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February 19, 2026Food and Bioprocess Technology1 citationsOpen Access

Investigation of the Microbiocidal, Antioxidant, and Cytotoxic Effects of Cinnamomum verum (Cinnamon), Origanum onites (Oregano Balls), and Origanum vulgare (Black Oregano) Hydrosols: A Model Food Environment-Driven Usability Study

WBWalid BouhlelErciyes UniversityMDMahmut DoğanErciyes UniversityAYAhmet E. YetimanErciyes University

Key Points

  • This study aims to evaluate the antimicrobial, antioxidant, and cytotoxic properties of hydrosols derived from cinnamon and oregano species.
  • Conducted GC-MS analysis to identify chemotypes of the hydrosols.
  • Tested antioxidant capacity through total phenolic content and DPPH/ABTS values.
  • Measured antimicrobial efficacy against various pathogens using inhibition zones and MIC values.
  • Performed washing trials with Kashar cheese to assess practical applications of hydrosols.
  • Conducted cytotoxicity assays on fibroblast cells (L929) for viability verification.
  • Cinnamon hydrosol showed high cinnamaldehyde content (76.66%).
  • Black oregano exhibited significant antioxidant activity with TPC of 1286 mg GAE/L.
  • Cinnamon hydrosols created the largest inhibition zones against Candida albicans (34.06 mm) and Aspergillus flavus (26.23 mm).
  • Acidified cinnamon variants achieved the lowest MIC values for Klebsiella pneumoniae and Bacillus cereus.
  • CHM showed high effectiveness in reducing pathogens in cheese washing trials with mean log reductions of 2.52 after 45 minutes.

Abstract

Abstract This comprehensive study evaluated the antimicrobial efficacy, antioxidant capacity, and cytotoxicity of cinnamon ( Cinnamomum verum ), black oregano ( Origanum vulgare ), and ball oregano ( Origanum onites ) hydrosols, with particular focus on acidified cinnamon variants (3% ascorbic acid, CHC; 3% malic acid, CHM). GC–MS analysis revealed distinct chemotypes: cinnamon hydrosol was cinnamaldehyde-dominant (76.66%), while oregano hydrosols exhibited carvacrol-rich profiles. Black oregano demonstrated superior antioxidant capacity, with a total phenolic content (TPC) of 1286 mg GAE/L and DPPH/ABTS values of 3.07 and 4.24 mmol TE/L, respectively. Antimicrobial testing revealed that cinnamon-based hydrosols produced the largest inhibition zones against Candida albicans (34.06 ± 2.00 mm) and Aspergillus flavus (26.23 ± 0.50 mm), while acidification significantly enhanced their antibacterial potency. CHM achieved the lowest MIC values for multiple pathogens, including Klebsiella pneumoniae (1.45 ± 0.01 µL/mL) and Bacillus cereus (1.99 ± 0.01 µL/mL). In Kashar cheese washing trials, CHM demonstrated superior performance with mean log reductions of 2.52 across five pathogens at 45 min, with most antimicrobial effect occurring within the first 15 min. Zeta potential analysis revealed CH maintained electrostatic stability (-22 to -23.5 mV), while CHM's near-neutral charge (-2.55 to -3.52 mV) facilitated enhanced bacterial contact. Cytotoxicity assays identified workable dilution ranges preserving ≥ 70% fibroblast viability (in L929), supporting short contact and rinse-type use. These findings position acidified cinnamon hydrosols, particularly CHM, as promising natural surface decontaminants for food systems.

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Cite This Study

Bouhlel et al. (2026) studied this question.

synapsesocial.com/papers/6996a82decb39a600b3ee9b5https://doi.org/10.1007/s11947-026-04258-5
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