Related Experiment Video
Updated: Jan 7, 2026

Experimental Human Pneumococcal Carriage
Published on: February 15, 2013
Biofilm formation during pneumococcal carriage imprints naturally acquired humoral immunity
Jessica R Lane1, Henry Mauser1, Silvia E Santana-Krímskaya1
1Department of Microbiology, Heersink School of Medicine, The University of Alabama at Birmingham, Birmingham, Alabama, USA.
Abstract:
Streptococcus pneumoniae (Spn) colonization of the nasopharynx is a prerequisite for transmission and invasive disease. To investigate how repeated asymptomatic colonization shapes immunity and influences bacterial traits, we developed the Repeated Asymptomatic Murine Pneumococcal Colonization (RAMPC3) model using strains belonging to serotypes: 2 (D39), 3 (WU2), and 4 (TIGR4). Sequential colonization revealed strain- and exposure-order-dependent effects on bacterial burden, with initial colonization yielding robust carriage and subsequent exposures resulting in diminished burden and rapid clearance. Humoral profiling demonstrated antigenic imprinting: the first colonizing strain largely determined IgG and IgA specificity, with minimal diversification after repeated exposures. Reactivity was strongest for biofilm-associated antigens correlating with each strain's biofilm-forming capacity. Using TIGR4 mutants deficient in biofilm formation, we confirmed that in vivo aggregate formation drives humoral responses. Human sera from naturally colonized adults mirrored these findings, favoring biofilm antigens independent from capsule. Protection was demonstrated as triple-colonized mice exhibited reduced mortality and bacteremia following pneumococcal pneumonia challenge. Moreover, the initial colonizing strain influenced protection against heterologous infection, underscoring the lasting imprint of the biofilm phenotype on immunity. Finally, IgA responses in nasal-associated lymphoid tissue paralleled serum IgA patterns, validating systemic measurements as a proxy for mucosal immunity. Collectively, these results reveal that biofilm formation during colonization is a key determinant of humoral immunity and protection, providing insight into pneumococcal biology and informing strategies to design next-generation interventions.
Insights
Repeated Streptococcus pneumoniae colonization reveals biofilm formation drives immunity and protection. Initial colonization imprints immune responses, influencing future protection against pneumococcal disease.
Area of Science:
- Immunology
- Microbiology
- Bacterial Pathogenesis
Background:
- Nasopharyngeal colonization by Streptococcus pneumoniae (Spn) is essential for disease transmission.
- Understanding how repeated asymptomatic colonization impacts immunity and bacterial traits is crucial for developing effective interventions.
Purpose of the Study:
- To investigate the effects of repeated asymptomatic Spn colonization on host immunity and bacterial characteristics.
- To determine the role of biofilm formation in Spn colonization and immune responses.
Main Methods:
- Development of the Repeated Asymptomatic Murine Pneumococcal Colonization (RAMPC3) model using Spn serotypes 2, 3, and 4.
- Sequential colonization experiments, humoral profiling (IgG, IgA), and analysis of Spn mutants deficient in biofilm formation.
- Validation of findings using human sera from naturally colonized adults and assessment of protection against pneumococcal pneumonia challenge.
Main Results:
- Sequential colonization demonstrated strain- and exposure-order-dependent effects on bacterial burden and clearance.
- Humoral profiling revealed antigenic imprinting, with initial colonizing strains dictating immune specificity, particularly for biofilm antigens.
- Biofilm formation in vivo was confirmed to drive humoral responses, and triple-colonized mice showed reduced mortality and bacteremia.
Conclusions:
- Biofilm formation during Spn colonization is a key determinant of humoral immunity and protection.
- The initial colonizing strain and its biofilm phenotype significantly influence immune imprinting and protection against heterologous infection.
- Findings provide insights into Spn biology and inform the design of novel vaccines and therapeutics.
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