Cottet Celeste, Salvay Andrés G, Peltzer Mercedes A, Fernández-García Marta
Laboratory of Obtention, Modification, Characterization and Evaluation of Materials (LOMCEM), Department of Science and Technology, University of Quilmes, Roque Sáenz Peña 352, Bernal B1876BXD, Buenos Aires, Argentina.
Scientific Research Commission (CIC), 526 st, La Plata B1900, Buenos Aires, Argentina.
Polymers (Basel). 2021 Jan 8;13(2):200. doi: 10.3390/polym13020200.
Poly(itaconic acid) (PIA) was synthesized via conventional radical polymerization. Then, functionalization of PIA was carried out by an esterification reaction with the heterocyclic groups of 1,3-thiazole and posterior quaternization by N-alkylation reaction with iodomethane. The modifications were confirmed by Fourier transform infrared (FTIR) and proton nuclear magnetic resonance (H-NMR), as well as ζ-potential measurements. Their antimicrobial activity was tested against different Gram-negative and Gram-positive bacteria. After characterization, the resulting polymers were incorporated into gelatin with oxidized starch and glycerol as film adjuvants, and dopamine as crosslinking agent, to develop antimicrobial-active films. The addition of quaternized polymers not only improved the mechanical properties of gelatin formulations, but also decreased the solution absorption capacity during the swelling process. However, the incorporation of synthesized polymers increased the deformation at break values and the water vapor permeability of films. The antioxidant capacity of films was confirmed by radical scavenging ability and, additionally, those films exhibited antimicrobial activity. Therefore, these films can be considered as good candidates for active packaging, ensuring a constant concentration of the active compound on the surface of the food, increasing products' shelf-life and reducing the environmental impact generated by plastics of petrochemical origin.
聚衣康酸(PIA)通过常规自由基聚合反应合成。然后,通过与1,3-噻唑的杂环基团进行酯化反应对PIA进行功能化,并通过与碘甲烷的N-烷基化反应进行后续季铵化。通过傅里叶变换红外光谱(FTIR)、质子核磁共振(H-NMR)以及ζ电位测量对修饰进行了确认。测试了它们对不同革兰氏阴性菌和革兰氏阳性菌的抗菌活性。表征后,将所得聚合物与氧化淀粉和甘油作为薄膜助剂以及多巴胺作为交联剂掺入明胶中,以制备具有抗菌活性的薄膜。季铵化聚合物的加入不仅改善了明胶制剂的机械性能,还降低了溶胀过程中的溶液吸收能力。然而,合成聚合物的掺入增加了薄膜的断裂伸长率和水蒸气透过率。通过自由基清除能力证实了薄膜的抗氧化能力,此外,这些薄膜还表现出抗菌活性。因此,这些薄膜可被视为活性包装的良好候选材料,可确保食品表面活性化合物的浓度恒定,延长产品保质期并减少石化来源塑料对环境的影响。