Harmonizing Thickness and Permeability in Bone Tissue Engineering: A Novel Silk Fibroin Membrane Inspired by Spider Silk Dynamics

Author:

Chen Wenze12,Liu Keyin3,Liao Xiaoyu2,Wu Jing1,Chen Lu1,Yang Zihan1,Wang Xiping1,Liao Yinxiu1,Fu Guiqiang2,Yang Xiaonian2,Wang Zishuo1,Qu Guanlin1,Wang Li1,Zhou Yuqiong1,Zhang ZhiYuan1,Yang Chi1,Ni Siyuan3,Zheng Jisi1,Tao Tiger H.34567ORCID,Zou Duohong12ORCID

Affiliation:

1. National Clinical Research Center for Oral Diseases Shanghai Key Laboratory of Stomatology and Shanghai Research Institute of Stomatology Department of Oral Surgery Shanghai Ninth People's Hospital College of Stomatology Shanghai Jiao Tong University School of Medicine Shanghai 200011 China

2. College & Hospital of Stomatology Anhui Medical University Key Laboratory of Oral Diseases Research of Anhui Province Hefei 230032 China

3. State Key Laboratory of Transducer Technology Shanghai Institute of Microsystem and Information Technology Chinese Academy of Sciences Shanghai 200050 China

4. Center of Materials Science and Optoelectronics Engineering University of Chinese Academy of Sciences Beijing 100049 China

5. School of Physical Science and Technology ShanghaiTech University Shanghai 200031 China

6. Institute of Brain‐Intelligence Technology Zhangjiang Laboratory Shanghai 200031 China

7. Shanghai Research Center for Brain Science and Brain‐Inspired Intelligence Shanghai 200031 China

Abstract

AbstractGuided bone regeneration gathers significant interest in the realm of bone tissue engineering; however, the interplay between membrane thickness and permeability continues to pose a challenge that can be addressed by the water‐collecting mechanism of spider silk, where water droplets efficiently move from smooth filaments to rough conical nodules. Inspired by the natural design of spider silk, an innovative silk fibroin membrane is developed featuring directional fluid transportation via harmoniously integrating a smooth, dense layer with a rough, loose layer; conical microchannels are engineered in the smooth and compact layer. Consequently, double‐layered membranes with cone‐shaped microporous passageways (CSMP‐DSF membrane) are designed for in situ bone repair. Through extensive in vitro testing, it is noted that the CSMP‐DSF membrane guides liquid flow from the compact layer's surface to the loose layer, enabling rapid diffusion. Remarkably, the CSMP‐DSF membrane demonstrates superior mechanical properties and resistance to bacterial adhesion. When applied in vivo, the CSMP‐DSF membrane achieves results on par with the commercial Bio‐Gide collagen membranes. This innovative integration of a cross‐thickness wetting gradient structure offers a novel solution, harmonizing the often‐conflicting requirements of material transport, mechanical strength, and barrier effectiveness, while also addressing issues related to tissue engineering scaffold perfusion.

Funder

Youth Innovation Promotion Association

Program of Shanghai Academic Research Leader

National Natural Science Foundation of China

National Key Research and Development Program of China

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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