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Published on: February 19, 2019
Loratadine Combats Methicillin-Resistant Staphylococcus aureus by Modulating Virulence, Antibiotic Resistance, and
Brianna L Viering1, Halie Balogh1, Chloe F Cox1
1Department of Chemistry, High Point University, High Point, North Carolina 27268, United States.
Abstract:
Methicillin-resistant Staphylococcus aureus (MRSA) has evolved to become resistant to multiple classes of antibiotics. New antibiotics are costly to develop and deploy, and they have a limited effective lifespan. Antibiotic adjuvants are molecules that potentiate existing antibiotics through nontoxic mechanisms. We previously reported that loratadine, the active ingredient in Claritin, potentiates multiple cell-wall active antibiotics in vitro and disrupts biofilm formation through a hypothesized inhibition of the master regulatory kinase Stk1. Loratadine and oxacillin combined repressed the expression of key antibiotic resistance genes in the bla and mec operons. We hypothesized that additional genes involved in antibiotic resistance, biofilm formation, and other cellular pathways would be modulated when looking transcriptome-wide. To test this, we used RNA-seq to quantify transcript levels and found significant effects in gene expression, including genes controlling virulence, antibiotic resistance, metabolism, transcription (core RNA polymerase subunits and sigma factors), and translation (a plethora of genes encoding ribosomal proteins and elongation factor Tu). We further demonstrated the impacts of these transcriptional effects by investigating loratadine treatment on intracellular ATP levels, persister formation, and biofilm formation and morphology. Loratadine minimized biofilm formation in vitro and enhanced the survival of infected Caenorhabditis elegans. These pleiotropic effects and their demonstrated outcomes on MRSA virulence and survival phenotypes position loratadine as an attractive anti-infective against MRSA.
Insights
Loratadine, an antihistamine, shows promise as an antibiotic adjuvant against methicillin-resistant Staphylococcus aureus (MRSA). It potentiates existing antibiotics and disrupts MRSA virulence and biofilm formation.
Area of Science:
- Microbiology
- Pharmacology
- Genetics
Background:
- Methicillin-resistant Staphylococcus aureus (MRSA) poses a significant threat due to widespread antibiotic resistance.
- Development of novel antibiotics is costly and faces challenges with limited effective lifespans.
- Antibiotic adjuvants offer a strategy to enhance existing therapies through non-toxic mechanisms.
Purpose of the Study:
- To investigate the transcriptome-wide effects of loratadine on MRSA.
- To determine if loratadine modulates genes involved in antibiotic resistance, biofilm formation, and other cellular pathways.
- To assess the impact of loratadine on MRSA virulence and survival phenotypes.
Main Methods:
- RNA-sequencing (RNA-seq) was employed to quantify transcript levels in MRSA treated with loratadine.
- Gene expression changes related to virulence, antibiotic resistance, metabolism, transcription, and translation were analyzed.
- Intracellular ATP levels, persister formation, and biofilm formation/morphology were assessed.
Main Results:
- Loratadine significantly altered the expression of numerous genes, including those controlling virulence, antibiotic resistance, metabolism, transcription, and translation.
- Loratadine treatment minimized in vitro biofilm formation.
- Loratadine enhanced the survival of infected Caenorhabditis elegans.
Conclusions:
- Loratadine exhibits pleiotropic effects on MRSA, impacting multiple cellular pathways.
- These effects position loratadine as a potential anti-infective agent against MRSA, enhancing existing antibiotic treatments.
- Loratadine's ability to disrupt MRSA virulence and survival phenotypes warrants further investigation.
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