4.7 Article

Physicochemical characterisation and release behaviour of curcumin-loaded lactoferrin nanohydrogels into food simulants

期刊

FOOD & FUNCTION
卷 11, 期 1, 页码 305-317

出版社

ROYAL SOC CHEMISTRY
DOI: 10.1039/c9fo01963d

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资金

  1. Fundacao para a Ciencia e Tecnologia (FCT, Portugal) [SFRH/BPD/80766/2011]
  2. FCT [UID/Multi/50016/2019, UID/BIO/04469/2013, RECI/BBB-EBI/0179/2012 (FCOMP-01-0124-FEDER-027462)]
  3. COMPETE 2020 [POCI-01-0145-FEDER-006684]
  4. BioTecNorte operation - European Regional Development Fund under the scope of Norte 2020 - Programa Operacional Regional do Norte [NORTE-01-0145-FEDER-000004]
  5. Fundação para a Ciência e a Tecnologia [UID/BIO/04469/2013] Funding Source: FCT

向作者/读者索取更多资源

Whey protein nanostructures can be used as vehicles for the incorporation of nutraceuticals (e.g., antioxidants or vitamins) aimed at the development of functional foods, because nanostructures provide greater protection, stability and controlled release to such nutraceuticals. Fundamental knowledge is required regarding the behaviour of nanostructures when associated with nutraceuticals and their interactions with real food matrices. In this study, a lactoferrin (LF) nanohydrogel was developed to encapsulate curcumin (nutraceutical model) and its behaviour was evaluated in terms of the LF structure and the interaction with curcumin. The release kinetics of curcumin from LF nanohydrogels was also assessed using food simulants with a hydrophilic nature (10% ethanol) and lipophilic nature (50% ethanol). This system was able to encapsulate curcumin at 80 mu g mL(-1) with an efficiency of ca. 90% and loading capacity of ca. 3%. Through spectroscopic characterisation, it is suggested that LF and curcumin bind via hydrophobic interactions and the average binding distance between LF and curcumin was found to be 1.91 nm. Under refrigerated conditions (4 degrees C), this system showed stability for up to 35 days, while at room temperature (25 degrees C) it was shown to be stable for up to 14 days of storage. The LF nanohydrogel presented higher release rates of curcumin in a lipophilic food simulant (stable after ca. 7 h) as compared to a hydrophilic simulant (stable after ca. 4 h). LF nanohydrogels were successfully incorporated into a gelatine matrix and showed no degradation in this process. The behaviour of this system and the curcumin release kinetics in food stimulants make the LF nanohydrogel an interesting system to associate with lipophilic nutraceuticals and to incorporate in refrigerated food products of a hydrophilic nature.

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