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Ceramic Omnidirectional Bioprinting in Cell-Laden Suspensions for the Generation of Bone Analogs
Published on: August 8, 2022
Covalent reinforcement drives hierarchical multiscale structure-function integration in hybrid chicken-plant protein
Jiyoon Kim1, Jung Soo Kim2, Kwang-Deog Moon3
1School of Food Science and Biotechnology, Kyungpook National University, 80 Daehak-ro, Daegu 41566, South Korea; 3D Food Printing Technology Research Institute, FOODPRO CO., Ltd., 14 Bokhyeon-ro, Daegu 41530, South Korea; Smart Food Manufacturing Research Group, Korea Food Research Institute, Wanju-gun 55365, South Korea.
None:
Hybrid protein systems produced by simple blending often lack the hierarchical structural organization required to reproduce the physicochemical coherence of native muscle tissues. In this study, transglutaminase-mediated ε-(γ-glutamyl)lysine cross-linking was introduced to promote structural integration in hybrid chicken-plant protein systems. Covalent reinforcement, together with plant-derived non-covalent interactions, stabilized an intermediate protein network and facilitated extrusion-guided alignment, resulting in anisotropically aligned fibrous structures with improved fascicle-like structural coherence. The reinforced systems exhibited reduced shrinkage, enhanced processing stability, and anisotropic mechanical resistance following extrusion and thermal treatment. Importantly, these structural modifications were achieved without apparent depletion of determined essential amino acids or reduction in simulated protein digestive accessibility. Multivariate analysis further revealed coordinated multiscale relationships linking molecular interactions, hierarchical structural organization, and mechanical performance. These findings demonstrate that covalent reinforcement can support structural optimization while maintaining compositional balance and simulated digestive accessibility in hybrid protein systems designed for extrusion-based 3D food structuring.
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