4.8 Article

Conformational manipulation of scale-up prepared single-chain polymeric nanogels for multiscale regulation of cells

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NATURE COMMUNICATIONS
卷 10, 期 -, 页码 -

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NATURE PUBLISHING GROUP
DOI: 10.1038/s41467-019-10640-z

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资金

  1. National Natural Science Foundation of China [31570979, 81430049, 81772322, 81772404]
  2. General Research Fund grant from the Research Grants Council of Hong Kong [14204618, 14205817, 14120118, 14160917, 9054014 N_CityU102/15]
  3. Health and Medical Research Fund
  4. Food and Health Bureau
  5. Government of the Hong Kong Special Administrative Region [04152836]
  6. Hong Kong Research Grants Council Theme-based Research Scheme [T13-402/17-N]
  7. Hong Kong Innovation Technology Funds (TCFS), Hong Kong [GHP/011/17SZ, ITS/UIM-305]
  8. Shenzhen Science and Technology Innovation Commission Project [JCYJ20170307165611557]
  9. Chow Yuk Ho Technology Centre for Innovative Medicine, The Chinese University of Hong Kong
  10. SMART program, Lui Che Woo Institute of Innovative Medicine, The Chinese University of Hong Kong

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Folded single chain polymeric nano-objects are the molecular level soft material with ultra-small size. Here, we report an easy and scalable method for preparing single-chain nanogels (SCNGs) with improved efficiency. We further investigate the impact of the dynamic molecular conformational change of SCNGs on cellular interactions from molecular to bulk scale. First, the supramolecular unfoldable SCNGs efficiently deliver siRNAs into stem cells as a molecular drug carrier in a conformation-dependent manner. Furthermore, the conformation changes of SCNGs enable dynamic and precise manipulation of ligand tether structure on 2D biomaterial interfaces to regulate the ligand-receptor ligation and mechanosensing of cells. Lastly, the dynamic SCNGs as the building blocks provide effective energy dissipation to bulk biomaterials such as hydrogels, thereby protecting the encapsulated stem cells from deleterious mechanical shocks in 3D matrix. Such a bottom-up molecular tailoring strategy will inspire further applications of single-chain nano-objects in the biomedical area.

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