92
views
0
recommends
+1 Recommend
0 collections
    0
    shares
      • Record: found
      • Abstract: found
      • Article: not found

      Rise and Persistence of Global M1T1 Clone of Streptococcus pyogenes

      review-article

      Read this article at

      ScienceOpenPublisherPMC
      Bookmark
          There is no author summary for this article yet. Authors can add summaries to their articles on ScienceOpen to make them more accessible to a non-specialist audience.

          Abstract

          M1T1 strain, its diversification by phage acquisition, and the in vivo selection of more fit members of its community present an intriguing example of the emergence of hypervirulent forms of a human pathogen.

          Abstract

          The resurgence of severe invasive group A streptococcal infections in the 1980s is a typical example of the reemergence of an infectious disease. We found that this resurgence is a consequence of the diversification of particular strains of the bacteria. Among these strains is a highly virulent subclone of serotype M1T1 that has exhibited unusual epidemiologic features and virulence, unlike all other streptococcal strains. This clonal strain, commonly isolated from both noninvasive and invasive infection cases, is most frequently associated with severe invasive diseases. Because of its unusual prevalence, global spread, and increased virulence, we investigated the unique features that likely confer its unusual properties. In doing so, we found that the increased virulence of this clonal strain can be attributed to its diversification through phage mobilization and its ability to sense and adapt to different host environments; accordingly, the fittest members of this diverse bacterial community are selected to survive and invade host tissue.

          Related collections

          Most cited references27

          • Record: found
          • Abstract: found
          • Article: not found

          Genome-Wide Analysis of Group A Streptococci Reveals a Mutation That Modulates Global Phenotype and Disease Specificity

          Introduction Bacterial pathogens have long been recognized to undergo phenotypic variation (reviewed in [1]). Historically, interest in this phenomenon has been fueled by the observation that phenotypic variants can differ in pathogenesis characteristics, such as increased or decreased virulence, or adaptation to a particular anatomic site. Extensive work has been directed at elucidating the molecular genetic events that contribute to phenotypic variation, with antigenic variation being the best-studied category. With few exceptions, most studies have focused on analysis of a distinct phenotype such as adhesin production or lipooligosaccharide structural modification. Several molecular mechanisms have been documented to contribute to phenotypic variation, the most common being slipped-strand mispairing events that result in phase-variable expression of the associated gene [1]. The group A streptococci (GAS) cause many distinct human infections [2]. Disease manifestations range from mild infections such as pharyngitis (“strep throat”) and impetigo, to extensive tissue destruction in the case of necrotizing fasciitis (the “flesh-eating” syndrome). Postinfection sequelae such as rheumatic fever and glomerulonephritis can also occur. The mechanisms that enable GAS to cause diverse diseases are unknown, although both bacterial and host-specific components are thought to be involved [3]. Associated morphologic and virulence variation in GAS has been known for almost 90 y [4,5]. Classic studies identified GAS phenotypic variation during invasive and upper respiratory tract infections [4,6]. More recently, correlations have been reported between the source of GAS clinical isolates and their ability to invade human epithelial cells or secrete high concentrations of virulence factors such as streptococcal pyrogenic exotoxin A, B, and C (SpeA, SpeB, and SpeC), or streptolysin O (SLO) [7–9]. Such correlations have been observed for multiple GAS serotypes, including clonal contemporary serotype M1 GAS [10]. The idea that GAS phenotypic heterogeneity contributes to distinct disease manifestations is supported by the identification of inherited alterations in virulence factor production when GAS is passaged in human blood ex vivo or through mice [5,11–14]. Virulence factor production by GAS is regulated by stand-alone transcription factors and two-component signal transduction systems (TCSs) [15]. Thirteen TCSs have been described in GAS, of which the CovRS system (also known as CsrRS) is the best characterized. CovRS is a negative regulatory TCS that directly or indirectly influences expression of 10% to 15% of GAS genes, including several virulence factors [16–21]. Despite these advances, we have an imprecise understanding of the contribution of phenotypic variation to host–pathogen interactions in GAS, and the molecular mechanism(s) controlling this heterogeneity. Recently, genome-wide investigative strategies have been used successfully to provide new information about GAS population genetics, evolution, and pathogenesis [22]. Inasmuch as phenotypic variation in GAS may be a key component of the pathogen life cycle, we chose to investigate this phenomenon using genome-wide analytic strategies, including transcriptome profiling and genome resequencing. Here we report genome, transcriptome, and partial secretome differences that distinguish GAS isolated from invasive and pharyngeal infections and permit a heretofore unattainable understanding of phenotypic variation in a microbial pathogen. Results Transcriptome-Based Grouping of Serotype M1 GAS Strains The transcriptomes of nine contemporary (post-1987) serotype M1 GAS strains grown to early exponential phase in Todd-Hewitt broth with yeast extract (THY) were analyzed with an Affymetrix expression microarray. These nine strains included six from patients with pharyngitis and three from invasive disease episodes and were selected from approximately 2,000 genetically characterized serotype M1 strains [10]. Two very distinct transcriptome clusters were identified based on analysis of the microarray data (Figure 1A). The three invasive isolates formed one cluster termed an invasive transcriptome profile (ITP), and the six pharyngitis isolates formed a second cluster termed a pharyngeal transcriptome profile (PTP). The data imply that GAS strains cultured from patients with pharyngeal and invasive disease have distinct transcriptomes, which are retained upon in vitro growth. Analysis of differential gene expression between the two transcriptome profiles identified 89 genes that were statistically significant (t-test followed by a false discovery rate correction, Q 2-fold by ITP strains are colored red. Virulence factors/regulators transcribed >2-fold by PTP strains are colored blue. The emm gene, encoding the important virulence factor M protein, is highlighted yellow for reference. (155 KB PPT) Click here for additional data file. Figure S2 Schematic of Experiment Leading to Isolation of Mouse-Passaged GAS Derivatives PTP GAS (blue box, nonmucoid) or ITP GAS (red box, mucoid) were injected subcutaneously into mice. Five days after infection mice were euthanized and GAS isolated from spleens and skin lesions. ITP GAS were isolated from the spleens and skin lesions of all infected mice. GAS recovered from skin lesions of mice infected with PTP GAS had an approximately 1:1 ratio of ITP to PTP GAS. (9.2 MB PPT) Click here for additional data file. Figure S3 ITP Strains Secrete Increased NADase Activity Compared to PTP Strains NADase titers are shown on the y-axis, with different GAS strains shown on the x-axis. Color coding is as described for Figure 2B. The experiment was performed in duplicate and results identical to those shown were obtained on both occasions. NEG, negative controls. (29 KB PPT) Click here for additional data file. Figure S4 Correlation of Microarray Data between ITP/PTP GAS Isolated from Clinical Sources and following Mouse Passage The fold change in transcript levels (ITP relative to PTP) of 24 virulence-related genes from the clinical GAS microarray (Figure 1) and the mouse-passaged GAS microarray (Figure 2) were log-transformed and plotted against each other to evaluate their correlation. (44 KB PPT) Click here for additional data file. Protocol S1 Comparative Genomic Resequencing (27 KB DOC) Click here for additional data file. Table S1 Serotype M1 Group A Streptococcus Isolates Studied (95 KB DOC) Click here for additional data file. Accession Numbers Expression microarray data have been deposited at the Gene Expression Omnibus database at National Center for Biotechnology Information (http://www.ncbi.nlm.nih.gov/geo) and are accessible through accession numbers GSE3899 and GSE3900. The GenBank (http://www.ncbi.nlm.nih.gov) accession number for the whole genome sequence of strain MGAS5005 is CP000017.
            Bookmark
            • Record: found
            • Abstract: found
            • Article: not found

            Extracellular deoxyribonuclease made by group A Streptococcus assists pathogenesis by enhancing evasion of the innate immune response.

            Many pathogenic bacteria produce extracellular DNase, but the benefit of this enzymatic activity is not understood. For example, all strains of the human bacterial pathogen group A Streptococcus (GAS) produce at least one extracellular DNase, and most strains make several distinct enzymes. Despite six decades of study, it is not known whether production of DNase by GAS enhances virulence. To test the hypothesis that extracellular DNase is required for normal progression of GAS infection, we generated seven isogenic mutant strains in which the three chromosomal- and prophage-encoded DNases made by a contemporary serotype M1 GAS strain were inactivated. Compared to the wild-type parental strain, the isogenic triple-mutant strain was significantly less virulent in two mouse models of invasive infection. The triple-mutant strain was cleared from the skin injection site significantly faster than the wild-type strain. Preferential clearance of the mutant strain was related to the differential extracellular killing of the mutant and wild-type strains, possibly through degradation of neutrophil extracellular traps, innate immune structures composed of chromatin and granule proteins. The triple-mutant strain was also significantly compromised in its ability to cause experimental pharyngeal disease in cynomolgus macaques. Comparative analysis of the seven DNase mutant strains strongly suggested that the prophage-encoded SdaD2 enzyme is the major DNase that contributes to virulence in this clone. We conclude that extracellular DNase activity made by GAS contributes to disease progression, thereby resolving a long-standing question in bacterial pathogenesis research.
              Bookmark
              • Record: found
              • Abstract: found
              • Article: not found

              Invasive group A streptococcal infections in Ontario, Canada. Ontario Group A Streptococcal Study Group.

              Several reports suggest that the incidence of invasive group A streptococcal infections, including streptococcal toxic shock syndrome and necrotizing fasciitis, is increasing. During 1992 and 1993 we conducted prospective, population-based surveillance of invasive group A streptococcal disease in Ontario, Canada. We reviewed clinical and laboratory records, searched for secondary cases of invasive disease, and cultured specimens from household contacts. We identified 323 patients with invasive group A streptococcal infections, for an annual incidence of 1.5 cases per 100,000 population. The rates were highest in young children and the elderly. Fifty-six percent of the patients had underlying chronic illness. Risk factors for disease included infection with the human immunodeficiency virus, cancer, diabetes, alcohol abuse, and chickenpox. The most common clinical presentations were soft-tissue infection (48 percent), bacteremia with no septic focus (14 percent), and pneumonia (11 percent). Necrotizing fasciitis occurred in 6 percent of patients, and toxic shock in 13 percent. The mortality rate was 15 percent overall, but it was 29 percent among those over 64 years of age (P<0.001) and 81 percent among those with toxic shock (P<0.001). Fourteen percent of the cases were nosocomial, and 4 percent occurred in nursing home residents, often in association with disease outbreaks. Invasive disease occurred in 2 household contacts of patients with infection, for an estimated risk of 3.2 per 1000 household contacts (95 percent confidence interval, 0.39 to 12 per 1000). The elderly and those with underlying medical conditions are at greatest risk for invasive group A streptococcal disease, toxic shock, and necrotizing fasciitis. Invasive steptococcal infection is associated with a substantial risk of transmission in households and health care institutions.
                Bookmark

                Author and article information

                Journal
                Emerg Infect Dis
                EID
                Emerging Infectious Diseases
                Centers for Disease Control and Prevention
                1080-6040
                1080-6059
                October 2008
                : 14
                : 10
                : 1511-1517
                Affiliations
                [1]Cairo University, Cairo, Egypt (R.K. Aziz)
                [2]VA Medical Center, Memphis, Tennessee, USA (R.K. Aziz, M. Kotb)
                [3]University of Tennessee Health Science Center, Memphis (M. Kotb)
                [4]University of Cincinnati, Cincinnati, Ohio, USA (M. Kotb)
                Author notes
                Address for correspondence: Ramy K. Aziz, Department of Microbiology and Immunology, Faculty of Pharmacy, Cairo University, Kasr El-Aini St, 11562 Cairo, Egypt; email: ramy.aziz@ 123456salmonella.org
                Article
                07-1660
                10.3201/eid1410.071660
                2609857
                18826812
                0b2367c5-3317-4159-b6f1-8330dd2e44fa
                History
                Categories
                Perspective

                Infectious disease & Microbiology
                streptococcus pyogenes,m1t1 strain,epidemiology,phage mobilization,horizontal gene transfer,invasive,perspective,strain diversification,pathogenomics

                Comments

                Comment on this article