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.

Plos Pathogens
|May 11, 2026
PubMed

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.

Related Concept Videos

Inhibitors of Gram-positive Cell Wall Synthesis01:23

Inhibitors of Gram-positive Cell Wall Synthesis

Bacterial cell walls are typically rigid structures composed mainly of peptidoglycan, a mesh-like polymer that provides mechanical strength and maintains cell shape. The synthesis of peptidoglycan is a crucial process in bacterial growth and serves as a primary target for many antibiotics.Mechanism of Action of Beta-Lactam AntibioticsBeta-lactam antibiotics, such as penicillin, inhibit peptidoglycan synthesis in actively growing cells. These antibiotics share a characteristic four-membered...
Defense Against Bacterial Pathogens01:31

Defense Against Bacterial Pathogens

The human immune system is a complex network of cells, tissues, and organs that work together to defend the body against bacterial infections. It consists of various immune cells, each playing a specific role in the defense mechanism.
Phagocytes
Phagocytes are the frontline soldiers of the immune system. They include neutrophils and macrophages. Neutrophils are the most abundant type of white blood cell and are quickly mobilized to the site of infection. Macrophages are larger cells that patrol...
Mechanism of Antibiotic Resistance in MRSA01:25

Mechanism of Antibiotic Resistance in MRSA

Antibiotic resistance in bacteria arises when microorganisms evolve the ability to withstand drugs designed to kill them or inhibit their growth, rendering once-effective treatments useless. This phenomenon, driven by genetic change and selection under antibiotic exposure, poses a profound threat to modern medicine. Mechanisms include drug-inactivating enzymes (e.g., β-lactamases), efflux pumps that eject antibiotics, mutations altering antibiotic targets, decreased drug uptake, and acquisition...
Lysogenic Cycle of Bacteriophages00:43

Lysogenic Cycle of Bacteriophages

In contrast to the lytic cycle, phages infecting bacteria via the lysogenic cycle do not immediately kill their host cell. Instead, they combine their genome with the host genome, allowing the bacteria to replicate the phage DNA along with the bacterial genome. The incorporated copy of the phage genome is called the prophage. Some prophages can re-activate and enter the lytic cycle. This often occurs in response to a perturbation, such as DNA damage, but can also transpire in the absence of...
Amino Acid Catabolism01:18

Amino Acid Catabolism

Microorganisms rely on proteins as an essential carbon and energy source, particularly in environments with limited polysaccharides or lipids. However, proteins are too large to cross the plasma membrane unaided, necessitating enzymatic degradation. Microbes secrete extracellular proteases and peptidases that hydrolyze proteins into peptides, which can then be transported across the membrane. Once inside the cell, intracellular proteases degrade these peptides into free amino acids, which...
Clinical Significance of Antibiotic Resistance01:25

Clinical Significance of Antibiotic Resistance

Methicillin-resistant Staphylococcus aureus (MRSA) presents a critical public health threat, arising from its capacity to resist β-lactam antibiotics due to acquisition of the mecA gene within the staphylococcal cassette chromosome mec (SCCmec). This gene encodes penicillin-binding protein 2a (PBP2a), which impairs binding efficacy of methicillin and other β-lactams. MRSA has evolved into distinct clonal lineages impacting humans and animals alike, reinforcing its significance within the One...