AI Article Synopsis

  • Incorporating bioactive natural compounds, particularly flavonoids, into biomaterials like alginate enhances their functionality and therapeutic potential.
  • Studies show that using various crosslinkers (Calcium, Barium, Zinc) affects the properties of alginate gels, influencing shrinkage and morphology, with certain crosslinkers proving safer for polyphenol stability.
  • An epicatechin-loaded alginate patch has been developed, showing effective delivery of the flavonoid to the skin without altering its antioxidant properties, making it a promising option for treating damaged skin.

Article Abstract

Incorporation of bioactive natural compounds like polyphenols is an attractive approach for enhanced functionalities of biomaterials. In particular flavonoids have important pharmacological activities, and controlled release systems may be instrumental to realize the full potential of these phytochemicals. Alginate presents interesting attributes for dermal and other biomaterial applications, and studies were carried here to support the development of polyphenol-loaded alginate systems. Studies of capillary viscosity indicated that ionic medium is an effective strategy to modulate the polyelectrolyte effect and viscosity properties of alginates. On gelation, considerable differences were observed between alginate gels produced with Ca, Ba, Cu, Fe, Fe and Zn as crosslinkers, especially concerning shrinkage and morphological regularity. Stability assays with different polyphenols in the presence of alginate-gelling cations pointed to the choice of calcium, barium and zinc as safer crosslinkers. Alginate-based films loaded with epicatechin were prepared and the kinetics of release of the flavonoid investigated. The results with calcium, barium and zinc alginate matrices indicated that the release dynamics is dependent on film thicknesses, but also on the crosslinking metal used. On these grounds, an alginate-based system of convenient use was devised, so that flavonoids can be easily loaded at simple point-of-care conditions before dermal application. This epicatechin-loaded patch was tested on an skin model and demonstrated capacity to deliver therapeutically relevant concentrations on skin surface. Moreover, the flavonoid released was not modified and retained full antioxidant bioactivity. The alginate-based system proposed offers a multifunctional approach for flavonoid controllable delivery and protection of skin injured or under risk.

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http://www.ncbi.nlm.nih.gov/pmc/articles/PMC7139165PMC
http://dx.doi.org/10.1016/j.bioactmat.2020.03.012DOI Listing

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