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Non-Equilibrium Dissipative Assembly with Switchable Biological Functions.
Zhao, Peng; Zhao, Yuanfeng; Lu, Yan; Xu, Linjie; Li, Bohan; Zhao, Yingshuai; Zhou, Wei; Yan, Pu; Wang, Youfu; Cao, Kecheng; Zheng, Yijun.
Afiliação
  • Zhao P; ShanghaiTech University - Zhangjiang Campus, School of Physical Science and Technology and State Key Laboratory of Advanced Medical Materials and Devices, 393 HuaXia Road, 201210, Shanghai, CHINA.
  • Zhao Y; ShanghaiTech University - Zhangjiang Campus, School of Physical Science and Technology, CHINA.
  • Lu Y; ShanghaiTech University - Zhangjiang Campus, School of Physical Science and Technology, CHINA.
  • Xu L; ShanghaiTech University - Zhangjiang Campus, School of Physical Science and Technology and State Key Laboratory of Advanced Medical Materials and Devices, CHINA.
  • Li B; ShanghaiTech University - Zhangjiang Campus, School of Physical Science and Technology, CHINA.
  • Zhao Y; ShanghaiTech University - Zhangjiang Campus, School of Physical Science and Technology, CHINA.
  • Zhou W; ShanghaiTech University - Zhangjiang Campus, School of Physical Science and Technology, CHINA.
  • Yan P; ShanghaiTech University - Zhangjiang Campus, School of Physical Science and Technology, CHINA.
  • Wang Y; Shanghai Jiaotong University, School of Chemistry and Chemical Engineering, CHINA.
  • Cao K; ShanghaiTech University - Zhangjiang Campus, School of Physical Science and Technology, CHINA.
  • Zheng Y; ShanghaiTech University - Zhangjiang Campus: ShanghaiTech University, School of physical science and technology, 393 Middle Huaxia Road, 201210, Shanghai, CHINA.
Angew Chem Int Ed Engl ; : e202409169, 2024 Aug 22.
Article em En | MEDLINE | ID: mdl-39171425
ABSTRACT
Natural dissipative assembly (DSA) often exhibit energy-driven shifts in natural functions. However, creating man-made DSA that can mimic such biological activities transformation remains relatively rare. Herein, we introduce a cytomembrane-like dissipative assembly system based on chiral supramolecules. This system employs benzoyl cysteine in an out of equilibrium manner, enabling the shifts in biofunctions while minimizing material use. Specifically, aroyl-cystine derivatives primarily assemble into stable M-helix nanofibers under equilibrium conditions. These nanofibers enhance fibroblast adhesion and proliferation through stereospecific interactions with chiral cellular membranes. Upon the addition of chemical fuels, these functional nanofibers temporarily transform into non-equilibrium nanospheres, facilitating efficient drug delivery. Subsequently, these nanospheres revert to their original nanofiber state, effectively recycling the drug. The programmable function-shifting ability of this DSA establishes it as a novel, fuel-driven drug delivery vehicle. And the bioactive DSA not only addresses a gap in synthetic DSAs within biological applications but also sets the stage for innovative designs of 'living' materials.
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Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2024 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2024 Tipo de documento: Article