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Updated: Jan 12, 2026

Characterizing Individual Protein Aggregates by Infrared Nanospectroscopy and Atomic Force Microscopy
Published on: September 12, 2019
Nanofilm Formed via Amyloid-Like Protein Aggregation for Interfacial Modification: Prospects in Food, Agricultural,
Xinwei Tian1, Wenshuai Hu2, Hanyu Chen1
1Shaanxi Engineering Laboratory for Food Green Processing and Safety Control, and Shaanxi Key Laboratory for Hazard Factors Assessment in Processing and Storage of Agricultural Products, College of Food Engineering and Nutritional Science, Shaanxi Normal University, Xi'an 710119, China.
Abstract:
Amyloid formation, once primarily associated with neurodegenerative diseases, has recently emerged as a versatile platform in materials science and biotechnology. In particular, amyloid-like aggregation triggered by reductive cleavage of disulfide bonds enables the formation of phase-transitioned protein (PTP) nanofilm at interfaces. The resulting nanofilm combines facile fabrication, robust adhesion, flexibility, and tunable functionalities, making it attractive as a sustainable, biobased material, with unique potential in food and agricultural applications where reviews remain lacking. This review outlines current knowledge of PTP nanofilms, focusing on molecular and physicochemical mechanisms underlying their aggregation, as well as key characterization and modulation strategies. Emphasis is placed on interfacial phenomena such as adsorption and tension regulation that govern nanofilm retention and stability. Emerging applications in food preservation and agriculture are highlighted, demonstrating the potential of PTP nanofilm to enhance sustainability and productivity. Future challenges and opportunities are briefly discussed to guide further development of PTP-based systems.
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