Alfieri Maria Laura, Moccia Federica, D'Errico Gerardino, Panzella Lucia, d'Ischia Marco, Napolitano Alessandra
Department of Chemical Sciences, University of Naples "Federico II", Via Cintia 4, I-80126 Naples, Italy.
Polymers (Basel). 2020 Oct 30;12(11):2544. doi: 10.3390/polym12112544.
Phenolic polymers produced by enzymatic oxidation under biomimetic and eco-friendly reaction conditions are usually endowed with potent antioxidant properties. These properties, coupled with the higher biocompatibility, stability and processability compared to low-molecular weight phenolic compounds, open important perspectives for various applications. Herein, we report the marked boosting effect of acid treatment on the antioxidant properties of a series of polymers obtained by peroxidase-catalyzed oxidation of natural phenolic compounds. Both 2,2-diphenyl-1-picrylhydrazyl (DPPH) and ferric reducing/antioxidant power (FRAP) assays indicated a remarkable increase in the antioxidant properties for most phenolic polymers further to the acid treatment. In particular, up to a ca. 60% decrease in the EC value in the DPPH assay and a 5-fold increase in the Trolox equivalents were observed. Nitric oxide- and superoxide-scavenging assays also indicated highly specific boosting effects of the acid treatment. Spectroscopic evidence suggested, in most cases, that the occurrence of structural modifications induced by the acid treatment led to more extended π-electron-conjugated species endowed with more efficient electron transfer properties. These results open new perspectives toward the design of new bioinspired antioxidants for application in food, biomedicine and material sciences.
在仿生且环保的反应条件下通过酶促氧化产生的酚类聚合物通常具有强大的抗氧化性能。与低分子量酚类化合物相比,这些性能以及更高的生物相容性、稳定性和可加工性,为各种应用开辟了重要前景。在此,我们报道了酸处理对一系列通过过氧化物酶催化天然酚类化合物氧化得到的聚合物的抗氧化性能具有显著的增强作用。2,2-二苯基-1-苦基肼自由基(DPPH)和铁离子还原/抗氧化能力(FRAP)测定均表明,大多数酚类聚合物经酸处理后抗氧化性能显著提高。特别是,在DPPH测定中,EC值降低了约60%,且Trolox当量增加了5倍。一氧化氮和超氧阴离子清除测定也表明了酸处理具有高度特异性的增强作用。光谱证据表明,在大多数情况下,酸处理引起的结构修饰导致形成了具有更高效电子转移性能的更广泛的π-电子共轭物种。这些结果为设计用于食品、生物医学和材料科学的新型仿生抗氧化剂开辟了新的前景。