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层粘连蛋白 α4 通过促进细胞黏附和血管生成促进骨再生。

Laminin alpha 4 promotes bone regeneration by facilitating cell adhesion and vascularization.

机构信息

National & Regional United Engineering Lab of Tissue Engineering, Department of Orthopedics, Southwest Hospital, Third Military Medical University, Chongqing, China; Department of Orthopaedics, 72nd Group Army Hospital, Huzhou University, Huzhou, Zhejiang, China.

National & Regional United Engineering Lab of Tissue Engineering, Department of Orthopedics, Southwest Hospital, Third Military Medical University, Chongqing, China; Department of Spine Surgery, Center for Orthopedics, Daping Hospital, Third Military Medical University, Chongqing, China.

出版信息

Acta Biomater. 2021 May;126:183-198. doi: 10.1016/j.actbio.2021.03.011. Epub 2021 Mar 9.

Abstract

Selective cell retention (SCR) has been widely used as a bone tissue engineering technique for the real-time fabrication of bone grafts. The greater the number of mesenchymal stem cells (MSCs) and endothelial progenitor cells (EPCs) retained in the scaffold, the better the osteoinductive and angiogenic properties of the scaffold's microenvironment. Improved bioscaffold properties in turn lead to improved bone graft survival, bone regeneration, and angiogenesis. Laminin plays a key role in cell-matrix adhesion, cell proliferation, and differentiation. We designed a collagen-binding domain (CBD) containing the core functional amino acid sequences of laminin α4 (CBD-LN peptide) to supplement the functional surface of a collagen-based decalcified bone matrix (DBM) scaffold. This scaffold promoted MSCs and EPCs early cell adhesion through up-regulating the expression of integrin α5β1 and integrin αvβ3 respectively, thus accelerated the following cell spreading, proliferation, and differentiation. Interestingly, it promoted the retention of MSCs (CD90/CD105 cells) and EPCs (CD31 cells) in the scaffold following the use of clinical SCR technology. Furthermore, the DBM/CBD-LN scaffold induced the formation of type H vessels through the activation of the HIF-1α signaling pathway. The DBM/CBD-LN scaffold displayed rapid bone formation and angiogenesis in vivo, suggesting that it might be used as a new biomaterial in bone tissue engineering. STATEMENT OF SIGNIFICANCE: Selective cell retention technology (SCR) has been utilized in clinical settings to manufacture bioactive bone grafts. Specifically, demineralized bone matrix (DBM) is a widely-used SCR clinical biomaterial but it displays poor adhesion performance and angiogenic activity. In this work, we designed a collagen-binding domain (CBD) containing the core functional amino acid sequences of laminin α4 to supplement the functional surface of a collagen-based DBM scaffold. This bioscaffold promoted SCR-mediated MSCs and EPCs early cell adhesion, thus accelerated the following cell spreading, proliferation, and differentiation. Our results indicate this bioscaffold greatly induced osteogenesis and angiogenesis in vivo. In general, this bioscaffold has a good prospect for SCR application and may provide highly bioactive bone implant in clinical environment.

摘要

选择细胞保留 (SCR) 已被广泛用作制造骨移植物的实时组织工程技术。保留在支架中的间充质干细胞 (MSC) 和内皮祖细胞 (EPC) 越多,支架微环境的成骨和血管生成特性就越好。生物支架性能的提高反过来又导致骨移植物存活率、骨再生和血管生成的提高。层粘连蛋白在细胞-基质黏附、细胞增殖和分化中起关键作用。我们设计了一个含有层粘连蛋白 α4 核心功能氨基酸序列的胶原结合域 (CBD) (CBD-LN 肽) 来补充基于胶原的脱钙骨基质 (DBM) 支架的功能表面。该支架通过分别上调整合素 α5β1 和整合素 αvβ3 的表达来促进 MSC 和 EPC 的早期细胞黏附,从而加速随后的细胞铺展、增殖和分化。有趣的是,它通过激活 HIF-1α 信号通路促进了临床 SCR 技术应用后支架中 MSC(CD90/CD105 细胞)和 EPC(CD31 细胞)的保留。此外,DBM/CBD-LN 支架通过激活 HIF-1α 信号通路诱导形成 H 型血管。DBM/CBD-LN 支架在体内表现出快速的骨形成和血管生成,表明它可能被用作骨组织工程中的新型生物材料。

意义声明

选择细胞保留技术 (SCR) 已在临床环境中用于制造生物活性骨移植物。具体来说,脱钙骨基质 (DBM) 是一种广泛使用的 SCR 临床生物材料,但它表现出较差的黏附性能和血管生成活性。在这项工作中,我们设计了一个含有层粘连蛋白 α4 核心功能氨基酸序列的胶原结合域 (CBD) 来补充基于胶原的 DBM 支架的功能表面。这种生物支架促进了 SCR 介导的 MSC 和 EPC 的早期细胞黏附,从而加速了随后的细胞铺展、增殖和分化。我们的结果表明,这种生物支架在体内极大地促进了成骨和血管生成。总的来说,这种生物支架在 SCR 应用方面有很好的前景,并且可能在临床环境中提供高生物活性的骨植入物。

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