生物相容性材料
纳米技术
生物物理学
化学
细胞保护
活性氧
细胞破裂
膜
细胞内
小泡
材料科学
抗氧化剂
细胞生物学
人工细胞
细胞
纳米颗粒
细胞膜
细胞存活
细胞壁
氧化应激
氧化磷酸化
药物输送
内体
细胞毒性
氧化还原
作者
Hwira Baek,Sangwoo Ruw,Kyungwon Seo,Marta Gonçalves,Seoyeon Ko,Yue Tong Ong,Zhun Li,Junoh Kim,Junoh Kim,Hyosung An,EonSeon Jin,Jin Woong Kim,Jin Woong Kim
出处
期刊:Small
[Wiley]
日期:2025-12-26
卷期号:22 (8): e11456-e11456
标识
DOI:10.1002/smll.202511456
摘要
Microalgae encapsulate extensive concentrations of bioactive metabolites within structurally recalcitrant cell walls that impede conventional extraction methodologies. Here we demonstrate a biomimetic strategy that exploits cellular elasticity to generate microalgae-derived nanovesicles (MNVs) with preserved therapeutic functionality. Using representative microalgae species with distinct wall architectures, we establish through atomic force microscopy and micropipette aspiration that vesicle production efficiency inversely correlates with cellular elasticity. Critical mechanical thresholds of ∼100 kPa (localized membrane properties) and ∼390 kPa (global) govern successful vesiculation. The resulting MNVs retain species-specific carotenoid profiles and exhibit enhanced antioxidant capacity compared to parent cells. Zeaxanthin-enriched MNVs demonstrate superior cytoprotection in oxidative-stressed keratinocytes, effectively modulating MAPK signaling and reducing intracellular reactive oxygen species. In reconstructed human epidermis models, MNVs preserve tissue architecture and redox homeostasis under UV-induced oxidative damage. This mechanically guided approach provides a scalable platform for harnessing microalgal therapeutics in biocompatible delivery systems.
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