利用多层电纺纳米纤维(β-环糊精/PVA/PLGA)封装生物大分子(己醛)以实现控释,从而延长芒果(Alphonso)收获后的货架期

IF 2.3 Q1 AGRICULTURE, MULTIDISCIPLINARY ACS agricultural science & technology Pub Date : 2024-08-27 DOI:10.1021/acsagscitech.4c0038310.1021/acsagscitech.4c00383
Preetha Sundaram, Kannan Malaichamy*, Subramanian Kizhaeral Sevanthiyppan and Govindaraju Kasivelu, 
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引用次数: 0

摘要

利用β-环糊精、聚乙烯醇和聚乳酸-共聚乙醇酸开发的电纺多层纳米纤维基质有效地包裹了己醛生物分子,并促进了其控释。通过扫描电子显微镜(171 nm)、透射电子显微镜(73 nm)、傅立叶变换红外光谱(1716 cm-1 处的峰值与己醛相对应)、X 射线衍射(12.13 和 18.69°)和热重分析(340 °C),对负载己醛的多层纳米纤维基质(覆盖法)进行了表征。通过叠加法,使用己醛负载的多层纳米纤维基质处理的水果在生理重量、pH 值、总可溶性固形物和总糖含量方面的损失较小(17.61%、5.15、20.05° Brix、17.32%,而对照组为 26.此外,芒果的硬度、可滴定酸度和维生素 C(分别为 11.86 N/m、0.54 和 8.53%)也高于对照组(分别为 6.12 N/m、0.38 和 5.09%)。使用多层纳米纤维基质处理的芒果(Alphonso 变种)的货架期比对照水果(12 天)延长了 23 天。因此,总体结果表明,多层纳米纤维基质能有效封装己醛,并能缓慢调节其释放,可有效提高水果的物理、生物化学成分和货架期。
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Encapsulation of Biomolecule (Hexanal) Using Multilayer Electrospun Nanofibers (β-Cyclodextrin/PVA/PLGA) for Controlled Release to Extend the Postharvest Shelf Life of Mango Fruits (Alphonso)

Electrospun multilayer nanofiber matrices developed using β-cyclodextrin, poly(vinyl alcohol), and poly(lactic-co-glycolic) acid effectively encapsulated the hexanal biomolecule and facilitated its controlled release. The multilayer nanofiber matrices loaded with hexanal (overlay method) are characterized through scanning electron microscopy (171 nm), transmission electron microscopy (73 nm), Fourier transform infrared spectroscopy (peak at 1716 cm–1 corresponds to hexanal), X-ray diffraction (12.13 and 18.69°), and thermogravimetric analysis (340 °C). Fruits treated with hexanal-loaded multilayer nanofiber matrices by the overlay method recorded a lower loss in physiological weight, pH, total soluble solids, and total sugar content (17.61%, 5.15, 20.05° Brix, 17.32%, whereas in control 26.99%, 5.75, 23.08° Brix, and 21.34%, respectively, on 21st day of observation), and furthermore, the firmness, titratable acidity, and vitamin C (11.86 N/m, 0.54, and 8.53%) were higher than those of control (6.12 N/m, 0.38, and 5.09%, respectively). The shelf life of mango fruits (var. Alphonso) treated with multilayer nanofiber matrices was extended up to 23 days compared to that of the control fruits (12 days). Thus, the overall results suggested that multilayer nanofiber matrices effectively encapsulate hexanal and regulate its release slowly, which could be effectively used to enhance the physical and biochemical components and shelf life of fruits.

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