Bio-inspired anisotropic eood-based hydrogel composites for bone repair
编号:75 访问权限:私有 更新:2021-11-15 18:41:53 浏览:583次 特邀报告

报告开始:2021年11月20日 14:25(Asia/Shanghai)

报告时间:25min

所在会场:[P] The 3rd International Symposium on Nanocellulosic Materials-Room 1 [S1] Oral Session 1

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摘要
Natural materials generally have a multi-scale hierarchical anisotropic structure selected by natural evolution for achieving particular functionalities and properties. For example, bone consists of highly ordered staggered arrays of cross-linked collagen fibrils embedded with plate-like hydroxyapatite (HAp) nanocrystals. Such hierarchical anisotropic structure and precise organization of the organic and inorganic phases at the nanoscale offer a unique combination of exceptional mechanical properties and biological functions. Mimicking the bone with simultaneously achieved hierarchical anisotropic structure and remarkable mechanical properties remains a grand challenge.
Anisotropic hydrogels mimicking the biological tissues with directional functions play essential roles in damage-tolerance, cell guidance and mass transport. Conventional synthetic hydrogels often have isotropic network structure, insufficient mechanical properties and lack of bio-functionalities, which greatly limit their applications for load-bear tissue engineering. Inspired by natural bone and wood, we develop a biomimetic strategy to fabricate highly anisotropic, ultrastrong and stiff, and osteoconductive wood-based hydrogel composites via impregnation of biocompatible sodium alginate hydrogels into the delignified pinewood followed by in-situ mineralization of hydroxyapatite (HAp) nanocrystals. By delignification, the porous structure of the delignified wood significantly benefits the infiltration of alginate hydrogel. The well-aligned cellulose nanofibrils endow the hydrogel composites with highly anisotropic structural and mechanical properties. The strong intermolecular bonds of the aligned cellulose fibrils and alginate/cellulose interaction, and the reinforcing nanofillers of HAp enable the hydrogel composites remarkable tensile strength of 67.8 MPa and elastic modulus of 670 MPa, which exceed almost all the currently available strong hydrogels. The presented hydrogel composites exhibit not only strong and anisotropic mechanical properties, but also bone-mimicking structural and compositional characteristics. In vitro, this mineralized wood-based hydrogel (MWH) can promote pre-osteoblast adhesion, spreading, proliferation and osteogenic differentiation. In vivo, the MWH can accelerate bone regeneration and enhance new bone ingrown to the scaffold. Our study provides a low-cost, eco-friendly, feasible and scalable approach for fabricating anisotropic, strong, stiff, hydrophilic and osteoconductive hydrogel composites for bone repair.
关键词
Bio-inspired anisotropic eood-based hydrogel composites for bone repair
报告人
Fang Ju
professor Southern University of Science and Technology, China

Dr. Ju Fang (Research Assistant Professor) 
Faculty of Engineering, Department of Material Science and Engineering, 
Southern University of Science and Technology.

Dr. Fang studied resource science and engineering at South China University of Technology from 2005 to 2009. He completed his master’s degree in pulp and paper engineering there. From 2012, supported by the China Scholarship Council, he was worked as a Ph.D. studentship in Professor Tetsuo Kondo’s group, Kyushu University, Japan. He received his doctorate from the Graduate School of Bioresource and Bioenvironmental Sciences, Kyushu University in 2015. After returning to China, he worked as a postdoc in the Department of Material Science and Engineering, Southern University of Science and Technology, Shenzhen. Since 2019, he has been a research assistant professor at Southern University of Science and Technology.

Inspired by nature, materials with biomimetic structures, morphologies, and functions can be achieved. It is essential to to clarify the relationship between the properties of materials and cellular functions. Base on these concepts, Fang and his co-works attempt to search for environmental and economic friendly strategies to construct biomimetic functional materials for tissue engineering.     

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重要日期
  • 会议日期

    11月20日

    2021

    11月21日

    2021

  • 11月16日 2021

    初稿截稿日期

  • 11月18日 2021

    报告提交截止日期

  • 11月18日 2021

    注册截止日期

主办单位
China Paper Industry Technical Association
承办单位
South China University of Technology
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