Design of Broadly Cross-Reactive M Protein-Based Group A Streptococcal Vaccines.
Animals
Antibodies, Bacterial
/ immunology
Antigens, Bacterial
/ immunology
Bacterial Outer Membrane Proteins
/ immunology
Bacterial Proteins
/ immunology
Carrier Proteins
/ immunology
Cross Reactions
/ immunology
Epitopes
/ immunology
Female
Humans
Male
Mice
Peptides
/ immunology
Streptococcal Vaccines
/ immunology
Vaccines, Synthetic
/ immunology
Journal
Journal of immunology (Baltimore, Md. : 1950)
ISSN: 1550-6606
Titre abrégé: J Immunol
Pays: United States
ID NLM: 2985117R
Informations de publication
Date de publication:
15 08 2021
15 08 2021
Historique:
received:
26
03
2021
accepted:
13
06
2021
pubmed:
4
8
2021
medline:
21
8
2021
entrez:
3
8
2021
Statut:
ppublish
Résumé
Group A streptococcal infections are a significant cause of global morbidity and mortality. A leading vaccine candidate is the surface M protein, a major virulence determinant and protective Ag. One obstacle to the development of M protein-based vaccines is the >200 different M types defined by the N-terminal sequences that contain protective epitopes. Despite sequence variability, M proteins share coiled-coil structural motifs that bind host proteins required for virulence. In this study, we exploit this potential Achilles heel of conserved structure to predict cross-reactive M peptides that could serve as broadly protective vaccine Ags. Combining sequences with structural predictions, six heterologous M peptides in a sequence-related cluster were predicted to elicit cross-reactive Abs with the remaining five nonvaccine M types in the cluster. The six-valent vaccine elicited Abs in rabbits that reacted with all 11 M peptides in the cluster and functional opsonic Abs against vaccine and nonvaccine M types in the cluster. We next immunized mice with four sequence-unrelated M peptides predicted to contain different coiled-coil propensities and tested the antisera for cross-reactivity against 41 heterologous M peptides. Based on these results, we developed an improved algorithm to select cross-reactive peptide pairs using additional parameters of coiled-coil length and propensity. The revised algorithm accurately predicted cross-reactive Ab binding, improving the Matthews correlation coefficient from 0.42 to 0.74. These results form the basis for selecting the minimum number of N-terminal M peptides to include in potentially broadly efficacious multivalent vaccines that could impact the overall global burden of group A streptococcal diseases.
Identifiants
pubmed: 34341168
pii: jimmunol.2100286
doi: 10.4049/jimmunol.2100286
pmc: PMC8355175
mid: NIHMS1716887
doi:
Substances chimiques
Antibodies, Bacterial
0
Antigens, Bacterial
0
Bacterial Outer Membrane Proteins
0
Bacterial Proteins
0
Carrier Proteins
0
Epitopes
0
Peptides
0
Streptococcal Vaccines
0
Vaccines, Synthetic
0
streptococcal M protein
0
Types de publication
Journal Article
Research Support, N.I.H., Extramural
Langues
eng
Sous-ensembles de citation
IM
Pagination
1138-1149Subventions
Organisme : NIAID NIH HHS
ID : R01 AI132117
Pays : United States
Informations de copyright
Copyright © 2021 by The American Association of Immunologists, Inc.
Références
Trends Microbiol. 2010 Jun;18(6):275-82
pubmed: 20347595
Curr Opin Infect Dis. 2020 Jun;33(3):244-250
pubmed: 32304470
J Mol Biol. 1970 Mar;48(3):443-53
pubmed: 5420325
Bioinformatics. 2002 Apr;18(4):617-25
pubmed: 12016059
J Infect Dis. 2014 Oct 15;210(8):1325-38
pubmed: 24799598
J Med Microbiol. 2019 Jul;68(7):1059-1071
pubmed: 31192782
mSphere. 2018 Dec 19;3(6):
pubmed: 30567901
J Exp Med. 1988 Mar 1;167(3):1114-23
pubmed: 2450950
Vaccine. 1999 Jan;17(2):193-200
pubmed: 9987154
Vaccine. 2011 Oct 26;29(46):8175-8
pubmed: 21920403
Vaccine. 2020 Feb 5;38(6):1384-1392
pubmed: 31843270
Circulation. 2020 Nov 17;142(20):e358-e368
pubmed: 33070654
Front Immunol. 2020 Oct 21;11:574330
pubmed: 33193361
Viruses. 2018 Mar 25;10(4):
pubmed: 29587397
PLoS One. 2020 Dec 17;15(12):e0244063
pubmed: 33332468
Vaccine. 2010 Jul 12;28(31):5017-22
pubmed: 20546830
Clin Microbiol Rev. 1989 Jul;2(3):285-314
pubmed: 2670192
Vaccine. 2017 Jan 3;35(1):19-26
pubmed: 27890396
J Infect Dis. 2000 Dec;182(6):1694-701
pubmed: 11069242
Curr Top Microbiol Immunol. 2013;368:1-27
pubmed: 23242849
Virulence. 2011 Sep-Oct;2(5):402-12
pubmed: 21852752
JAMA. 2004 Aug 11;292(6):709-15
pubmed: 15304468
Clin Infect Dis. 2017 Oct 16;65(9):1523-1531
pubmed: 29020160
J Immunol. 1962 Sep;89:307-13
pubmed: 14461914
Clin Infect Dis. 2005 Oct 15;41(8):1114-22
pubmed: 16163629
PLoS Pathog. 2015 Jul 22;11(7):e1005043
pubmed: 26200783
Infect Immun. 2004 May;72(5):2507-12
pubmed: 15102757
J Biol Chem. 2020 Mar 20;295(12):3826-3836
pubmed: 32029479
PLoS Negl Trop Dis. 2019 Jul 3;13(7):e0007511
pubmed: 31269021
Mol Biochem Parasitol. 2019 Dec;234:111231
pubmed: 31628972
Vaccine. 2021 Mar 19;39(12):1773-1779
pubmed: 33642159
J Clin Microbiol. 1996 Apr;34(4):953-8
pubmed: 8815115
Lancet Infect Dis. 2009 Oct;9(10):611-6
pubmed: 19778763
J Biol Chem. 1986 Feb 5;261(4):1677-86
pubmed: 3511046
Nat Microbiol. 2016 Sep 05;1(11):16155
pubmed: 27595425
J Exp Med. 2003 Oct 6;198(7):1057-68
pubmed: 14517274
J Mol Biol. 2001 Apr 13;307(5):1427-50
pubmed: 11292353
Lancet Infect Dis. 2003 Apr;3(4):191-200
pubmed: 12679262
Tuberculosis (Edinb). 2018 Mar;109:85-96
pubmed: 29559126
Mol Microbiol. 2006 Jan;59(1):20-30
pubmed: 16359315
Immunol Today. 1992 Sep;13(9):362-7
pubmed: 1281632
J Exp Med. 1959 Aug 1;110(2):271-92
pubmed: 13673139
Trends Microbiol. 2018 Feb;26(2):132-144
pubmed: 28867148