sensitive sites that complete the destruction of the invader via enzymatic or chemical attack. The highly efficient mechanism of anti-microbial defense by a combined physical and chemical strategy using pore-forming MACPF-proteins has been retargeted during evolution of vertebrates and mammals for three purposes: (1) to kill extracellular bacteria C9/polyC9 evolved in conjunction with complement, (2) to kill virus infected and cancer cells perforin-1/polyperforin-1 CTL evolved targeted by NK and CTL, and (3) to kill intracellular bacteria transmembrane perforin-2/putative polyperforin-2 evolved targeted by phagocytic and nonphagocytic cells. Our laboratory has been involved in the discovery and description of each of the three pore-formers that will be reviewed here.
Insights
Early eukaryotes developed membrane-attack-complex-perforin (MACPF) proteins for defense against microbes. These pore-forming proteins evolved into three distinct types in vertebrates for immunity against bacteria and infected cells.
Area of Science:
- Immunology
- Evolutionary Biology
- Cell Biology
Background:
- Multicellular eukaryotes evolved defense mechanisms against microbial invasion ~400-500 million years ago.
- Pore-forming proteins with the membrane-attack-complex-perforin (MACPF) domain provided an efficient antimicrobial defense strategy.
- The MACPF domain's mechanism involves physical pore formation and insertion into membranes, destabilizing invaders.
Purpose of the Study:
- To review the discovery and function of three key pore-forming MACPF proteins in vertebrate immunity.
- To highlight the evolutionary retargeting of MACPF proteins for specific defensive roles.
Main Methods:
- Review of existing literature and laboratory's own discoveries.
- Description of the MACPF domain's polymerization, refolding, and membrane insertion mechanism.
- Analysis of the distinct roles of C9/polyC9, perforin-1/polyperforin-1, and transmembrane perforin-2/putative polyperforin-2.
Main Results:
- MACPF proteins evolved into three specialized forms in vertebrates.
- C9/polyC9 targets extracellular bacteria in conjunction with complement.
- Perforin-1/polyperforin-1 targets virus-infected and cancer cells, while transmembrane perforin-2 targets intracellular bacteria.
Conclusions:
- The ancient MACPF pore-forming mechanism was adapted for diverse immune functions in vertebrates.
- This evolutionary adaptation provides a combined physical and chemical defense strategy against various pathogens.
- The reviewed MACPF proteins represent critical components of innate and adaptive immunity.
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