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Published on: December 27, 2016
220D-F2 from Rubus ulmifolius kills Streptococcus pneumoniae planktonic cells and pneumococcal biofilms
Sharmila J Talekar1, Sopio Chochua1, Katie Nelson2
1Hubert Department of Global Health, Rollins School of Public Health, Atlanta, Georgia, United States of America.
Abstract:
Streptococcus pneumoniae (pneumococcus) forms organized biofilms to persist in the human nasopharynx. This persistence allows the pneumococcus to produce severe diseases such as pneumonia, otitis media, bacteremia and meningitis that kill nearly a million children every year. While bacteremia and meningitis are mediated by planktonic pneumococci, biofilm structures are present during pneumonia and otitis media. The global emergence of S. pneumoniae strains resistant to most commonly prescribed antibiotics warrants further discovery of alternative therapeutics. The present study assessed the antimicrobial potential of a plant extract, 220D-F2, rich in ellagic acid, and ellagic acid derivatives, against S. pneumoniae planktonic cells and biofilm structures. Our studies first demonstrate that, when inoculated together with planktonic cultures, 220D-F2 inhibited the formation of pneumococcal biofilms in a dose-dependent manner. As measured by bacterial counts and a LIVE/DEAD bacterial viability assay, 100 and 200 µg/ml of 220D-F2 had significant bactericidal activity against pneumococcal planktonic cultures as early as 3 h post-inoculation. Quantitative MIC's, whether quantified by qPCR or dilution and plating, showed that 80 µg/ml of 220D-F2 completely eradicated overnight cultures of planktonic pneumococci, including antibiotic resistant strains. When preformed pneumococcal biofilms were challenged with 220D-F2, it significantly reduced the population of biofilms 3 h post-inoculation. Minimum biofilm inhibitory concentration (MBIC)50 was obtained incubating biofilms with 100 µg/ml of 220D-F2 for 3 h and 6 h of incubation. 220D-F2 also significantly reduced the population of pneumococcal biofilms formed on human pharyngeal cells. Our results demonstrate potential therapeutic applications of 220D-F2 to both kill planktonic pneumococcal cells and disrupt pneumococcal biofilms.
Insights
A plant extract rich in ellagic acid, 220D-F2, effectively combats Streptococcus pneumoniae by killing planktonic cells and disrupting biofilms. This discovery offers a promising new therapeutic avenue against antibiotic-resistant pneumococcal infections.
Area of Science:
- Microbiology
- Pharmacology
- Natural Products Chemistry
Background:
- Streptococcus pneumoniae (pneumococcus) forms biofilms, contributing to severe diseases like pneumonia and otitis media.
- The rise of antibiotic-resistant pneumococcal strains necessitates the development of novel therapeutic agents.
- Pneumococcal biofilms play a role in persistent infections and treatment challenges.
Purpose of the Study:
- To evaluate the antimicrobial activity of a plant extract (220D-F2), rich in ellagic acid, against Streptococcus pneumoniae.
- To assess the efficacy of 220D-F2 against both planktonic pneumococcal cells and established biofilm structures.
- To explore 220D-F2 as a potential therapeutic agent for pneumococcal infections, including antibiotic-resistant strains.
Main Methods:
- Dose-dependent inhibition of pneumococcal biofilm formation by 220D-F2.
- Bactericidal activity assessment using bacterial counts and LIVE/DEAD viability assays.
- Determination of Minimum Inhibitory Concentration (MIC) and Minimum Biofilm Inhibitory Concentration (MBIC) via qPCR and dilution plating.
Main Results:
- 220D-F2 demonstrated significant bactericidal activity against planktonic pneumococci at 100 and 200 µg/ml within 3 hours.
- 80 µg/ml of 220D-F2 completely eradicated planktonic pneumococci, including antibiotic-resistant strains.
- 220D-F2 significantly reduced preformed pneumococcal biofilms and inhibited biofilm formation in a dose-dependent manner.
Conclusions:
- The plant extract 220D-F2 exhibits potent antimicrobial activity against Streptococcus pneumoniae.
- 220D-F2 effectively targets both planktonic bacteria and disruptive pneumococcal biofilms.
- These findings highlight 220D-F2 as a promising candidate for developing new treatments against pneumococcal diseases.
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