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Bardoel, B. W.

Publications and source records attributed to Bardoel, B. W..

2 recordsLinked to original sources

Outer membrane permeabilization by the membrane attack complex sensitizes Gram-negative bacteria to antimicrobial proteins in serum and phagocytes

Infections with Gram-negative bacteria form an increasing risk for human health, which is mainly due to the increase in antibiotic resistance. The cell envelope of Gram-negative bacteria consists of an inner membrane, a peptidoglycan layer and an outer membrane, which forms an impermeable barrier to many antibiotics and antimicrobial proteins. The complement system is an important factor of the human immune system that can efficiently kill Gram-negative bacteria via the formation of large pores in the bacterial outer membrane, called Membrane Attack Complexes (MACs). To better understand how these MAC pores damage the complex cell envelope of Gram-negative bacteria, we recently developed a fluorescent reporter system to study membrane damage in E. coli. Here, we used a similar experimental setup in combination with flow cytometry, confocal microscopy and conventional plating assays to elucidate how different components of the immune system act synergistically to effectively clear invading bacteria. We demonstrate how MAC-dependent outer membrane damage enhances the susceptibility of E. coli to further degradation of the cell envelope by lysozyme, leading to drastic changes in the morphology of these bacteria. Furthermore, we elucidate that the MAC enhances the susceptibility of E. coli to phospholipases, and to degradation and killing inside human neutrophils. Altogether, this study provides a detailed overview on how different players of the human immune system work closely together to degrade the complex cell envelope of Gram-negative bacteria. This knowledge may facilitate the development of new antimicrobials that could stimulate, or work synergistically with the immune system.

immunology

Bacterial killing by complement requires direct anchoring of Membrane Attack Complex precursor C5b-7

An important effector function of the human complement system is to directly kill Gram-negative bacteria via Membrane Attack Complex (MAC) pores. MAC pores are assembled when surface-bound convertase enzymes convert C5 into C5b, which together with C6, C7, C8 and multiple copies of C9 forms a transmembrane pore that damages the bacterial cell envelope. Recently, we found that bacterial killing by MAC pores requires local conversion of C5 by surface-bound convertases. In this study we aimed to understand why local assembly of MAC pores is essential for bacterial killing. Here, we show that rapid interaction of C7 with C5b6 is required to form bactericidal MAC pores. Binding experiments with fluorescently labelled C6 show that C7 prevents release of C5b6 from the bacterial surface. Moreover, trypsin shaving experiments and atomic force microscopy revealed that this rapid interaction between C7 and C5b6 is crucial to efficiently anchor C5b-7 to the bacterial cell envelope and form complete MAC pores. Using complement-resistant clinical E. coli strains, we show that bacterial pathogens can prevent complement-dependent killing by interfering with the anchoring of C5b-7. While C5 convertase assembly was unaffected, these resistant strains blocked efficient anchoring of C5b-7 and thus prevented stable insertion of MAC pores into the bacterial cell envelope. Altogether, these findings provide basic molecular insights into how bactericidal MAC pores are assembled and how bacteria evade MAC-dependent killing.

immunology