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March 14, 2026Microbial Pathogenesis0 citationsOpen Access

Biological activities of Lippia gracilis Schauer essential oil and modelling of its effects on bacterial growth

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WOWeslei da Silva OliveiraFBFabiany de Andrade BritoABArie Fitzgerald Blank

Key Points

  • This research aims to evaluate the bioactive properties of Lippia gracilis essential oils and model their effects on bacterial growth under varying pH conditions.
  • Evaluated essential oils from seven genotypes of Lippia gracilis.
  • Measured antioxidant and antimicrobial activities using specific assays.
  • Developed predictive models for bacterial growth under different pH levels and essential oil concentrations.
  • Validated models using statistical measures like coefficients of determination.
  • L. gracilis essential oils exhibited strong antioxidant activity (2652.2 μmol Trolox/L).
  • Antimicrobial effects were significant, with minimum inhibitory concentrations between 1.32–2.64 mg/mL.
  • The growth models showed high accuracy (0.84 to 0.99) and effectively predicted bacterial growth parameters.

Abstract

This study was conducted to evaluate the bioactive (antioxidant and antimicrobial) properties of essential oils (EOs) from seven genotypes of Lippia gracilis Schauer (LGRA106, LGRA107, LGRA108, LGRA109, LGRA110, LGRA201, and LGRA202). In addition, predictive models of bacterial growth under different pH conditions (5.0, 6.0, and 9.0), in the presence and absence of LGRA 109 EO (1.32, 2.64, or 5.29 mg/mL), were obtained. The LGRA106 and LGRA109 EOs exhibited strong antioxidant (2652.2 μmol Trolox/L via the FRAP method) and antimicrobial (minimum inhibitory and minimum bactericidal concentrations of 1.32–2.64 mg/mL) activities, respectively. The Baranyi and Roberts model showed good agreement with the experimental data, with coefficients of determination ranging from 0.84 to 0.99 and adequate representation of the growth curves. The model was validated using Bias and accuracy factor values of 1, and root mean square error values ranging from 0.02 to 0.14. The model was applied to predict bacterial growth under the tested conditions. Lag phase time and maximum specific growth rate parameters were determined for all the tested bacteria. The combination of pH and EO was effective in inhibiting the growth of Staphylococcus aureus , Escherichia coli , and Salmonella Typhimurium. These results demonstrate that L. gracilis EOs are potent natural antioxidants and antimicrobials that may be further explored for applications in the pharmaceutical, food, and cosmetic industries. • Different genotypes of Lippia gracilis showed high antioxidant activity. • The major bacteria were extremely sensitive of EOs. • Predictive models of microbial growth kinetics were obtained.

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Cite This Study

Oliveira et al. (2026) studied this question.

synapsesocial.com/papers/69b4fc7fb39f7826a300d62dhttps://doi.org/10.1016/j.micpath.2026.108436
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