• 文献检索
  • 文档翻译
  • 深度研究
  • 学术资讯
  • Suppr Zotero 插件Zotero 插件
  • 邀请有礼
  • 套餐&价格
  • 历史记录
应用&插件
Suppr Zotero 插件Zotero 插件浏览器插件Mac 客户端Windows 客户端微信小程序
定价
高级版会员购买积分包购买API积分包
服务
文献检索文档翻译深度研究API 文档MCP 服务
关于我们
关于 Suppr公司介绍联系我们用户协议隐私条款
关注我们

Suppr 超能文献

核心技术专利:CN118964589B侵权必究
粤ICP备2023148730 号-1Suppr @ 2026

文献检索

告别复杂PubMed语法,用中文像聊天一样搜索,搜遍4000万医学文献。AI智能推荐,让科研检索更轻松。

立即免费搜索

文件翻译

保留排版,准确专业,支持PDF/Word/PPT等文件格式,支持 12+语言互译。

免费翻译文档

深度研究

AI帮你快速写综述,25分钟生成高质量综述,智能提取关键信息,辅助科研写作。

立即免费体验

生物相容性和骨修复效果:多孔聚乳酸-共-乙醇酸与纳米羟基磷灰石/聚乳酸支架的比较。

Biocompatibility and bone-repairing effects: comparison between porous poly-lactic-co-glycolic acid and nano-hydroxyapatite/poly(lactic acid) scaffolds.

出版信息

J Biomed Nanotechnol. 2014 Jun;10(6):1091-104. doi: 10.1166/jbn.2014.1696.

DOI:10.1166/jbn.2014.1696
PMID:24749403
Abstract

Copolymer composite scaffolds and bioceramic/polymer composite scaffolds are two representative forms of composite scaffolds used for bone tissue engineering. Studies to compare biocompatibility and bone-repairing effects between these two scaffolds are significant for selecting or improving the scaffold for clinical application. We prepared two porous scaffolds comprising poly-lactic-acid/poly-glycolic-acid (PLGA) and poly-lactic-acid/nano-hydroxyapatite (nHAP/PLA) respectively, and examined their biocompatibility with human bone marrow-derived mesenchymal stem cells (hMSCs) through evaluating adhesion, proliferation and osteogenic differentiation potentials of hMSCs in the scaffold. Then, the PLGA scaffold with hMSCs (PM construct) and the nHAP/PLA scaffold with hMSCs (HPM construct) were transplanted into the rat calvarial defect areas to compare their effects on the bone reconstruction. The results showed that the nHAP/PLA scaffold was in favor of adhesion, matrix deposition and osteogenic differentiation of hMSCs. For in vivo transplantation, both HPM and PM constructs led to mineralization and osteogenesis in the defect area of rat. However, the area grafted with PM construct showed a better formation of mature bone than that with HPM construct. In addition, the evaluation of in vitro and in vivo degradation indicated that the degradation rate of nHAP/PLA scaffold was much lower than that of PLGA scaffold. It is inferred that the lower degradation of nHAP/PLA scaffold should result in its inferior bone reconstruction in rat calvaria. Therefore, the preparation of an ideal composite scaffold for bone tissue engineering should be taken into account of the balance between its biocompatibility, degradation rate, osteoconductivity and mechanical property.

摘要

共聚物复合支架和生物陶瓷/聚合物复合支架是用于骨组织工程的两种代表性的复合支架形式。比较这两种支架的生物相容性和骨修复效果的研究对于选择或改进临床应用的支架具有重要意义。我们分别制备了两种多孔支架,包括聚乳酸/聚乙醇酸(PLGA)和聚乳酸/纳米羟基磷灰石(nHAP/PLA),通过评估 hMSCs 在支架中的黏附、增殖和成骨分化潜能来研究它们与骨髓间充质干细胞(hMSCs)的生物相容性。然后,将含有 hMSCs 的 PLGA 支架(PM 构建体)和含有 hMSCs 的 nHAP/PLA 支架(HPM 构建体)移植到大鼠颅骨缺损区,比较它们对骨重建的影响。结果表明,nHAP/PLA 支架有利于 hMSCs 的黏附、基质沉积和成骨分化。对于体内移植,HPM 和 PM 构建体都导致了大鼠缺损区域的矿化和骨生成。然而,PM 构建体移植区域的成熟骨形成比 HPM 构建体更好。此外,体外和体内降解评估表明,nHAP/PLA 支架的降解速率远低于 PLGA 支架。可以推断,nHAP/PLA 支架的低降解率应导致其在大鼠颅骨中的骨重建较差。因此,为骨组织工程制备理想的复合支架时,应考虑其生物相容性、降解率、骨传导性和机械性能之间的平衡。

相似文献

1
Biocompatibility and bone-repairing effects: comparison between porous poly-lactic-co-glycolic acid and nano-hydroxyapatite/poly(lactic acid) scaffolds.生物相容性和骨修复效果:多孔聚乳酸-共-乙醇酸与纳米羟基磷灰石/聚乳酸支架的比较。
J Biomed Nanotechnol. 2014 Jun;10(6):1091-104. doi: 10.1166/jbn.2014.1696.
2
Bone regeneration from human mesenchymal stem cells on porous hydroxyapatite-PLGA-collagen bioactive polymer scaffolds.人骨髓间充质干细胞在多孔羟基磷灰石 - 聚乳酸 - 羟基乙酸共聚物 - 胶原蛋白生物活性聚合物支架上的骨再生
Biomed Mater Eng. 2017;28(6):671-685. doi: 10.3233/BME-171703.
3
Effects of Nano-hydroxyapatite/Poly(DL-lactic-co-glycolic acid) Microsphere-Based Composite Scaffolds on Repair of Bone Defects: Evaluating the Role of Nano-hydroxyapatite Content.基于纳米羟基磷灰石/聚(DL-乳酸-乙醇酸共聚物)微球的复合支架对骨缺损修复的影响:评估纳米羟基磷灰石含量的作用。
Artif Organs. 2016 Jul;40(7):E128-35. doi: 10.1111/aor.12741.
4
Enhancement of osteoinduction by continual simvastatin release from poly(lactic-co-glycolic acid)-hydroxyapatite-simvastatin nano-fibrous scaffold.聚乳酸-羟基乙酸共聚物-纳米纤维支架持续释放辛伐他汀增强成骨诱导作用。
J Biomed Nanotechnol. 2013 Nov;9(11):1921-8. doi: 10.1166/jbn.2013.1692.
5
Enhancing the bioactivity of Poly(lactic-co-glycolic acid) scaffold with a nano-hydroxyapatite coating for the treatment of segmental bone defect in a rabbit model.纳米羟基磷灰石涂层增强聚乳酸-共-乙醇酸支架的生物活性,用于兔模型节段性骨缺损的治疗。
Int J Nanomedicine. 2013;8:1855-65. doi: 10.2147/IJN.S43706. Epub 2013 May 9.
6
Mechanical properties and osteogenic potential of hydroxyapatite-PLGA-collagen biomaterial for bone regeneration.用于骨再生的羟基磷灰石-PLGA-胶原生物材料的机械性能和成骨潜力。
J Biomater Sci Polym Ed. 2016 Aug;27(11):1139-54. doi: 10.1080/09205063.2016.1184121. Epub 2016 May 12.
7
Enhanced bone regeneration using an insulin-loaded nano-hydroxyapatite/collagen/PLGA composite scaffold.使用负载胰岛素的纳米羟基磷灰石/胶原蛋白/聚乳酸-羟基乙酸共聚物复合支架增强骨再生。
Int J Nanomedicine. 2017 Dec 21;13:117-127. doi: 10.2147/IJN.S150818. eCollection 2018.
8
Modulation of anabolic and catabolic responses via a porous polymer scaffold manufactured using thermally induced phase separation.通过使用热致相分离制造的多孔聚合物支架调节合成代谢和分解代谢反应。
Eur Cell Mater. 2013 Feb 27;25:190-203. doi: 10.22203/ecm.v025a14.
9
Reconstruction of rat calvarial defects with human mesenchymal stem cells and osteoblast-like cells in poly-lactic-co-glycolic acid scaffolds.聚乳酸-羟基乙酸共聚物支架中人骨髓间充质干细胞与成骨样细胞构建大鼠颅骨缺损。
Eur Cell Mater. 2010 Sep 1;20:109-20. doi: 10.22203/ecm.v020a10.
10
An exploratory study on the efficacy of rat dedifferentiated fat cells (rDFATs) with a poly lactic-co-glycolic acid/hydroxylapatite (PLGA/HA) composite for bone formation in a rat calvarial defect model.大鼠去分化脂肪细胞(rDFATs)与聚乳酸-共-羟基乙酸/羟基磷灰石(PLGA/HA)复合材料促进骨形成的大鼠颅骨缺损模型的探索性研究。
J Mater Sci Mater Med. 2014 Mar;25(3):899-908. doi: 10.1007/s10856-013-5124-x. Epub 2013 Dec 21.

引用本文的文献

1
research on 3D-printed composite PLGA and PDLLA-HA absorbable scaffolds for repairing radius defects in rabbits.用于修复兔桡骨缺损的 3D 打印复合 PLGA 和 PDLLA-HA 可吸收支架的研究。
J Int Med Res. 2024 Mar;52(3):3000605241233418. doi: 10.1177/03000605241233418.
2
In Vitro Enhanced Osteogenic Potential of Human Mesenchymal Stem Cells Seeded in a Poly (Lactic--Glycolic) Acid Scaffold: A Systematic Review.聚(乳酸-乙醇酸)酸支架接种人骨髓间充质干细胞的体外成骨潜能增强:一项系统评价
Craniomaxillofac Trauma Reconstr. 2024 Mar;17(1):61-73. doi: 10.1177/19433875231157454. Epub 2023 Feb 13.
3
The Use of Hydrogels for the Treatment of Bone Osteosarcoma via Localized Drug-Delivery and Tissue Regeneration: A Narrative Review.
水凝胶通过局部给药和组织再生治疗骨肉瘤的应用:一篇叙述性综述
Gels. 2023 Mar 25;9(4):274. doi: 10.3390/gels9040274.
4
Vancomycin Containing PDLLA and PLGA/β-TCP Inhibit Biofilm Formation but Do Not Stimulate Osteogenic Transformation of Human Mesenchymal Stem Cells.含万古霉素的聚乳酸-乙醇酸共聚物(PDLLA)和聚乳酸-羟基乙酸共聚物/β-磷酸三钙(PLGA/β-TCP)可抑制生物膜形成,但不会刺激人间充质干细胞的成骨转化。
Front Surg. 2022 Jul 1;9:885241. doi: 10.3389/fsurg.2022.885241. eCollection 2022.
5
The Influence of Eggshell on Bone Regeneration in Preclinical In Vivo Studies.蛋壳对临床前体内研究中骨再生的影响。
Biology (Basel). 2020 Dec 18;9(12):476. doi: 10.3390/biology9120476.
6
The Impact of Bioceramic Scaffolds on Bone Regeneration in Preclinical Studies: A Systematic Review.生物陶瓷支架对临床前研究中骨再生的影响:一项系统评价。
Materials (Basel). 2020 Mar 25;13(7):1500. doi: 10.3390/ma13071500.
7
Wicking Property of Graft Material Enhanced Bone Regeneration in the Ovariectomized Rat Model.移植材料的吸湿排汗特性增强去卵巢大鼠模型中的骨再生
Tissue Eng Regen Med. 2018 Jul 13;15(4):503-510. doi: 10.1007/s13770-018-0142-x. eCollection 2018 Aug.
8
Nanohydroxyapatite Effect on the Degradation, Osteoconduction and Mechanical Properties of Polymeric Bone Tissue Engineered Scaffolds.纳米羟基磷灰石对聚合物骨组织工程支架降解、骨传导性及力学性能的影响
Open Orthop J. 2016 Dec 30;10:900-919. doi: 10.2174/1874325001610010900. eCollection 2016.
9
Synergistic Effect of Mesoporous Silica and Hydroxyapatite in Loaded Poly(DL-lactic-co-glycolic acid) Microspheres on the Regeneration of Bone Defects.介孔二氧化硅和羟基磷灰石负载于聚(DL-乳酸-乙醇酸共聚物)微球中对骨缺损再生的协同作用。
Biomed Res Int. 2016;2016:9824827. doi: 10.1155/2016/9824827. Epub 2016 Aug 29.
10
Structure and properties of PLLA/β-TCP nanocomposite scaffolds for bone tissue engineering.用于骨组织工程的聚乳酸/β-磷酸三钙纳米复合支架的结构与性能
J Mater Sci Mater Med. 2015 Jan;26(1):5366. doi: 10.1007/s10856-014-5366-2. Epub 2015 Jan 13.