Suppr超能文献

利用铁纳米颗粒和磁场增强骨组织工程:以鸡胚尿囊膜模型中的细胞力学和血管生成为重点。

Enhancing bone tissue engineering using iron nanoparticles and magnetic fields: A focus on cytomechanics and angiogenesis in the chicken egg chorioallantoic membrane model.

机构信息

Department of Prosthodontics, KLEVK Institute of Dental Sciences, KLE Academy of Higher Education and Research, Belgavi, Karnataka, India.

Department of Prosthodontics, Siddhartha Institute of Dental Sciences, Tumakuru, Karnataka, India.

出版信息

J Indian Prosthodont Soc. 2024 Apr 1;24(2):175-185. doi: 10.4103/jips.jips_440_23. Epub 2024 Apr 23.

Abstract

AIM

To evaluate the potential of iron nanoparticles (FeNPs) in conjunction with magnetic fields (MFs) to enhance osteoblast cytomechanics, promote cell homing, bone development activity, and antibacterial capabilities, and to assess their in vivo angiogenic viability using the chicken egg chorioallantoic membrane (CAM) model.

SETTINGS AND DESIGN

Experimental study conducted in a laboratory setting to investigate the effects of FeNPs and MFs on osteoblast cells and angiogenesis using a custom titanium (Ti) substrate coated with FeNPs.

MATERIALS AND METHODS

A custom titanium (Ti) was coated with FeNPs. Evaluations were conducted to analyze the antibacterial properties, cell adhesion, durability, physical characteristics, and nanoparticle absorption associated with FeNPs. Cell physical characteristics were assessed using protein markers, and microscopy, CAM model, was used to quantify blood vessel formation and morphology to assess the FeNP-coated Ti's angiogenic potential. This in vivo study provided critical insights into tissue response and regenerative properties for biomedical applications.

STATISTICAL ANALYSIS

Statistical analysis was performed using appropriate tests to compare experimental groups and controls. Significance was determined at P < 0.05.

RESULTS

FeNPs and MFs notably improved osteoblast cell mechanical properties facilitated the growth and formation of new blood vessels and bone tissue and promoted cell migration to targeted sites. In the group treated with FeNPs and exposed to MFs, there was a significant increase in vessel percentage area (76.03%) compared to control groups (58.11%), along with enhanced mineralization and robust antibacterial effects (P < 0.05).

CONCLUSION

The study highlights the promising potential of FeNPs in fostering the growth of new blood vessels, promoting the formation of bone tissue, and facilitating targeted cell migration. These findings underscore the importance of further investigating the mechanical traits of FeNPs, as they could significantly advance the development of effective bone tissue engineering techniques, ultimately enhancing clinical outcomes in the field.

摘要

目的

评估铁纳米粒子(FeNPs)与磁场(MFs)结合的潜力,以增强成骨细胞细胞力学、促进细胞归巢、骨发育活性和抗菌能力,并使用鸡胚尿囊膜(CAM)模型评估其体内血管生成活力。

设置和设计

在实验室环境中进行的实验研究,使用涂有 FeNPs 的定制钛(Ti)基底来研究 FeNPs 和 MFs 对成骨细胞和血管生成的影响。

材料和方法

用 FeNPs 涂覆定制钛(Ti)。对抗菌性能、细胞黏附、耐久性、物理特性和与 FeNPs 相关的纳米颗粒吸收进行评估。使用蛋白质标记物评估细胞物理特性,并使用 CAM 模型量化血管形成和形态以评估涂有 FeNP 的 Ti 的血管生成潜力。这项体内研究为生物医学应用的组织反应和再生特性提供了重要的见解。

统计分析

使用适当的检验对实验组和对照组进行统计分析。P<0.05 为差异有统计学意义。

结果

FeNPs 和 MFs 显著改善了成骨细胞的力学性能,促进了新血管和骨组织的生长和形成,并促进了细胞向靶部位迁移。在接受 FeNPs 治疗并暴露于 MFs 的组中,与对照组(58.11%)相比,血管面积百分比显著增加(76.03%),同时增强了矿化和强大的抗菌作用(P<0.05)。

结论

该研究强调了 FeNPs 在促进新血管生长、促进骨组织形成和促进靶向细胞迁移方面的有前途的潜力。这些发现强调了进一步研究 FeNPs 机械特性的重要性,因为它们可能会显著推进有效的骨组织工程技术的发展,最终增强该领域的临床效果。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d3ff/11129814/aaa223d3a7ac/JIPS-24-175-g001.jpg

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