Protein-Based Encapsulation Strategies: Toward Micro- and Nanoscale Carriers with Increased Functionality.
Ricardo Ramos1,2,3, Julien Bernard1,2,3, François Ganachaud1,2,3
1Université de Lyon INSA Lyon CNRS IMP 5223 Villeurbanne Cedex 69621 France.
Small Science
|April 11, 2025
Summary
Proteins and peptides offer eco-friendly micro- and nanocapsules for active substance protection. This review details their fabrication and diverse applications in food and healthcare.
Area of Science:
- Biomaterials Science
- Nanotechnology
- Chemical Engineering
Background:
- Proteins and peptides are superior to synthetic polymers for encapsulating active substances due to their biocompatibility, biodegradability, and low immunogenicity.
- These biomolecules offer unique functionalities for advanced material design.
- Natural and engineered proteins/peptides can self-assemble into functional capsular structures.
Purpose of the Study:
- To provide a comprehensive review of protein- and peptide-based micro- and nanocapsules.
- To detail the various fabrication techniques for these biomolecular capsules.
- To highlight their potential applications across different industries, focusing on food technology and healthcare.
Main Methods:
- Review of existing literature on protein and peptide self-assembly for encapsulation.
- Analysis of fabrication methods for creating micro- and nanocapsules (e.g., protein cages, polypeptide coacervates).
- Categorization of capsules based on assembly conditions (template-free vs. template-assisted) and core content (gaseous, liquid, solid).
Main Results:
- Proteins and peptides can form stable micro- and nanocapsules through various self-assembly processes.
- Fabrication techniques include methods that utilize inherent protein properties or directed assembly.
- Applications span from food ingredient protection to drug delivery systems in healthcare.
Conclusions:
- Protein- and peptide-based micro- and nanocapsules represent a versatile and sustainable platform for encapsulating active substances.
- Their tunable properties and fabrication methods allow for tailored applications in diverse fields.
- Further research into these biomaterials promises advancements in food technology and biomedical applications.
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