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Excessive C5 conversion prevents C9 polymerisation and subsequent MAC-dependent killing of Klebsiella pneumoniae
Kulsum M Dawoodbhoy1, Coco R Beudeker1,2, Panagiotis Theofilidis1
1Department of Medical Microbiology, University Medical Center Utrecht, Utrecht, The Netherlands.
Abstract:
Membrane Attack Complex (MAC) pores are important in the human innate immune response to directly kill pathogenic Gram-negative bacteria. MAC pores assemble when complement proteins in serum are activated on bacteria and convert complement protein C5 into C5b, which together with C6, C7, C8, and multiple copies of C9 form a pore that damages the bacterial envelope. Due to rising multidrug-resistant infections with Gram-negative pathogen Klebsiella pneumoniae (Kpn), there is interest in developing complement-activating monoclonal antibodies (mAbs) that trigger MAC-dependent killing. However, some Kpn strains resist MAC-dependent killing in serum despite potent complement activation and C5 conversion, revealing a critical gap in understanding how these strains resist MAC-dependent killing. We demonstrate that Kpn strains can resist MAC-dependent killing through a paradoxical mechanism of excessively converting C5, which limits C9 polymerisation and subsequent killing. In these strains, spiking serum with supplementary C9 restored killing. Additionally, partially inhibiting C5 conversion using complement inhibitors increased C9 polymerisation and subsequent killing. This suggests that these Kpn strains are in principle sensitive to MAC-dependent killing, but an imbalance between generated C5b and available C9 in serum limits C9 polymerisation and prevents killing. We also observed this paradoxical effect with an of excess complement-activating mAbs on Kpn strains that are typically susceptible to MAC-dependent killing in serum. Excessive C5 conversion was responsible for this reduced killing, as supplementary C9 restored killing. Lastly, in neonatal plasma, where C9 is naturally limited, complement-activating mAbs induced killing of Kpn only in the presence of supplementary C9. Our study highlights that the balance between C5 conversion and available C9 is important for MAC-dependent killing of Kpn. Additionally, absence of killing in serum does not necessarily indicate that Kpn strains are MAC-resistant. These insights are important for interpreting mAb efficacy in serum bactericidal assays and in complement-deficient populations.
Insights
Excessive complement activation paradoxically hinders bacterial killing by limiting C9 polymerization. Supplementing C9 or inhibiting C5 conversion restores Membrane Attack Complex (MAC) pore formation and bacterial death, crucial for understanding antimicrobial therapies.
Area of Science:
- Immunology
- Microbiology
- Molecular Biology
Background:
- The Membrane Attack Complex (MAC) is vital for innate immunity against Gram-negative bacteria.
- Multidrug-resistant *Klebsiella pneumoniae* (Kpn) necessitates novel therapeutic strategies, including complement-activating monoclonal antibodies (mAbs).
- Some Kpn strains resist MAC-dependent killing despite complement activation, indicating unknown resistance mechanisms.
Purpose of the Study:
- Investigate the paradoxical resistance of Kpn to MAC-dependent killing.
- Elucidate the role of C5 conversion and C9 polymerization in MAC-mediated bacterial lysis.
- Determine the impact of C9 availability on mAb efficacy against Kpn.
Main Methods:
- Assessed MAC-dependent killing of Kpn strains in serum and neonatal plasma.
- Manipulated C5 conversion and C9 levels by adding C9 or complement inhibitors.
- Evaluated the effect of excess complement-activating mAbs on Kpn killing.
Main Results:
- Kpn strains resist MAC-dependent killing via excessive C5 conversion, which limits C9 polymerization.
- Supplementing C9 or partially inhibiting C5 conversion restored Kpn killing.
- Excessive mAb-induced C5 conversion also impaired Kpn killing, rescued by supplementary C9.
- Kpn killing in neonatal plasma required supplementary C9.
Conclusions:
- The balance between C5 conversion and C9 availability is critical for effective MAC-dependent killing of Kpn.
- Absence of killing in serum assays does not always imply MAC resistance.
- These findings are crucial for interpreting mAb efficacy and understanding complement function in various clinical contexts.
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