3D-printed bone regeneration scaffolds modulate bone metabolic homeostasis through vascularization for osteoporotic bone defects

IF 12.9 1区 医学 Q1 ENGINEERING, BIOMEDICAL Biomaterials Pub Date : 2024-12-01 Epub Date: 2024-07-06 DOI:10.1016/j.biomaterials.2024.122699
Caiping Yan , Pengrui Zhang , Qiwei Qin , Ke Jiang , Yue Luo , Chao Xiang , Jiangtao He , Lu Chen , Dianming Jiang , Wenguo Cui , Yuling Li
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Abstract

The treatment of osteoporotic bone defects poses a challenge due to the degradation of the skeletal vascular system and the disruption of local bone metabolism within the osteoporotic microenvironment. However, it is feasible to modulate the disrupted local bone metabolism imbalance through enhanced vascularization, a theory termed "vascularization-bone metabolic balance". This study developed a 3D-printed polycaprolactone (PCL) scaffold modified with EPLQLKM and SVVYGLR peptides (PCL-SE). The EPLQLKM peptide attracts bone marrow-derived mesenchymal stem cells (BMSCs), while the SVVYGLR peptide enhances endothelial progenitor cells (EPCs) vascular differentiation, thus regulating bone metabolism and fostering bone regeneration through the paracrine effects of EPCs. Further mechanistic research demonstrated that PCL-SE promoted the vascularization of EPCs, activating the Notch signaling pathway in BMSCs, leading to the upregulation of osteogenesis-related genes and the downregulation of osteoclast-related genes, thereby restoring bone metabolic balance. Furthermore, PCL-SE facilitated the differentiation of EPCs into "H"-type vessels and the recruitment of BMSCs to synergistically enhance osteogenesis, resulting in the regeneration of normal microvessels and bone tissues in cases of femoral condylar bone defects in osteoporotic SD rats. This study suggests that PCL-SE supports in-situ vascularization, remodels bone metabolic translational balance, and offers a promising therapeutic regimen for osteoporotic bone defects.

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三维打印骨再生支架通过血管化调节骨代谢平衡,用于骨质疏松性骨缺损。
由于骨骼血管系统退化和骨质疏松微环境中局部骨代谢紊乱,骨质疏松性骨缺损的治疗面临挑战。然而,通过增强血管化来调节被破坏的局部骨代谢失衡是可行的,这一理论被称为 "血管化-骨代谢平衡"。本研究开发了一种用 EPLQLKM 和 SVVYGLR 肽修饰的三维打印聚己内酯(PCL)支架(PCL-SE)。EPLQLKM 肽能吸引骨髓间充质干细胞(BMSCs),而 SVVYGLR 肽能增强内皮祖细胞(EPCs)的血管分化,从而调节骨代谢,并通过 EPCs 的旁分泌效应促进骨再生。进一步的机理研究表明,PCL-SE能促进EPCs血管化,激活BMSCs中的Notch信号通路,导致成骨相关基因上调,破骨细胞相关基因下调,从而恢复骨代谢平衡。此外,PCL-SE还能促进EPCs分化为 "H "型血管,并招募BMSCs协同促进成骨,从而使骨质疏松症SD大鼠股骨髁骨缺损的正常微血管和骨组织得以再生。这项研究表明,PCL-SE 支持原位血管化,重塑骨代谢转化平衡,为骨质疏松性骨缺损提供了一种前景广阔的治疗方案。
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索莱宝
Alizarin Red Staining Kit
索莱宝
rhodamine phalloidin
阿拉丁
1-ethyl-3-(3-dimethylaminopropyl)-carbodiimide
阿拉丁
polycaprolactone (PCL)
阿拉丁
N-hydroxysuccinimide (NHS)
阿拉丁
Dopamine hydrochloride
来源期刊
Biomaterials
Biomaterials 工程技术-材料科学:生物材料
CiteScore
26.00
自引率
2.90%
发文量
565
审稿时长
46 days
期刊介绍: Biomaterials is an international journal covering the science and clinical application of biomaterials. A biomaterial is now defined as a substance that has been engineered to take a form which, alone or as part of a complex system, is used to direct, by control of interactions with components of living systems, the course of any therapeutic or diagnostic procedure. It is the aim of the journal to provide a peer-reviewed forum for the publication of original papers and authoritative review and opinion papers dealing with the most important issues facing the use of biomaterials in clinical practice. The scope of the journal covers the wide range of physical, biological and chemical sciences that underpin the design of biomaterials and the clinical disciplines in which they are used. These sciences include polymer synthesis and characterization, drug and gene vector design, the biology of the host response, immunology and toxicology and self assembly at the nanoscale. Clinical applications include the therapies of medical technology and regenerative medicine in all clinical disciplines, and diagnostic systems that reply on innovative contrast and sensing agents. The journal is relevant to areas such as cancer diagnosis and therapy, implantable devices, drug delivery systems, gene vectors, bionanotechnology and tissue engineering.
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