自愈水凝胶
纳米技术
生物加工
生物高聚物
材料科学
3d打印
3D生物打印
3D打印
按需
生物相容性材料
设计要素和原则
机械强度
仿生学
药物输送
化学
生化工程
智能聚合物
保健品
食品
作者
Yifu Chu,Peineng Zhu,Lingyun Chen
标识
DOI:10.1021/acs.jafc.5c09488
摘要
The growing demand for sustainable materials has driven interest in biopolymer-based 3D printing, yet their limited extrudability and shape fidelity restrict direct application. This review summarizes recent advances in the molecular design of protein- and polysaccharide-based hydrogels through chemical modification, introducing cross-linkable groups that enhance shear-thinning for extrusion, self-healing for shape fidelity, and controlled gelation for structural stability, thereby overcoming these limitations. Emerging granular hydrogels are also highlighted as next-generation 3D-printable bioinks. Significantly, this review bridges the knowledge gap by elucidating the molecular rationale linking chemical modifications to key ink properties and their functional performance, particularly in customizing food structures with tailored textures and nutrient delivery profiles, and in designing tissue-engineering scaffolds that balance structural fidelity with biological functionality to support cell-laden printing and tissue regeneration. Overall, this review first establishes a molecular framework linking biopolymer modification to 3D printing outcomes, guiding next-generation biofabrication technologies across food and biomedical fields.
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