Enhanced osteogenicity of adipose tissue-derived stem cells induced by phytochemically synthesized Fe(3)O(4)/Lanthanum/SiO(2) nanocomposite using ulmus minor Mll. extract

利用榆树提取物,通过植物化学方法合成Fe(3)O(4)/镧/SiO(2)纳米复合材料,可增强脂肪组织来源干细胞的成骨能力。

阅读:2

Abstract

In this study, nanofibrous scaffolds composed of Polycaprolactone/Collagen (PCL/COL) infused with Fe(3)O(4)/Lanthanum/SiO(2) nanocomposite were developed. Fe(3)O(4) and La-doped Fe(3)O(4) nanoparticles were synthesized using a straightforward co-precipitation method. Silica extracted from Ulmus leaves via green synthesis was used to coat the Fe(3)O(4)-La nanocomposite. Then, PCL/COL nanocomposite scaffolds entrapping nanocomposites were created by electrospinning and characterized through FT-IR, VSM, EDX, DLS, TEM, FE-SEM, XRD, tensile strength, and contact angle techniques. The study comprehensively assessed their impacts on physical, mechanical, chemical, and biological attributes to evaluate their suitability for bone regeneration applications. The results revealed that the Fe(3)O(4)-La and Fe(3)O(4)-La@SiO(2) magnetic nanoparticles were synthesized at the nanoscale (64.3 and 83.6 nm), exhibiting superparamagnetic properties and a spherical morphology. The addition of MNPs enhanced the hydrophilicity and mechanical characteristics of the PCL/COL nanofibers. ADSCs were cultured onto nanocomposite scaffolds and the ALP activity, calcium mineralization, and the expression of bone-related proteins (such as Runx2, OCN, ON, and BMP2) were significantly increased in cells cultured on PCL/COL-MNPs nanofibers compared to PCL/COL scaffold and control groups. Nanocomposite scaffolds significantly enhanced cell viability (Day 5, p value < 0.0001), ALP elevation (p value < 0.0001), calcium deposition (Days 14 & 21) versus control, demonstrating high osteoinductivity (p value < 0.0001). PCL/COL/Fe(3)O(4)-La@SiO(2) showed the most intense mineralization at 21 days (22-fold). Fe(3)O(4)-La@SiO(2) synergizes all osteogenic phases (BMP2/Runx2/Osteocalcin), positioning it as the optimal bone-regeneration scaffold. These results endorse the incorporation of natural extracellular matrix (ECM) materials with magnetic particles to create composite scaffolds, thereby maximizing their therapeutic efficacy in bone tissue engineering applications.

特别声明

1、本页面内容包含部分的内容是基于公开信息的合理引用;引用内容仅为补充信息,不代表本站立场。

2、若认为本页面引用内容涉及侵权,请及时与本站联系,我们将第一时间处理。

3、其他媒体/个人如需使用本页面原创内容,需注明“来源:[生知库]”并获得授权;使用引用内容的,需自行联系原作者获得许可。

4、投稿及合作请联系:info@biocloudy.com。