Related Experiment Video
Updated: Apr 23, 2026

Experimental Human Pneumococcal Carriage
Published on: February 15, 2013
PCV7-induced changes in pneumococcal carriage and invasive disease burden in Alaskan children
James W Keck1, Jay D Wenger2, Dana L Bruden2
1Epidemic Intelligence Service, Centers for Disease Control and Prevention, 600 Clifton Rd Atlanta, GA 30333, USA; Arctic Investigations Program, Centers for Disease Control and Prevention, 4055 Tudor Centre Dr., Anchorage, AK 99508, USA.
Insights
Pneumococcal conjugate vaccine (PCV7) significantly reduced invasive pneumococcal disease (IPD) by nearly eliminating highly invasive serotypes. Serotype invasiveness ratios remained largely unchanged, suggesting continued declines in IPD with newer vaccines like PCV13.
Area of Science:
- Epidemiology
- Vaccinology
- Microbiology
Background:
- Pneumococcal conjugate vaccines (PCVs) impact serotype epidemiology.
- Understanding changes in pneumococcal carriage and invasive pneumococcal disease (IPD) post-PCV7 is crucial for future vaccine strategies.
Purpose of the Study:
- To evaluate changes in pneumococcal serotype-specific carriage and invasiveness ratios (IR) in Alaska children <5 years old after PCV7 introduction.
- To assess the impact of PCV7 on IPD burden and serotype distribution.
Main Methods:
- Utilized statewide IPD surveillance and carriage study data from Alaska (1996-2009).
- Calculated serotype-specific invasiveness ratios (IR) comparing pre-PCV7 (1996-2000) and post-PCV7 (2006-2009) periods.
- Analyzed changes in carriage prevalence, IPD incidence, and serotype invasiveness.
Main Results:
- IPD incidence decreased by 40% post-PCV7, with a 99% reduction in PCV7 serotype disease.
- Carriage prevalence remained stable, but PCV7 serotype carriage decreased significantly, with a rise in non-vaccine serotypes.
- Relatively invasive serotypes (IR>1) continued to cause a majority of IPD, though their number decreased post-vaccination.
Conclusions:
- PCV7 introduction led to minimal changes in serotype invasiveness ratios but nearly eliminated the most invasive serotypes.
- Further reductions in overall IPD rates are anticipated with the use of PCV13, targeting additional serotypes.
Background:
Changes in pneumococcal serotype-specific carriage and invasive pneumococcal disease (IPD) after the introduction of pneumococcal conjugate vaccine (PCV7) could inform serotype epidemiology patterns following the introduction of newer conjugate vaccines.
Methods:
We used data from statewide IPD surveillance and annual pneumococcal carriage studies in four regions of Alaska to calculate serotype-specific invasiveness ratios (IR; odds ratio of a carried serotype's likelihood to cause invasive disease compared to other serotypes) in children <5 years of age. We describe changes in carriage, disease burden, and invasiveness between two time periods, the pre-PCV7 period (1996-2000) and the late post-PCV7 period (2006-2009).
Results:
Incidence of IPD decreased from the pre- to post-vaccine period (95.7 vs. 57.2 cases per 100,000 children, P<0.001), with a 99% reduction in PCV7 disease. Carriage prevalence did not change between the two periods (49% vs. 50%), although PCV7 serotype carriage declined by 97%, and non-vaccine serotypes increased in prevalence. Alaska pre-vaccine IRs corresponded to pooled results from eight pre-vaccine comparator studies (Spearman's rho=0.44, P=0.002) and to the Alaska post-vaccine period (Spearman's rho=0.28, P=0.029). Relatively invasive serotypes (IR>1) caused 66% of IPD in both periods, although fewer serotypes with IR>1 remained in the post-vaccine (n=9) than the pre-vaccine period (n=13).
Conclusions:
After PCV7 introduction, serotype IRs changed little, and four of the most invasive serotypes were nearly eliminated. If PCV13 use leads to a reduction of carriage and IPD for the 13 vaccine serotypes, the overall IPD rate should further decline.
Note:
The findings and conclusions in this report are those of the author(s) and do not necessarily represent the official position of the Centers for Disease Control and Prevention.
More Related Videos
11:32Following in Real Time the Impact of Pneumococcal Virulence Factors in an Acute Mouse Pneumonia Model Using Bioluminescent Bacteria
Published on: February 23, 2014
12:21A Mouse Model for the Transition of Streptococcus pneumoniae from Colonizer to Pathogen upon Viral Co-Infection Recapitulates Age-Exacerbated Illness
Published on: September 28, 2022
Related Concept Videos
Pneumonia I: Introduction
Pneumonia I: Introduction
Risk Factors
Various factors influence the likelihood of developing pneumonia. Age plays a crucial role, with infants, children under two, and individuals over 65 at increased risk due to their...
Atypical Pneumonia
Pneumonia II: Pathophysiology
Pneumonia III: Complications and Assessment
Bacterial Meningitis II: Pathophysiology