Active Cells, Biochemistry & Physiology Infection & Immunity

How does complement activation kill pathogenic bacteria?

In plain English

AI plain-English summary

The human immune system punches holes in bacteria using a protein complex called the membrane attack complex (MAC), but no one knows exactly how those holes manage to kill the cell. This matters because MAC is the immune system’s last-resort weapon against Gram-negative bacteria—pathogens like *E. coli* and *Klebsiella* that cause sepsis and hospital-acquired infections. The problem is a geometric puzzle: MAC pores are too shallow to span the bacterial envelope, which has two lipid membranes separated by a peptidoglycan layer. The researchers suspect the answer lies in how pores cluster and how the local envelope structure changes under attack. They will build artificial cell mimics to test this, combining cryo-electron microscopy with single-molecule imaging. If this research succeeds, it will reveal why some bacteria resist MAC killing—a gap in fundamental understanding that currently limits efforts to restore or enhance this natural immune mechanism. This is fundamental science: the immediate payoff is a clearer picture of how our own bodies work. But historically, understanding immune pores has led directly to therapies for complement-driven diseases, and knowing how bacteria evade them could eventually inform new antibiotics or immune-boosting treatments.

View original technical description
The complement membrane attack complex (MAC) is a human immune pore that directly kills Gram-negative bacteria. The bacterial envelope of these pathogens is composed of two lipid bilayers separated by a peptidoglycan layer. MAC pores must be locally assembled on the outer membrane by the C5 convertase to rupture both membranes and directly lyse cells. While structures of MAC show how the pore forms in a single lipid bilayer, the dimensions of the complex are incompatible with the depth of the bacterial cell envelope. Here we propose that the key for MAC’s bactericidal activity hinges on the local structure of the envelope and the clustering of pores. We will exploit a platform of novel artificial cell mimics to identify the fundamental determinants of bacterial killing. By integrating structural information from cryo electron microscopy with dynamic information from single molecule imaging we will address two central questions in innate immunity: 1) where is MAC located in the context of the cell envelope and 2) how does the C5 convertase control local clustering of MAC. In doing so, our results will provide a foundation for understanding why some bacteria are resistant to killing by MAC.

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Researchers

Doryen Bubeck (EPMC Awardee)Mark Wallace (EPMC Awardee)

Related Research

Grants with similar aims, by meaning.

Dynamics of bacterial killing by the membrane attack complex
Communication within the membrane during complement activation
Structural basis of controlling the membrane attack complex
Structural investigation of protein:protein interactions within the membrane attack complex of complement
Molecular analysis of complement activation via the classical pathway

Original classification

Investigator Award in Science

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