Investigation of calvarial bone regeneration in a rat model using three-dimensional polycaprolactone/carboxymethyl chitosan nano composite scaffolds containing hydroxyapatite nanoparticles along with the icariin and atorvastatin synthesized by the freeze-casting method.

IF 2.5 4区 医学 Q3 ENGINEERING, BIOMEDICAL
Nadia Sadeghi, Fereshteh Shanei, Abouzar Moradi, Atefeh Shamosi, Sepehr Zamani, Majid Salehi
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引用次数: 0

Abstract

Although autografts and allografts remain common for bone defect repair, they entail donor-site morbidity, limited availability, and potential immune rejection. The development of tissue engineering has provided a potential solution to overcome these and facilitate effective bone regeneration. Extensive research has confirmed the osteogenic potential of bioactive molecules like Atorvastatin (ATV) and Icariin (ICA). But despite the increasing body of evidence supporting their individual merits, few studies have investigated the synergistic integration of these materials in Nanocomposite scaffolds. A novel three-dimensional scaffold composed of polycaprolactone (PCL), carboxymethyl chitosan (CMCs), and nano-hydroxyapatite (nHA), co-loaded with Icariin and Atorvastatin, and fabricated using the freeze-casting technique, is described. This study aimed to evaluate the scaffold's effectiveness in promoting calvarial bone regeneration in Wistar rats, contributing to the advancement of biomaterials in bone tissue engineering. Scaffolds containing PCL/CMCs/nHA with 0.1% ICA and 0.1% ATV were fabricated using the freeze-casting method. In vitro assessments were conducted to evaluate the biomechanical and physiological properties of the scaffolds. In vivo experiments involved implanting the scaffolds into calvarial bone defects in six groups of Wistar rats. After 12 weeks, histological analysis was performed to assess bone regeneration, including fibrous tissue formation, bone formation, osteon development, and osteoblast cell numbers and fibroblast cell numbers. After 72 h of incubation, the PCL/CMCs/nHA/ATO/ICA scaffold significantly enhanced cell viability compared to other groups, however, the differences observed between the other groups were not statistically significant. In vivo, results showed significantly greater bone formation, osteon development, and osteoblast numbers in the PCL/CMCs/nHA/ATO/ICA group than in the negative and other groups. The PCL/CMCs/nHA/ATO/ICA scaffold demonstrated superior bone regeneration outcomes, showing comparable performance to autografts in terms of new bone tissue formation, osteon structure, and 72-h cell viability, suggesting its potential as a viable alternative in bone tissue engineering.

冻铸法制备羟基磷灰石纳米颗粒、羊藿苷和阿托伐他汀三维聚己内酯/羧甲基壳聚糖纳米复合支架用于大鼠颅骨骨再生的研究。
尽管自体骨移植和同种异体骨移植在骨缺损修复中仍然很常见,但它们会导致供体部位的发病率、可用性有限和潜在的免疫排斥。组织工程的发展为克服这些问题和促进有效的骨再生提供了潜在的解决方案。广泛的研究证实了生物活性分子如阿托伐他汀(ATV)和淫羊藿苷(ICA)的成骨潜力。但是,尽管越来越多的证据支持它们各自的优点,但很少有研究调查这些材料在纳米复合材料支架中的协同整合。本文报道了一种由聚己内酯(PCL)、羧甲基壳聚糖(CMCs)和纳米羟基磷灰石(nHA)组成的新型三维支架,并与伊卡林和阿托伐他汀共载,采用冷冻铸造技术制备。本研究旨在评价该支架对Wistar大鼠颅骨骨再生的促进作用,为生物材料在骨组织工程中的应用做出贡献。采用冻铸法制备含PCL/ cmc /nHA、0.1% ICA和0.1% ATV的支架。体外评价支架的生物力学和生理性能。体内实验包括将支架植入六组Wistar大鼠颅骨骨缺损。12周后,进行组织学分析以评估骨再生,包括纤维组织形成、骨形成、骨细胞发育、成骨细胞数量和成纤维细胞数量。培养72 h后,PCL/ cmc /nHA/ATO/ICA支架与其他组相比显著提高细胞活力,但其他组间差异无统计学意义。在体内,结果显示PCL/ cmc /nHA/ATO/ICA组的骨形成、骨细胞发育和成骨细胞数量明显高于阴性组和其他组。PCL/ cmc /nHA/ATO/ICA支架具有优异的骨再生效果,在新骨组织形成、骨结构和72小时细胞活力方面表现出与自体移植物相当的性能,表明其作为骨组织工程可行替代方案的潜力。
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来源期刊
Journal of Biomaterials Applications
Journal of Biomaterials Applications 工程技术-材料科学:生物材料
CiteScore
5.10
自引率
3.40%
发文量
144
审稿时长
1.5 months
期刊介绍: The Journal of Biomaterials Applications is a fully peer reviewed international journal that publishes original research and review articles that emphasize the development, manufacture and clinical applications of biomaterials. Peer-reviewed articles by biomedical specialists from around the world cover: New developments in biomaterials, R&D, properties and performance, evaluation and applications Applications in biomedical materials and devices - from sutures and wound dressings to biosensors and cardiovascular devices Current findings in biological compatibility/incompatibility of biomaterials The Journal of Biomaterials Applications publishes original articles that emphasize the development, manufacture and clinical applications of biomaterials. Biomaterials continue to be one of the most rapidly growing areas of research in plastics today and certainly one of the biggest technical challenges, since biomaterial performance is dependent on polymer compatibility with the aggressive biological environment. The Journal cuts across disciplines and focuses on medical research and topics that present the broadest view of practical applications of biomaterials in actual clinical use. The Journal of Biomaterial Applications is devoted to new and emerging biomaterials technologies, particularly focusing on the many applications which are under development at industrial biomedical and polymer research facilities, as well as the ongoing activities in academic, medical and applied clinical uses of devices.
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