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一种模仿全尺寸分级结构用于骨再生的工程化层状骨。

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

作者信息

Yang Tao, Hao Zhichao, Wu Zhenzhen, Xu Binxin, Liu Jiangchen, Fan Le, Wang Qinmei, Li Yanshan, Li Dongying, Tang Sangzhu, Liu Chuanzi, Li Weichang, Teng Wei

机构信息

Hospital of Stomatology, Guanghua School of Stomatology, Sun Yat-sen University and Guangdong Provincial Key Laboratory of Stomatology, No.56, Lingyuan West Road, Yuexiu District, Guangzhou, 510055, China.

Department of Periodontology and Implantology, Stomatological Hospital, School of Stomatology, Southern Medical University, Guangzhou, China.

出版信息

Bioact Mater. 2023 Apr 8;27:181-199. doi: 10.1016/j.bioactmat.2023.03.024. eCollection 2023 Sep.

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.

摘要

板层骨以紧密且巧妙的方式组织成具有6个有序层级的分级模式,是成熟骨的结构基元。每个分级层级在决定骨的生理行为和成骨生物活性方面都发挥着重要作用。构建具有完整层级的板层骨仍然是一个长期存在的挑战。在此,我们利用生物切片和矿化技术,试图构建出类似于板层骨完整层级的致密结构。通过系统研究矿化对生物切片制备的多层胶原基质的物理化学性质和生物活性的影响,阐明了层级模拟和层级-性质关系。随着矿化时间的延长,构建物的层级模拟和成骨生物活性呈双向变化,即先升高后降低,这可能与矿化机制从非经典结晶向经典结晶的转变有关。矿化9天的构建物能够准确模拟每个分级层级,并有效促进成骨。生物信息学分析进一步表明,该构建物通过机械和生物物理信号强力激活整合素α5-PI3K/AKT信号通路,从而修复临界尺寸骨缺损。本研究提供了一种仿生策略,可完全模拟致密矿化组织的复杂层级,并为深入研究骨的结构-功能关系提供了关键的研究模型。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4fd0/10120318/fa86577e243a/ga1.jpg

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