Oleandro Emilia, Stanzione Mariamelia, Buonocore Giovanna Giuliana, Lavorgna Marino
Institute of Polymers, Composites and Biomaterials-CNR, Piazzale E. Fermi 1, 80055 Portici, Italy.
Institute of Polymers, Composites and Biomaterials-CNR, Via Previati 1/E, 23900 Lecco, Italy.
Nanomaterials (Basel). 2024 Feb 23;14(5):414. doi: 10.3390/nano14050414.
Nanomaterials, due to their unique structural and functional features, are widely investigated for potential applications in a wide range of industrial sectors. In this context, protein-based nanoparticles, given proteins' abundance, non-toxicity, and stability, offer a promising and sustainable methodology for encapsulation and protection, and can be used in engineered nanocarriers that are capable of releasing active compounds on demand. Zein is a plant-based protein extracted from corn, and it is biocompatible, biodegradable, and amphiphilic. Several approaches and technologies are currently involved in zein-based nanoparticle preparation, such as antisolvent precipitation, spray drying, supercritical processes, coacervation, and emulsion procedures. Thanks to their peculiar characteristics, zein-based nanoparticles are widely used as nanocarriers of active compounds in targeted application fields such as drug delivery, bioimaging, or soft tissue engineering, as reported by others. The main goal of this review is to investigate the use of zein-based nanocarriers for different advanced applications including food/food packaging, cosmetics, and agriculture, which are attracting researchers' efforts, and to exploit the future potential development of zein NPs in the field of cultural heritage, which is still relatively unexplored. Moreover, the presented overview focuses on several preparation methods (i.e., antisolvent processes, spry drying), correlating the different analyzed methodologies to NPs' structural and functional properties and their capability to act as carriers of bioactive compounds, both to preserve their activity and to tune their release in specific working conditions.
由于其独特的结构和功能特性,纳米材料在广泛的工业领域中的潜在应用受到了广泛研究。在这种背景下,基于蛋白质的纳米颗粒,鉴于蛋白质的丰富性、无毒性和稳定性,为封装和保护提供了一种有前景且可持续的方法,并且可用于能够按需释放活性化合物的工程化纳米载体。玉米醇溶蛋白是一种从玉米中提取的植物蛋白,具有生物相容性、可生物降解性和两亲性。目前,有几种方法和技术参与到基于玉米醇溶蛋白的纳米颗粒制备中,如反溶剂沉淀法、喷雾干燥法、超临界工艺、凝聚法和乳化法。正如其他人所报道的,由于其独特的特性,基于玉米醇溶蛋白的纳米颗粒在药物递送、生物成像或软组织工程等靶向应用领域中被广泛用作活性化合物的纳米载体。本综述的主要目的是研究基于玉米醇溶蛋白的纳米载体在不同的先进应用中的使用情况,包括食品/食品包装、化妆品和农业等吸引研究人员关注的领域,并探索玉米醇溶蛋白纳米颗粒在文化遗产领域的未来潜在发展,该领域仍相对未被探索。此外,本综述聚焦于几种制备方法(即反溶剂法、喷雾干燥法),将不同的分析方法与纳米颗粒的结构和功能特性及其作为生物活性化合物载体的能力相关联,以保持其活性并在特定工作条件下调节其释放。