Vibrio spp. from Macrobrachium amazonicum prawn farming are inhibited by Moringa oleifera extracts

Raimunda Sâmia Nogueira Brilhante1, Jamille Alencar Sales2, Celia Maria de Souza Sampaio2

  • 1Department of Pathology and Legal Medicine, Postgraduate Program in Medical Microbiology, Specialized Medical Mycology Center, Federal University of Ceará, Fortaleza, Ceará, Brazil.

Abstract

Insights

Moringa oleifera pod and flower extracts show antimicrobial potential against Vibrio species. These plant extracts offer a promising natural approach for controlling harmful bacteria in aquaculture and related environments.

Area of Science:

  • Pharmacology
  • Microbiology
  • Natural Product Chemistry

Background:

  • Aquaculture, particularly prawn farming, faces significant challenges from bacterial infections, especially Vibrio species.
  • Vibrio species, including Vibrio cholerae, Vibrio vulnificus, and Vibrio mimicus, are known pathogens affecting aquatic organisms and human health.
  • The increasing prevalence of antibiotic resistance necessitates the exploration of alternative antimicrobial agents, such as those derived from natural sources.

Purpose of the Study:

  • To evaluate the in vitro antimicrobial activity of various Moringa oleifera (M. oleifera) plant part extracts against pathogenic Vibrio species.
  • To determine the efficacy of M. oleifera extracts sourced from stem, leaves, flowers, pods, and seeds against Vibrio spp. isolated from hatchery water and the prawn Macrobrachium amazonicum.

Main Methods:

  • Ethanol extracts of M. oleifera stem, leaves, pods, and seeds, along with a chloroform extract of flowers, were prepared.
  • The antimicrobial activity was tested against Vibrio cholerae (non-O1/non-O139), Vibrio vulnificus, Vibrio mimicus, and Escherichia coli (quality control).
  • Minimum Inhibitory Concentration (MIC) was determined using the broth microdilution method.

Main Results:

  • The ethanol extract of M. oleifera pods demonstrated significant antimicrobial activity, inhibiting three Vibrio cholerae strains, Vibrio vulnificus, Vibrio mimicus, and E. coli (MIC range: 0.312–5.000 mg/mL).
  • The chloroform extract of M. oleifera flowers was effective against all tested Vibrio cholerae strains and E. coli (MIC range: 0.625–1.250 mg/mL).
  • Ethanol extracts from M. oleifera stem and seeds exhibited limited effectiveness in inhibiting bacterial growth.

Conclusions:

  • Moringa oleifera extracts from pods, flowers, and leaves possess notable antimicrobial potential against harmful Vibrio species.
  • These findings suggest that M. oleifera could serve as a source for natural antimicrobial agents in aquaculture.
  • Further research is recommended to isolate and identify the specific bioactive compounds responsible for the observed antimicrobial effects.

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