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Detection of Horizontal Gene Transfer Mediated by Natural Conjugative Plasmids in E. coli
Published on: March 24, 2023
CRISPR-Cas and Restriction-Modification Act Additively against Conjugative Antibiotic Resistance Plasmid Transfer in
Valerie J Price1, Wenwen Huo1, Ardalan Sharifi1
1Department of Biological Sciences, The University of Texas at Dallas, Richardson, Texas, USA.
Abstract:
Enterococcus faecalis is an opportunistic pathogen and a leading cause of nosocomial infections. Conjugative pheromone-responsive plasmids are narrow-host-range mobile genetic elements (MGEs) that are rapid disseminators of antibiotic resistance in the faecalis species. Clustered regularly interspaced short palindromic repeat (CRISPR)-Cas and restriction-modification confer acquired and innate immunity, respectively, against MGE acquisition in bacteria. Most multidrug-resistant E. faecalis isolates lack CRISPR-Cas and possess an orphan locus lacking cas genes, CRISPR2, that is of unknown function. Little is known about restriction-modification defense in E. faecalis. Here, we explore the hypothesis that multidrug-resistant E. faecalis strains are immunocompromised. We assessed MGE acquisition by E. faecalis T11, a strain closely related to the multidrug-resistant hospital isolate V583 but which lacks the ~620 kb of horizontally acquired genome content that characterizes V583. T11 possesses the E. faecalis CRISPR3-cas locus and a predicted restriction-modification system, neither of which occurs in V583. We demonstrate that CRISPR-Cas and restriction-modification together confer a 4-log reduction in acquisition of the pheromone-responsive plasmid pAM714 in biofilm matings. Additionally, we show that the orphan CRISPR2 locus is functional for genome defense against another pheromone-responsive plasmid, pCF10, only in the presence of cas9 derived from the E. faecalis CRISPR1-cas locus, which most multidrug-resistant E. faecalis isolates lack. Overall, our work demonstrated that the loss of only two loci led to a dramatic reduction in genome defense against a clinically relevant MGE, highlighting the critical importance of the E. faecalis accessory genome in modulating horizontal gene transfer. Our results rationalize the development of antimicrobial strategies that capitalize upon the immunocompromised status of multidrug-resistant E. faecalis. IMPORTANCE Enterococcus faecalis is a bacterium that normally inhabits the gastrointestinal tracts of humans and other animals. Although these bacteria are members of our native gut flora, they can cause life-threatening infections in hospitalized patients. Antibiotic resistance genes appear to be readily shared among high-risk E. faecalis strains, and multidrug resistance in these bacteria limits treatment options for infections. Here, we find that CRISPR-Cas and restriction-modification systems, which function as adaptive and innate immune systems in bacteria, significantly impact the spread of antibiotic resistance genes in E. faecalis populations. The loss of these systems in high-risk E. faecalis suggests that they are immunocompromised, a tradeoff that allows them to readily acquire new genes and adapt to new antibiotics.
Insights
Multidrug-resistant Enterococcus faecalis strains are often immunocompromised due to the loss of bacterial immune systems. This loss facilitates the rapid spread of antibiotic resistance genes, impacting treatment options for infections.
Area of Science:
- Microbiology
- Genetics
- Infectious Diseases
Background:
- Enterococcus faecalis is an opportunistic pathogen causing nosocomial infections.
- Conjugative plasmids rapidly spread antibiotic resistance in E. faecalis.
- Bacterial immune systems like CRISPR-Cas and restriction-modification (RM) prevent mobile genetic element (MGE) acquisition.
Purpose of the Study:
- To test the hypothesis that multidrug-resistant (MDR) E. faecalis strains are immunocompromised.
- To investigate the role of CRISPR-Cas and RM systems in E. faecalis genome defense.
- To understand the impact of immune system loss on MGE acquisition and antibiotic resistance spread.
Main Methods:
- Assessed MGE acquisition in E. faecalis T11, a strain lacking horizontally acquired genes found in MDR isolate V583.
- Evaluated the combined effect of CRISPR-Cas and RM systems on pheromone-responsive plasmid pAM714 acquisition in biofilm matings.
- Investigated the function of the orphan CRISPR2 locus in defense against plasmid pCF10, particularly in relation to cas9 presence.
Main Results:
- CRISPR-Cas and RM systems together reduced pAM714 acquisition by 4 logs in E. faecalis T11.
- The orphan CRISPR2 locus conferred defense against pCF10, but only when E. faecalis CRISPR1-cas9 was present.
- Loss of these two loci dramatically reduced genome defense against clinically relevant MGEs.
Conclusions:
- MDR E. faecalis strains are often immunocompromised due to the loss of CRISPR-Cas and RM systems.
- This loss of immune defense allows for easier acquisition of antibiotic resistance genes via MGEs.
- Targeting these bacterial immune systems could offer novel antimicrobial strategies against MDR E. faecalis infections.
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