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Published on: December 28, 2017
Whole genome sequencing of meticillin-resistant Staphylococcus aureus
1Hiramatsu, Department of Bacteriology, Juntendo University, 2-1-1 Hongo, Bunkyo-ku, 113-8421, Tokyo, Japan.
Background:
Staphylococcus aureus is one of the major causes of community-acquired and hospital-acquired infections. It produces numerous toxins including superantigens that cause unique disease entities such as toxic-shock syndrome and staphylococcal scarlet fever, and has acquired resistance to practically all antibiotics. Whole genome analysis is a necessary step towards future development of countermeasures against this organism.
Methods:
Whole genome sequences of two related S aureus strains (N315 and Mu50) were determined by shot-gun random sequencing. N315 is a meticillin-resistant S aureus (MRSA) strain isolated in 1982, and Mu50 is an MRSA strain with vancomycin resistance isolated in 1997. The open reading frames were identified by use of GAMBLER and GLIMMER programs, and annotation of each was done with a BLAST homology search, motif analysis, and protein localisation prediction.
Findings:
The Staphylococcus genome was composed of a complex mixture of genes, many of which seem to have been acquired by lateral gene transfer. Most of the antibiotic resistance genes were carried either by plasmids or by mobile genetic elements including a unique resistance island. Three classes of new pathogenicity islands were identified in the genome: a toxic-shock-syndrome toxin island family, exotoxin islands, and enterotoxin islands. In the latter two pathogenicity islands, clusters of exotoxin and enterotoxin genes were found closely linked with other gene clusters encoding putative pathogenic factors. The analysis also identified 70 candidates for new virulence factors.
Interpretation:
The remarkable ability of S aureus to acquire useful genes from various organisms was revealed through the observation of genome complexity and evidence of lateral gene transfer. Repeated duplication of genes encoding superantigens explains why S aureus is capable of infecting humans of diverse genetic backgrounds, eliciting severe immune reactions. Investigation of many newly identified gene products, including the 70 putative virulence factors, will greatly improve our understanding of the biology of staphylococci and the processes of infectious diseases caused by S aureus.
Insights
Whole genome analysis of Staphylococcus aureus reveals its remarkable ability to acquire genes, contributing to antibiotic resistance and virulence. This study identified new pathogenicity islands and potential virulence factors, aiding in understanding S. aureus infections.
Area of Science:
- Microbiology
- Genomics
- Infectious Diseases
Background:
- Staphylococcus aureus is a significant cause of both community and hospital-acquired infections.
- It produces toxins like superantigens, leading to diseases such as toxic-shock syndrome and staphylococcal scarlet fever.
- S. aureus has developed resistance to most antibiotics, necessitating further research.
Purpose of the Study:
- To perform whole genome analysis of Staphylococcus aureus to understand its genetic makeup and virulence.
- To identify genes and mechanisms contributing to antibiotic resistance and pathogenicity.
- To lay the groundwork for developing countermeasures against S. aureus infections.
Main Methods:
- Whole genome sequencing of two related S. aureus strains (N315 and Mu50) using shot-gun random sequencing.
- Identification of open reading frames using GAMBLER and GLIMMER programs.
- Annotation through BLAST homology search, motif analysis, and protein localization prediction.
Main Results:
- The S. aureus genome contains a complex mix of genes, with evidence of lateral gene transfer.
- Antibiotic resistance genes are located on plasmids or mobile genetic elements, including a unique resistance island.
- Three new classes of pathogenicity islands were identified: toxic-shock-syndrome toxin, exotoxin, and enterotoxin islands, with linked pathogenic factors. 70 candidate virulence factors were also identified.
Conclusions:
- S. aureus exhibits a remarkable capacity for gene acquisition via lateral gene transfer, contributing to its genome complexity.
- Gene duplication, particularly for superantigens, explains S. aureus's ability to cause severe immune reactions in diverse hosts.
- Further investigation of newly identified gene products, including 70 putative virulence factors, will enhance understanding of staphylococcal biology and infectious diseases.
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