Functional significance of factor H binding to Neisseria meningitidis

Muriel C Schneider1, Rachel M Exley, Hannah Chan

  • 1Centre for Molecular Microbiology and Infection, Imperial College London, UK.

Insights

Neisseria meningitidis evades immune defenses by binding factor H (fH), a complement regulator. This binding helps the bacteria survive in the bloodstream and avoid complement-mediated killing.

Area of Science:

  • Microbiology
  • Immunology
  • Molecular Biology

Background:

  • Neisseria meningitidis causes septicemia and meningitis.
  • Bacterial survival in the bloodstream requires evading host innate immunity, especially the complement system.
  • Pathogenic microbes often bind factor H (fH) to evade complement-mediated killing.

Purpose of the Study:

  • To investigate whether Neisseria meningitidis binds factor H (fH).
  • To characterize the mechanism and consequences of fH binding to N. meningitidis.

Main Methods:

  • Flow cytometry (FACS) and Far Western blot analysis to detect fH binding.
  • Analysis of fH binding in the absence of other serum factors.
  • Characterization of the bacterial fH binding partner and investigation of porin involvement.

Main Results:

  • N. meningitidis serogroups A, B, and C were shown to bind human factor H (fH).
  • fH binding was independent of sialic acid and did not significantly involve porins A and B.
  • Bound fH retained its cofactor activity for factor I and contributed to resistance against complement-mediated killing.

Conclusions:

  • Neisseria meningitidis actively recruits factor H (fH) to its surface.
  • This fH binding is a mechanism for N. meningitidis to evade complement-mediated killing and innate immunity.
  • The findings highlight a novel immune evasion strategy employed by this important human pathogen.

Related Concept Videos

Bacterial Meningitis II: Pathophysiology01:26

Bacterial Meningitis II: Pathophysiology

Bacterial meningitis typically begins when pathogens such as Neisseria meningitidis and Streptococcus pneumoniae colonize the nasopharynx and invade the bloodstream. This process is facilitated by bacterial virulence factors, such as polysaccharide capsules, which resist phagocytosis and complement-mediated killing. Less commonly, bacteria reach the central nervous system via contiguous spread from infections like otitis media or sinusitis, through congenital or acquired dural defects, or...
Determinants of Bacterial Pathogenicity and Virulence01:20

Determinants of Bacterial Pathogenicity and Virulence

Pathogenic bacteria employ a variety of strategies to establish infections, including the secretion of extracellular enzymes that act as potent virulence factors. These enzymes facilitate bacterial colonization of host tissues and help evade immune surveillance. By targeting structural components of host tissues and interfering with immune mechanisms, these enzymes play a pivotal role in disease progression.Extracellular Enzymes Facilitating Tissue Invasion: Several bacterial pathogens secrete...
Bacterial Meningitis01:24

Bacterial Meningitis

Bacterial meningitis is a severe infectious disease involving inflammation of the meninges, the protective membranes surrounding the brain and spinal cord. It occurs when pathogenic bacteria cross the blood–brain barrier and enter the cerebrospinal fluid. Common causative organisms include Neisseria meningitidis, Streptococcus pneumoniae, Haemophilus influenzae type b, Listeria monocytogenes, and Escherichia coli K1. The exact route of entry varies by pathogen and host condition.Routes of Entry...
Fimbriae, Pili, and Axial Filaments01:28

Fimbriae, Pili, and Axial Filaments

Fimbriae and pili are specialized bacterial surface structures that play pivotal roles in adhesion, genetic exchange, and motility. Composed primarily of pilin protein, these hairlike appendages are crucial for bacterial survival and pathogenicity in various environments.Fimbriae: Adhesion and PathogenicityFimbriae are fine, filamentous structures measuring 2–10 nanometers in diameter and are densely distributed on the bacterial cell surface. They facilitate bacterial adhesion to abiotic...
NF-κB-dependent Signaling Pathway02:26

NF-κB-dependent Signaling Pathway

The transcription factor NF-κB was discovered in 1986 in the lab of Nobel laureate Professor David Baltimore, for its interaction with the immunoglobulin light chain enhancer in B-cells. After more than three decades of study, it is now evident that NF-κB regulates the expression of over 100 genes. Most of these genes play an essential role in the innate and adaptive immune responses as well as the inflammatory responses of animals.
NF-κB-dependent Signaling Mechanism
The heterodimer of NF-κB...
Regulation of Bacterial Virulence01:28

Regulation of Bacterial Virulence

Pathogenic bacteria employ a range of regulatory mechanisms to modulate the expression of virulence genes in response to environmental and host-derived signals. These mechanisms ensure that virulence factors are expressed only under favorable conditions, thereby optimizing infection and survival strategies.Mechanisms of Virulence RegulationKey regulatory strategies include:Two-Component Systems: These consist of a membrane-bound sensor kinase and a cytoplasmic response regulator. Environmental...