Serotype composition of Streptococcus pneumoniae in children with respiratory infections, optimization of molecular assessment methods
https://doi.org/10.37489/0235-2990-2021-66-11-12-18-24
Abstract
The paper presents optimized methods for PCR and sequence typing of Streptococcus pneumoniae. The serotype composition of pneumococci isolated from children under 5 years of age with infections of the upper respiratory tract was analyzed using optimized methods. Between 2016 and 2021, there was a decrease in the frequency of serotypes included in the pneumococcal 13-valent conjugate vaccine (PCV13) from 94.1 to 25.8%, mainly due to the 6ABCD serogroup and the 19F serotype. The coverage of serotypes circulating in children with PCV15 and PCV20 vaccines was 28.1% and 41.6% in 2021, respectively. During the study period, the number of non-vaccine serogroups 11AD and 15AF, as well as serotypes that are not detected under this capsular PCR typing protocol, increased most significantly.
About the Authors
E. V. NikitinaRussian Federation
Ekaterina V. Nikitina — Ph. D. in biology
St. Petersburg
WOS Researcher ID: AAE-4032-2022.
Scopus Author ID: 57211941455
I. A. Tsvetkova
Russian Federation
Irina A.Tsvetkova — Ph. D. in biology
St. Petersburg
WOS Researcher ID: F-9426-2017.
Scopus Author ID: 57197832461
O. S. Kalinogorskaya
Russian Federation
Olga S. Kalinogorskaya — Ph. D. in medicine
St. Petersburg
WOS Researcher ID: AAW-3832-2020.
Scopus Author ID: 56525317800
V. V. Gostev
Russian Federation
Vladimir V. Gostev — Ph. D. in biology
St. Petersburg
WOS Researcher ID: P-1949-2016.
Scopus Author ID: 55614534400
S. S. Belanov
Finland
Sergey Belanov — Ph.D. in biology
Helsinki
A. S. Mokhov
Russian Federation
Alexey S. Mokhov
St. Petersburg
WOS Researcher ID: AAV-2943-2021.
Scopus Author ID: 57206484035
E. L. Kalisnikova
Russian Federation
Ekaterina L. Kalisnikova
St. Petersburg
V. A. Ageevets
Russian Federation
Vladimir A. Ageevets — Ph. D. in biology
Saint Petersburg
WOS Researcher ID: F-9282-2017.
Scopus Author ID: 55949608900
D. P. Gladin
Russian Federation
Dmitry P. Gladin — Ph. D. in medicine
Saint Petersburg
Scopus Author ID: 6603374770
S. V. Sidorenko
Russian Federation
Sergey V. Sidorenko — D. Sc. in medicine, Professor
St. Petersburg
WOS Researcher ID: E-5870-2011.
Scopus Author ID: 7102484509
References
1. Simell B., Auranen K., Kayhty H., Goldblatt D., Dagan R, O'Brien K.L. et al. The fundamental link between pneumococcal carriage and disease. Expert Rev Vaccines. 2012; 11: 841–855.
2. Howard L.M., Zhu Y., Griffin M.R., Edwards K.M., Williams J.V., Gil A.I. et al. Nasopharyngeal Pneumococcal Density during Asymptomatic Respiratory Virus Infection and Risk for Subsequent Acute Respiratory Illness. Emerg Infect Dis. 2019; 25: 2040–2047.
3. Whitney C.G., Farley M.M., Hadler J., Harrison L.H., Bennett N.M., Lynfield R. et al. Decline in invasive pneumococcal disease after the introduction of protein-polysaccharide conjugate vaccine. N Engl J Med. 2003; 348: 1737–1746.
4. Ganaie F., Saad J.S., McGee L., van Tonder A.J., Bentley S.D., Lo S.W. et al. A new pneumococcal capsule type, 10D, is the 100th serotype and has a large cps fragment from an oral Streptococcus. mBio. 2020; 11 (3): e00937–20. doi: 10.1128/mBio.00937-20.
5. Geno K.A., Gilbert G.L., Song J.Y., Skovsted I.C., Klugman K.P., Jones C. et al. Pneumococcal capsules and their types: past, present, and future. clinical microbiology reviews. 2015; 28: 871–899.
6. Weinberger D.M., Malley R., Lipsitch M. Serotype replacement in disease after pneumococcal vaccination. Lancet. 2011; 378: 1962–1673.
7. Bentley S.D., Aanensen D.M., Mavroidi A., Saunders D., Rabbinowitsch E., Collins M. et al. Genetic analysis of the capsular biosynthetic locus from all 90 pneumococcal serotypes. PLoS Genet. 2006; 2: e31.
8. Brito D.A., Ramirez M., de Lencastre H. Serotyping Streptococcus pneumoniae by multiplex PCR. J Clin Microbiol. 2003; 41: 2378–2384.
9. Kong F., Wang W., Tao J., Wang L., Wang Q., Sabananthan A. et al. A molecular-capsular-type prediction system for 90 Streptococcus pneumoniae serotypes using partial cpsA-cpsB sequencing and wzy- or wzx-specific PCR. J Med Microbiol. 2005; 54: 351–356.
10. Lawrence E.R., Griffiths D.B., Martin S.A., George R.C., Hall L.M. Evaluation of semiautomated multiplex PCR assay for determination of Streptococcus pneumoniae serotypes and serogroups. J Clin Microbiol. 2003; 41: 601–607.
11. O'Halloran D.M., Cafferkey M.T. Multiplex PCR for identification of seven Streptococcus pneumoniae serotypes targeted by a 7-valent conjugate vaccine. J Clin Microbiol. 2005; 43: 3487–3490.
12. Pai R., Gertz R.E., Beall B. Sequential multiplex PCR approach for determining capsular serotypes of Streptococcus pneumoniae isolates. J Clin Microbiol. 2006; 44: 124–131.
13. Conventional PCR deduction of 40 pneumococcal serotypes or serogroups. Available at: http://www.cdc.gov/streplab/pcr.html (Accessed 02.09.2020).
14. Leung M.H., Bryson K., Freystatter K., Pichon B., Edwards G., Charalambous B.M. et al. Sequetyping: serotyping Streptococcus pneumoniae by a single PCR sequencing strategy. J Clin Microbiol. 2012; 50: 2419–2427.
15. Kalinogorskaya O.S., Volkova M.O., Belanov S.S., Gostev V.V., Sidorenko SV.. Antibiotikorezistentnost' i serotipovyj sostav Streptococcus pneumoniae, vydelennykh u detej v Sankt-Peterburge v 2010–2013 gg. Antibiotiki i khimioter. 2015; 60 (1–2): 10–18. (in Russian)]
16. http://www.biometrica.tomsk.ru/freq1.htm.
17. Levy C., Ouldali N., Caeymaex L., Angoulvant F., Varon E., Cohen R. Diversity of Serotype Replacement After Pneumococcal Conjugate Vaccine Implementation in Europe. J Pediatr. 2019; 213: 252–3 e3.
18. Tatochenko V., Sidorenko S., Namazova-Baranova L., Mayanskiy N., Kulichenko T., Baranov A. et al. Streptococcus pneumoniae serotype distribution in children in the Russian Federation before the introduction of pneumococcal conjugate vaccines into the National Immunization Program. Expert Rev Vaccines. 2014; 13: 257–264.
19. Sidorenko S., Rennert W., Lobzin Y., Briko N., Kozlov R., Namazova-Baranova L. et al. Multicenter study of serotype distribution of Streptococcus pneumoniae nasopharyngeal isolates from healthy children in the Russian Federation after introduction of PCV13 into the National Vaccination Calendar. Diagnostic Microbiology and Infectious Disease. 2020; 96: 114914.
20. Mayanskiy N., Kulichenko T., Alyabieva N., Brzhozovskaya E., Ponomarenko O., Savinova T. et al. Changing serotype distribution and resistance patterns among pediatric nasopharyngeal pneumococci collected in Moscow, 2010–2017. Diagn Microbiol Infect Dis. 2019; 94 (4): 389–390. doi: 10.1016/j.diagmicrobio.2019.02.010.
21. Nagaraj G., Ganaie F., Govindan V., Ravikumar K.L. Development of PCRSeqTyping-a novel molecular assay for typing of Streptococcus pneumoniae. Pneumonia (Nathan). 2017; 9: 8.
Review
For citations:
Nikitina E.V., Tsvetkova I.A., Kalinogorskaya O.S., Gostev V.V., Belanov S.S., Mokhov A.S., Kalisnikova E.L., Ageevets V.A., Gladin D.P., Sidorenko S.V. Serotype composition of Streptococcus pneumoniae in children with respiratory infections, optimization of molecular assessment methods. Antibiot Khimioter = Antibiotics and Chemotherapy. 2021;66(11-12):18-24. (In Russ.) https://doi.org/10.37489/0235-2990-2021-66-11-12-18-24