4.8 Article

Exploiting the Redox Activity of MIL-100(Fe) Carrier Enables Prolonged Carvacrol Antimicrobial Activity

期刊

ACS APPLIED MATERIALS & INTERFACES
卷 14, 期 8, 页码 10758-10768

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsami.1c21555

关键词

MOFs; controlled delivery; biocomposites; antimicrobial activity; food packaging

资金

  1. MCIN/AEI [PID2020-118564GA-I00, PID2020-119748GA-I00, CEX2019-000919-M, RTI2018-093452-B-I00, PRE2018-083355]
  2. ESF Investing in your future [BES-2016-077380]
  3. Generalitat Valenciana [SEJI2020/036, GV/2021/027]
  4. MICIN [RYC2019-027902-I]
  5. FCT (Portugal) [UID/Multi/04349/2019, PTDC/QUI-QIN/32240/2017]
  6. ERDF A way of making Europe [MAT2017-89993-R]
  7. Fundação para a Ciência e a Tecnologia [PTDC/QUI-QIN/32240/2017] Funding Source: FCT

向作者/读者索取更多资源

The development of a smart composite material with prolonged antibacterial activity is crucial for food safety. By entrapping a natural food preserving molecule into a mesoporous material and utilizing a reversible charge-transfer process, the material shows sustained activity against bacteria. The experimental results are supported by theoretical calculations.
The design of efficient food contact materials that maintain optimal levels of food safety is of paramount relevance to reduce the increasing number of foodborne illnesses. In this work, we develop a smart composite metal-organic framework (MOF)based material that fosters a unique prolonged antibacterial activity. The composite is obtained by entrapping a natural food preserving molecule, carvacrol, into a mesoporous MIL-100(Fe) material following a direct and biocompatible impregnation method, and obtaining particularly high payloads. By exploiting the intrinsic redox nature of the MIL-100(Fe) material, it is possible to achieve a prolonged activity against Escherichia coli and Listeria innocua due to a triggered two-step carvacrol release from films containing the carvacrol@MOF composite. Essentially, it was discovered that based on the underlying chemical interaction between MIL-100(Fe) and carvacrol, it is possible to undergo a reversible charge-transfer process between the metallic MOF counterpart and carvacrol upon certain chemical stimuli. During this process, the preferred carvacrol binding site was monitored by infrared, infrared and electron paramagnetic resonance spectroscopies, and the results are supported by theoretical calculations.

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