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Updated: Oct 17, 2025

Using a Bacterial Pathogen to Probe for Cellular and Organismic-level Host Responses
Published on: February 22, 2019
Pathogen clonal expansion underlies multiorgan dissemination and organ-specific outcomes during murine systemic
Karthik Hullahalli1,2, Matthew K Waldor1,2
1Department of Microbiology, Harvard Medical School, Boston, United States.
Abstract:
The dissemination of pathogens through blood and their establishment within organs lead to severe clinical outcomes. However, the within-host dynamics that underlie pathogen spread to and clearance from systemic organs remain largely uncharacterized. In animal models of infection, the observed pathogen population results from the combined contributions of bacterial replication, persistence, death, and dissemination, each of which can vary across organs. Quantifying the contribution of each these processes is required to interpret and understand experimental phenotypes. Here, we leveraged STAMPR, a new barcoding framework, to investigate the population dynamics of extraintestinal pathogenic Escherichia coli, a common cause of bacteremia, during murine systemic infection. We show that while bacteria are largely cleared by most organs, organ-specific clearance failures are pervasive and result from dramatic expansions of clones representing less than 0.0001% of the inoculum. Clonal expansion underlies the variability in bacterial burden between animals, and stochastic dissemination of clones profoundly alters the pathogen population structure within organs. Despite variable pathogen expansion events, host bottlenecks are consistent yet highly sensitive to infection variables, including inoculum size and macrophage depletion. We adapted our barcoding methodology to facilitate multiplexed validation of bacterial fitness determinants identified with transposon mutagenesis and confirmed the importance of bacterial hexose metabolism and cell envelope homeostasis pathways for organ-specific pathogen survival. Collectively, our findings provide a comprehensive map of the population biology that underlies bacterial systemic infection and a framework for barcode-based high-resolution mapping of infection dynamics.
Insights
New barcoding technology reveals how extraintestinal pathogenic Escherichia coli spreads and persists in organs during infection. Organ-specific failures in bacterial clearance are driven by rare clone expansion, impacting disease severity.
Area of Science:
- Microbiology
- Infectious Diseases
- Systems Biology
Background:
- Pathogen dissemination via blood and organ colonization cause severe disease.
- Within-host pathogen dynamics, including spread and clearance, are poorly understood.
- Organ-specific bacterial replication, persistence, death, and dissemination influence infection outcomes.
Purpose of the Study:
- To investigate the population dynamics of extraintestinal pathogenic Escherichia coli during systemic infection using a novel barcoding framework.
- To quantify the contributions of bacterial replication, persistence, death, and dissemination across different organs.
- To identify host and bacterial factors influencing pathogen survival and organ colonization.
Main Methods:
- Utilized STAMPR, a new barcoding framework, to track bacterial population dynamics in a murine model of systemic infection.
- Analyzed organ-specific bacterial clearance failures and clonal expansion events.
- Adapted barcoding methodology for multiplexed validation of bacterial fitness determinants via transposon mutagenesis.
Main Results:
- Organ-specific clearance failures are common, driven by dramatic expansion of rare bacterial clones.
- Clonal expansion explains inter-animal variability in bacterial burden and alters pathogen population structure.
- Host bottlenecks are consistent but sensitive to inoculum size and macrophage depletion.
- Confirmed the importance of hexose metabolism and cell envelope homeostasis for bacterial survival.
Conclusions:
- Developed a high-resolution framework for mapping infection dynamics using barcoding.
- Provided a comprehensive map of bacterial systemic infection population biology.
- Highlighted the critical role of rare clone expansion in organ-specific pathogen persistence and disease variability.

