Honciuc Mirela, Honciuc Andrei, Solonaru Ana-Maria
"Petru Poni" Institute of Macromolecular Chemistry, 41A Grigore Ghica Voda Alley, Iasi 700487, Romania.
"Petru Poni" Institute of Macromolecular Chemistry, 41A Grigore Ghica Voda Alley, Iasi 700487, Romania.
Colloids Surf B Biointerfaces. 2025 Nov;255:114905. doi: 10.1016/j.colsurfb.2025.114905. Epub 2025 Jun 23.
Natural compounds, such as anthocyanins, have received little attention as viable components in polymer composites, but they could enable the next generation of environmentally "aware" materials. Anthocyanins can change colors in different environmental conditions, but are prone to quick degradation. The aim of this work is to encapsulate anthocyanin into the polymer microspheres, generated from Pickering emulsions, to enhance their stability against degradation while preserving their antioxidant potential. Further, we aim at producing useful environmentally responsive materials, based on natural compounds for practical applications, such as colorimetric sensors. Upon encapsulation, anthocyanin is mainly found as flavylium cation, resulting in fluorescent microspheres. The encapsulation efficiency and release behavior were assessed. The microspheres can be loaded with up to 0.24 mg × g anthocyanin. Anthocyanin can be released from microspheres, depending on the solution composition and environmental triggers up to 23 % of their fully loaded capacity. We evaluate the antioxidant activity of the encapsulated anthocyanins and demonstrate that this is retained to more than 90 % post-encapsulation. The microspheres loaded with anthocyanin change color function of solution pH. We also prototype a biocompatible polyvinyl alcohol-based composite with anthocyanin encapsulated polymer microspheres and demonstrate its potential as a colorimetric sensor for hydrochloric acid and ammonia gases. Thus, we demonstrate that polymer microspheres are effective carriers for anthocyanins, providing protection against degradation while exhibiting responsiveness to environmental conditions.
天然化合物,如花色苷,作为聚合物复合材料中的可行成分,受到的关注较少,但它们有望促成下一代具有环境“意识”的材料。花色苷在不同环境条件下会变色,但容易快速降解。这项工作的目的是将花色苷封装到由皮克林乳液生成的聚合物微球中,以提高其抗降解稳定性,同时保留其抗氧化潜力。此外,我们旨在基于天然化合物生产出适用于实际应用的有用的环境响应材料,如比色传感器。封装后,花色苷主要以黄烊盐阳离子形式存在,从而产生荧光微球。评估了封装效率和释放行为。微球最多可负载0.24 mg×g花色苷。花色苷可从微球中释放,释放量取决于溶液组成和环境触发因素,最高可达其满载量的23%。我们评估了封装后花色苷的抗氧化活性,并证明其在封装后保留率超过90%。负载花色苷的微球会根据溶液pH值改变颜色。我们还制作了一种基于生物相容性聚乙烯醇的复合材料,其中含有封装了花色苷的聚合物微球,并展示了其作为盐酸和氨气比色传感器的潜力。因此,我们证明聚合物微球是花色苷的有效载体,既能防止其降解,又能对环境条件做出响应。