纳米纤维素
纳米技术
组织工程
材料科学
再生(生物学)
细菌纤维素
伤口愈合
手性(物理)
再生医学
细胞外基质
仿生学
药物输送
仿生材料
纤维素
生物材料
脚手架
组织修复
天然组织
生物相容性
纳米生物技术
生物组织
纳米医学
液晶
生物医学
作者
Mahboubeh Nabavinia,Hossein Khanjanzadeh,Asier R. Muguruza,Anna Roig,Erlantz Lizundia,Justin Orazio Zoppe
标识
DOI:10.1002/sstr.202500793
摘要
Biomaterials play a vital role in tissue engineering and regenerative medicine. Chiral materials have emerged as promising platforms in biomedicine due to their ability to mimic the hierarchical organization of the native extracellular matrix and to modulate cellular and microbial behavior through chirality‐dependent biological interactions. This review highlights the potential of chiral nanocellulose assemblies and their applications in tissue engineering and wound healing. We first introduce chirality, together with the structural and functional properties of nanocellulose. We then discuss the interactions between chiral materials and mammalian as well as bacterial cells, emphasizing how chirality may influence cellular adhesion, proliferation, differentiation, and antimicrobial responses. We then summarize recent advances in the application of chiral biobased materials for tissue regeneration and wound repair, with a particular focus on nanocellulose‐based systems. The self‐assembly of cellulose nanocrystals into chiral nematic phases, in particular, allows the fabrication of effective biomimetic materials for wound healing and controlling cell adhesion. By controlling factors like ionic strength, pH, external fields, and additives, the chiral nematic pitch and resulting properties of cellulose nanocrystal assemblies can be finely tuned. Finally, we outline advantages and obstacles in the application of chiral nanocellulose for specific biomedical applications. Overall, chiral nanocellulose‐derived materials represent a potentially sustainable and versatile platform with significant prospects to enable next‐generation therapeutic strategies in tissue engineering and wound healing.
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