4.6 Article

Development of a novel bio-inspired cotton-like collagen aggregate/chitin based biomaterial with a biomimetic 3D microstructure for efficient hemostasis and tissue repair

期刊

JOURNAL OF MATERIALS CHEMISTRY B
卷 7, 期 46, 页码 7338-7350

出版社

ROYAL SOC CHEMISTRY
DOI: 10.1039/c9tb02028d

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资金

  1. National Natural Science Foundation of China [21808133, 21804084]
  2. Scientific Research Foundation for Young Scholars of Shaanxi University of Science Technology [2017BT-32]
  3. Special Research Program of Shaanxi Provincial Department of Education [18JK0108]
  4. Science and Technology Project of Xianyang City [2018k02-28]
  5. Shaanxi Province Key RD Program [2018ZDXM-SF-091]
  6. Basic Research Project of Wenzhou City [2019Y1073]

向作者/读者索取更多资源

Hemostatic materials based on collagen and chitin are commonly assessed with regard to their topical absorbability and bioactivity. However, their clinical application faces challenges such as relatively long hemostatic and wound healing times, single function, as well as wound bleeding in patients with blood diseases. Herein, a novel bio-inspired cotton-like collagen aggregate/chitin based biomaterial for rapid hemostatic and tissue repair (V-3D-Ag-col) was fabricated by a specific gradient-removal solvent approach. Significantly, for the first time, an advanced collagen aggregate (Ag-col) composed of typical D-periodic cross-striated collagen fibrils and thick collagen fiber bundles was used instead of traditional collagen molecules (Col) to construct a hemostatic material. The target material showed a biomimetic 3D microstructure and cotton-like appearance, as expected, which were conducive to platelet adhesion and aggregation. The fabricated V-3D-Ag-col exhibited superior thermo-stability, hemostatic activity and biodegradability. More importantly, V-3D-Ag-col could significantly promote cell growth and proliferation. Further, V-3D-Ag-col could accelerate the wound healing process better than the same material based on conventional collagen (V-3D-Col). In consequence, V-3D-Ag-col has the potential to become a new generation of collagen-absorbable functional hemostatic materials. Furthermore, Ag-col can replace the currently available conventional collagen materials as raw materials for the new generation of collagen-based biomedical materials.

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