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Following Cell-fate in E. coli After Infection by Phage Lambda
Published on: October 14, 2011
A newly identified prophage-encoded gene, ymfM, causes SOS-inducible filamentation in Escherichia coli
Shirin Ansari1,2, James C Walsh2, Amy L Bottomley1
1The ithree institute, Faculty of Science, University of Technology Sydney, Sydney, Australia.
Abstract:
Rod-shaped bacteria such as Escherichia coli can regulate cell division in response to stress, leading to filamentation, a process where cell growth and DNA replication continues in the absence of division, resulting in elongated cells. The classic example of stress is DNA damage which results in the activation of the SOS response. While the inhibition of cell division during SOS has traditionally been attributed to SulA in E. coli, a previous report suggests that the e14 prophage may also encode an SOS-inducible cell division inhibitor, previously named SfiC. However, the exact gene responsible for this division inhibition has remained unknown for over 35 years. A recent high-throughput over-expression screen in E. coli identified the e14 prophage gene, ymfM, as a potential cell division inhibitor. In this study, we show that the inducible expression of ymfM from a plasmid causes filamentation. We show that this expression of ymfM results in the inhibition of Z ring formation and is independent of the well characterised inhibitors of FtsZ ring assembly in E. coli, SulA, SlmA and MinC. We confirm that ymfM is the gene responsible for the SfiC phenotype as it contributes to the filamentation observed during the SOS response. This function is independent of SulA, highlighting that multiple alternative division inhibition pathways exist during the SOS response. Our data also highlight that our current understanding of cell division regulation during the SOS response is incomplete and raises many questions regarding how many inhibitors there actually are and their purpose for the survival of the organism.Importance:Filamentation is an important biological mechanism which aids in the survival, pathogenesis and antibiotic resistance of bacteria within different environments, including pathogenic bacteria such as uropathogenic Escherichia coli Here we have identified a bacteriophage-encoded cell division inhibitor which contributes to the filamentation that occurs during the SOS response. Our work highlights that there are multiple pathways that inhibit cell division during stress. Identifying and characterising these pathways is a critical step in understanding survival tactics of bacteria which become important when combating the development of bacterial resistance to antibiotics and their pathogenicity.
Insights
Researchers identified the e14 prophage gene ymfM as a novel cell division inhibitor in Escherichia coli. This discovery reveals alternative pathways for bacterial filamentation during stress responses, crucial for survival and antibiotic resistance.
Area of Science:
- Microbiology
- Bacterial cell division
- Stress response mechanisms
Background:
- Rod-shaped bacteria like Escherichia coli exhibit filamentation, a stress-induced elongation, often linked to DNA damage and the SOS response.
- While SulA is a known inhibitor of cell division during the SOS response in E. coli, the e14 prophage was suspected to encode another inhibitor (SfiC) for over 35 years.
- Understanding bacterial stress responses is vital for addressing antibiotic resistance and pathogenicity.
Purpose of the Study:
- To identify the specific gene responsible for SOS-inducible cell division inhibition encoded by the e14 prophage.
- To characterize the mechanism of action of this novel cell division inhibitor.
- To investigate the role of alternative cell division inhibition pathways during bacterial stress.
Main Methods:
- High-throughput overexpression screen in E. coli to identify potential cell division inhibitors.
- Inducible expression of the e14 prophage gene ymfM from a plasmid to assess its effect on cell morphology.
- Microscopy to observe Z-ring formation and assess inhibition of cell division.
- Genetic analysis to confirm ymfM's role in the SfiC phenotype and its independence from known inhibitors (SulA, SlmA, MinC).
Main Results:
- Inducible expression of ymfM in E. coli led to filamentation, confirming its role as a cell division inhibitor.
- YmfM inhibits Z-ring formation independently of known inhibitors like SulA, SlmA, and MinC.
- YmfM contributes to filamentation during the SOS response, establishing it as the SfiC phenotype gene.
Conclusions:
- The e14 prophage gene ymfM is identified as the long-sought SfiC, a novel SOS-inducible cell division inhibitor in E. coli.
- The study reveals the existence of multiple, independent pathways for cell division inhibition during bacterial stress responses.
- This finding underscores the complexity of bacterial stress adaptation and necessitates further research into additional inhibitors and their functional significance.
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