Single-cell imaging of the lytic phage life cycle in bacteria
Wedd, C.; Yunusov, T.; Smith, A.; Li, R.; Hardo, G.; Hunter, M.; Majed, R.; Fusco, D.; Bakshi, S.
Show abstract
When a lytic bacteriophage infects a bacterial cell, it commandeers the cells resources to replicate, ultimately causing cell lysis and the release of new virions. As phages function as obligate parasites, each stage of the infection process depends on the physiological parameters of the host cell. Given the inherent physiological variability within a population of genetically identical bacterial cells, we ask how the phage infection dynamic reflects such heterogeneity. Here, we introduce a timelapse imaging assay for investigating the dynamics of individual infection steps by a single T7 phage on a single bacterium. This high-throughput, time-resolved assay enables us to monitor the infection progression simultaneously in multiple cells, uncovering substantial heterogeneity at each step and revealing correlations between infection dynamics and the physiological state of the infected cell. Simulations of competing phage populations with different lysis time distributions reveal that heterogeneity in infection dynamics can significantly impact phage fitness, highlighting it as a potential evolutionary driver of phage-bacteria interactions.
Matching journals
The top 2 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Tracking bacterial lineages in complex and dynamic environments with applications to growth control and persistence 97%
- Rational Design of Frontline Institutional Phage Cocktail for the Treatment of Nosocomial Enterobacter cloacae Complex Infections 95%
- Imaging LexA degradation in cells explains regulatory mechanisms and heterogeneity of the SOS response 95%
Similar papers in this journal
- DeepBacs: Bacterial image analysis using open-source deep learning approaches 94%
- Harnessing droplet microfluidics and morphology-based deep learning for the label-free study of polymicrobial-phage interactions 94%
- High-throughput feedback-enabled optogenetic stimulation and spectroscopy in microwell plates 94%
Similar papers in this journal
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.