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Using a Bacterial Pathogen to Probe for Cellular and Organismic-level Host Responses
Published on: February 22, 2019
Clinical laboratory response to a mock outbreak of invasive bacterial infections: a preparedness study
Randall J Olsen1, Nahuel Fittipaldi2, Priyanka Kachroo3
1Department of Pathology and Genomic Medicine, Houston Methodist Hospital, Houston, Texas, USA Center for Molecular and Translational Human Infectious Diseases Research, Houston Methodist Research Institute, Houston, Texas, USA rjolsen@houstonmethodist.org.
Abstract:
Large hospital-based clinical laboratories must be prepared to rapidly investigate potential infectious disease outbreaks. To challenge the ability of our molecular diagnostics laboratory to use whole-genome sequencing in a potential outbreak scenario and identify impediments to these efforts, we studied 84 invasive serotype emm59 group A streptococcus (GAS) strains collected in the United States. We performed a rapid-response exercise to the mock outbreak scenario using whole-genome sequencing, genome-wide transcript analysis, and mouse virulence studies. The protocol changes installed in response to the lessons learned were tested in a second iteration. The initial investigation was completed in 9 days. Whole-genome sequencing showed that the invasive infections were caused by multiple subclones of epidemic emm59 GAS strains likely spread to the United States from Canada. The phylogenetic tree showed a strong temporal-spatial structure with diversity in mobile genetic element content, features that are useful for identifying closely related strains and possible transmission events. The genome data informed the epidemiology, identifying multiple patients who likely acquired the organisms through direct person-to-person transmission. Transcriptome analysis unexpectedly revealed significantly altered expression of genes encoding a two-component regulator and the hyaluronic acid capsule virulence factor. Mouse infection studies confirmed a high-virulence capacity of these emm59 organisms. Whole-genome sequencing, coupled with transcriptome analysis and animal virulence studies, can be rapidly performed in a clinical environment to effectively contribute to patient care decisions and public health maneuvers.
Insights
Rapid whole-genome sequencing of invasive group A streptococcus (GAS) strains identified an outbreak linked to Canada. This molecular diagnostics approach aids public health by tracking transmission and guiding patient care.
Area of Science:
- Clinical microbiology
- Genomics
- Infectious disease epidemiology
Background:
- Hospital laboratories require rapid methods for infectious disease outbreak investigation.
- Whole-genome sequencing (WGS) offers potential for outbreak analysis but requires validation in clinical settings.
Purpose of the Study:
- To evaluate the feasibility and effectiveness of WGS in a simulated outbreak scenario involving invasive serotype emm59 group A streptococcus (GAS).
- To identify challenges and improvements for rapid molecular diagnostics in clinical outbreak response.
Main Methods:
- A rapid-response exercise using WGS, genome-wide transcript analysis, and mouse virulence studies on 84 invasive emm59 GAS strains.
- A two-iteration protocol refinement based on lessons learned from the initial investigation.
Main Results:
- The initial investigation was completed in 9 days.
- WGS revealed multiple subclones of emm59 GAS, suggesting spread from Canada to the US, with phylogenetic analysis indicating temporal-spatial structure and mobile genetic element diversity.
- Transcriptome analysis showed altered expression of key virulence-associated genes, and mouse studies confirmed high virulence.
Conclusions:
- WGS, transcriptomics, and virulence studies can be rapidly implemented in clinical laboratories.
- This integrated approach effectively aids public health decision-making and patient care during infectious disease outbreaks.
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