三维打印注入 Ceffe 的支架,实现量身定制的乳头样软骨发育

IF 3.5 3区 生物学 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY BMC Biotechnology Pub Date : 2024-04-30 DOI:10.1186/s12896-024-00848-3
Jinghao Ding, Chuanzhi Wei, Yong Xu, Wufei Dai, Ru Chen
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引用次数: 0

摘要

重建稳定的乳头形软骨移植物,使其在形状和大小上与对侧自然乳头精确匹配,是一项临床挑战。虽然三维打印技术可以高效、准确地制造定制的复杂结构,但由于血液供应不足,它面临着一定的局限性,这影响了使用该技术制造的乳头形软骨移植物的稳定性。为了解决这个问题,我们采用了一种可生物降解的生物材料--聚乳酸(PLGA),并在其中添加了无细胞脂肪提取物(Ceffe)。Ceffe具有促进血管生成和细胞增殖的能力,是生物打印精确乳头状软骨移植物的理想生物墨水。我们利用 Ceffe/PLGA 支架创建了具有精确乳头形状的多孔结构。这种支架表现出良好的孔隙率和孔径,确保了稳定的形状保持和令人满意的生物力学特性。重要的是,它可以持续释放 Ceffe。我们的体外实验结果证实,这种支架具有良好的生物相容性和促进血管生成的能力,这表现在支持软骨细胞增殖和内皮细胞迁移及管道形成。此外,经过 8 周的体内培养,播种有软骨细胞的 Ceffe/PLGA 支架再生为具有精确乳头形状的软骨支撑结构。与纯 PLGA 组相比,Ceffe/PLGA 支架显示出显著的血管形成,突出了 Ceffe 的有益作用。这些研究结果表明,我们设计的乳头形状 Ceffe/PLGA 支架是一种很有前景的精确乳头形状软骨再生策略,为以后的乳头重建奠定了基础。
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3D printing of Ceffe-infused scaffolds for tailored nipple-like cartilage development
The reconstruction of a stable, nipple-shaped cartilage graft that precisely matches the natural nipple in shape and size on the contralateral side is a clinical challenge. While 3D printing technology can efficiently and accurately manufacture customized complex structures, it faces limitations due to inadequate blood supply, which hampers the stability of nipple-shaped cartilage grafts produced using this technology. To address this issue, we employed a biodegradable biomaterial, Poly(lactic-co-glycolic acid) (PLGA), loaded with Cell-Free Fat Extract (Ceffe). Ceffe has demonstrated the ability to promote angiogenesis and cell proliferation, making it an ideal bio-ink for bioprinting precise nipple-shaped cartilage grafts. We utilized the Ceffe/PLGA scaffold to create a porous structure with a precise nipple shape. This scaffold exhibited favorable porosity and pore size, ensuring stable shape maintenance and satisfactory biomechanical properties. Importantly, it could release Ceffe in a sustained manner. Our in vitro results confirmed the scaffold’s good biocompatibility and its ability to promote angiogenesis, as evidenced by supporting chondrocyte proliferation and endothelial cell migration and tube formation. Furthermore, after 8 weeks of in vivo culture, the Ceffe/PLGA scaffold seeded with chondrocytes regenerated into a cartilage support structure with a precise nipple shape. Compared to the pure PLGA group, the Ceffe/PLGA scaffold showed remarkable vascular formation, highlighting the beneficial effects of Ceffe. These findings suggest that our designed Ceffe/PLGA scaffold with a nipple shape represents a promising strategy for precise nipple-shaped cartilage regeneration, laying a foundation for subsequent nipple reconstruction.
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来源期刊
BMC Biotechnology
BMC Biotechnology 工程技术-生物工程与应用微生物
CiteScore
6.60
自引率
0.00%
发文量
34
审稿时长
2 months
期刊介绍: BMC Biotechnology is an open access, peer-reviewed journal that considers articles on the manipulation of biological macromolecules or organisms for use in experimental procedures, cellular and tissue engineering or in the pharmaceutical, agricultural biotechnology and allied industries.
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