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Published on: February 23, 2014
Synergistic Activity of Mobile Genetic Element Defences in Streptococcus pneumoniae
Min Jung Kwun1, Marco R Oggioni2, Stephen D Bentley3
1MRC Centre for Global Infectious Disease Analysis, Department of Infectious Disease Epidemiology, St. Mary's Campus, Imperial College London, London W2 1PG, UK. min.kwun08@imperial.ac.uk.
Abstract:
A diverse set of mobile genetic elements (MGEs) transmit between Streptococcus pneumoniae cells, but many isolates remain uninfected. The best-characterised defences against horizontal transmission of MGEs are restriction-modification systems (RMSs), of which there are two phase-variable examples in S. pneumoniae. Additionally, the transformation machinery has been proposed to limit vertical transmission of chromosomally integrated MGEs. This work describes how these mechanisms can act in concert. Experimental data demonstrate RMS phase variation occurs at a sub-maximal rate. Simulations suggest this may be optimal if MGEs are sometimes vertically inherited, as it reduces the probability that an infected cell will switch between RMS variants while the MGE is invading the population, and thereby undermine the restriction barrier. Such vertically inherited MGEs can be deleted by transformation. The lack of between-strain transformation hotspots at known prophage att sites suggests transformation cannot remove an MGE from a strain in which it is fixed. However, simulations confirmed that transformation was nevertheless effective at preventing the spread of MGEs into a previously uninfected cell population, if a recombination barrier existed between co-colonising strains. Further simulations combining these effects of phase variable RMSs and transformation found they synergistically inhibited MGEs spreading, through limiting both vertical and horizontal transmission.
Insights
Mobile genetic elements (MGEs) in Streptococcus pneumoniae are limited by restriction-modification systems (RMSs) and transformation. These defense mechanisms work together to inhibit MGE spread, controlling both vertical and horizontal transmission.
Area of Science:
- Microbiology
- Genetics
- Bacterial Evolution
Background:
- Mobile genetic elements (MGEs) are prevalent in Streptococcus pneumoniae, yet many isolates remain uninfected.
- Restriction-modification systems (RMSs) are key defenses against horizontal MGE transmission in S. pneumoniae.
- The transformation machinery may also limit vertical transmission of integrated MGEs.
Purpose of the Study:
- To investigate the combined effects of RMS phase variation and transformation on MGE transmission in S. pneumoniae.
- To understand how these defense mechanisms synergistically inhibit MGE spread.
Main Methods:
- Experimental analysis of RMS phase variation rates.
- Computer simulations modeling MGE transmission dynamics.
- Integration of RMS and transformation effects in simulation models.
Main Results:
- RMS phase variation occurs at a sub-maximal rate, potentially optimizing MGE inheritance.
- Transformation can delete vertically inherited MGEs but struggles to remove fixed MGEs.
- Transformation effectively prevents MGE spread into new populations when recombination barriers exist.
- RMS phase variation and transformation act synergistically to inhibit MGE transmission.
Conclusions:
- Phase-variable RMSs and transformation provide synergistic defense against MGEs in S. pneumoniae.
- These mechanisms collectively limit both vertical and horizontal MGE transmission routes.
- Understanding these interactions is crucial for controlling MGE dissemination in bacterial populations.
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