Injectable Biomimetic Hydrogel Guided Functional Bone Regeneration by Adapting Material Degradation to Tissue Healing

Author:

Li Yamin1,Xiao Lan2,Wei Daixu3ORCID,Liu Shengyang4,Zhang Zeren4,Lian Ruixian4,Wang Liren1,Chen Yunsu1,Jiang Jia1,Xiao Yin25,Liu Changsheng4,Li Yulin4,Zhao Jinzhong1ORCID

Affiliation:

1. Shanghai Sixth People's Hospital Affiliated to Shanghai Jiao Tong University School of Medicine Shanghai 200233 China

2. School of Mechanical, Medical and Process Engineering Centre for Biomedical Technologies Queensland University of Technology 60 Musk Avenue, Kelvin Grove Brisbane QLD 4059 Australia

3. Key Laboratory of Resource Biology and Biotechnology in Western China, Ministry of Education Department of Life Sciences and Medicine Northwest University Xi'an 710069 China

4. Engineering Research Centre for Biomedical Materials of Ministry of Education, The Key Laboratory for Ultrafine Materials of Ministry of Education School of Material Science and Engineering Frontiers Science Center for Materiobiology and Dynamic Chemistry East China University of Science and Technology Shanghai 200237 China

5. School of Medicine and Dentistry Griffith University Gold Coast QLD 4222 Australia

Abstract

AbstractThe treatment of irregular bone defects remains a clinical challenge since the current biomaterials (e.g., calcium phosphate bone cement (CPC)) mainly act as inert substitutes, which are incapable of transforming into a regenerated host bone (termed functional bone regeneration). Ideally, the implant degradation rate should adapt to that of bone regeneration, therefore providing sufficient physicochemical support and giving space for bone growth. This study aims to develop an injectable biomaterial with bone regeneration‐adapted degradability, to reconstruct a biomimetic bone‐like structure that can timely transform into new bone, facilitating functional bone regeneration. To achieve this goal, a hybrid (LP‐CPC@gelatin, LC) hydrogel is synthesized via one‐step incorporation of laponite (LP) and CPC into gelatin hydrogel, and the LC gel degradation rate is controlled by adjusting the LP/CPC ratio to match the bone regeneration rate. Such an LC hydrogel shows good osteoinduction, osteoconduction, and angiogenesis effects, with complete implant‐to‐new bone transformation capacity. This 2D nanoclay‐based bionic hydrogel can induce ectopic bone regeneration and promote ligament graft osseointegration in vivo by inducing functional bone regeneration. Therefore, this study provides an advanced strategy for functional bone regeneration and an injectable biomimetic biomaterial for functional skeletal muscle repair in a minimally invasive therapy.

Funder

National Key Research and Development Program of China

National Natural Science Foundation of China

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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