A 3D biomimetic optoelectronic scaffold repairs cranial defects

Author:

Wang Huachun1ORCID,Tian Jingjing2,Jiang Yuxi3ORCID,Liu Shuang4,Zheng Jingchuan5,Li Ningyu3,Wang Guiyan3ORCID,Dong Fan3,Chen Junyu1ORCID,Xie Yang1,Huang Yunxiang1,Cai Xue1,Wang Xiumei5ORCID,Xiong Wei46ORCID,Qi Hui7,Yin Lan5ORCID,Wang Yuguang3ORCID,Sheng Xing16ORCID

Affiliation:

1. Department of Electronic Engineering, Beijing National Research Center for Information Science and Technology, Institute for Precision Medicine, Center for Flexible Electronics Technology, Tsinghua University, Beijing 100084, China.

2. Department of Medical Science Research Center, Peking Union Medical College Hospital, Chinese Academy of Medical Sciences & Peking Union Medical College, Beijing 100730, China.

3. National Engineering Laboratory for Digital and Material Technology of Stomatology, Peking University School and Hospital of Stomatology, Beijing 100082, China.

4. School of Life Sciences, Tsinghua University, Beijing 100084, China.

5. School of Materials Science and Engineering, State Key Laboratory of New Ceramics and Fine Processing, Key Laboratory of Advanced Materials of Ministry of Education, Tsinghua University, Beijing 100084, China.

6. IDG/McGovern Institute for Brain Research, Tsinghua University, Beijing 100084, China.

7. Beijing Research Institute of Traumatology and Orthopaedics, Beijing Jishuitan Hospital, Beijing 100035, China.

Abstract

Bone fractures and defects pose serious health-related issues on patients. For clinical therapeutics, synthetic scaffolds have been actively explored to promote critical-sized bone regeneration, and electrical stimulations are recognized as an effective auxiliary to facilitate the process. Here, we develop a three-dimensional (3D) biomimetic scaffold integrated with thin-film silicon (Si)–based microstructures. This Si-based hybrid scaffold not only provides a 3D hierarchical structure for guiding cell growth but also regulates cell behaviors via photo-induced electrical signals. Remotely controlled by infrared illumination, these Si structures electrically modulate membrane potentials and intracellular calcium dynamics of stem cells and potentiate cell proliferation and differentiation. In a rodent model, the Si-integrated scaffold demonstrates improved osteogenesis under optical stimulations. Such a wirelessly powered optoelectronic scaffold eliminates tethered electrical implants and fully degrades in a biological environment. The Si-based 3D scaffold combines topographical and optoelectronic stimuli for effective biological modulations, offering broad potential for biomedicine.

Publisher

American Association for the Advancement of Science (AAAS)

Subject

Multidisciplinary

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