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An engineered lamellar bone mimicking full-scale hierarchical architecture for bone regeneration

Authors :
Tao Yang
Zhichao Hao
Zhenzhen Wu
Binxin Xu
Jiangchen Liu
Le Fan
Qinmei Wang
Yanshan Li
Dongying Li
Sangzhu Tang
Chuanzi Liu
Weichang Li
Wei Teng
Source :
Bioactive Materials, Vol 27, Iss , Pp 181-199 (2023)
Publication Year :
2023
Publisher :
KeAi Communications Co., Ltd., 2023.

Abstract

Lamellar bone, compactly and ingeniously organized in the hierarchical pattern with 6 ordered scales, is the structural motif of mature bone. Each hierarchical scale exerts an essential role in determining physiological behavior and osteogenic bioactivity of bone. Engineering lamellar bone with full-scale hierarchy remains a longstanding challenge. Herein, using bioskiving and mineralization, we attempt to engineer compact constructs resembling full-scale hierarchy of lamellar bone. Through systematically investigating the effect of mineralization on physicochemical properties and bioactivities of multi-sheeted collagen matrix fabricated by bioskiving, the hierarchical mimicry and hierarchy-property relationship are elucidated. With prolongation of mineralization, hierarchical mimicry and osteogenic bioactivity of constructs are performed in a bidirectional manner, i.e. first rising and then descending, which is supposed to be related with transformation of mineralization mechanism from nonclassical to classical crystallization. Construct mineralized 9 days can accurately mimic each hierarchical scale and efficiently promote osteogenesis. Bioinformatic analysis further reveals that this construct potently activates integrin α5-PI3K/AKT signaling pathway through mechanical and biophysical cues, and thereby repairing critical-sized bone defect. The present study provides a bioinspired strategy for completely resembling complex hierarchy of compact mineralized tissue, and offers a critical research model for in-depth studying the structure-function relationship of bone.

Details

Language :
English
ISSN :
2452199X
Volume :
27
Issue :
181-199
Database :
Directory of Open Access Journals
Journal :
Bioactive Materials
Publication Type :
Academic Journal
Accession number :
edsdoj.9974b664fd8d407395bec7393248de42
Document Type :
article
Full Text :
https://doi.org/10.1016/j.bioactmat.2023.03.024