创新水凝胶递送骨髓基质细胞衍生外泌体,增强骨愈合。

IF 3.6 3区 医学 Q3 CELL & TISSUE ENGINEERING World journal of stem cells Pub Date : 2024-12-26 DOI:10.4252/wjsc.v16.i12.1106
Yue Ding, Fang Lin, Xiao-Ting Liang
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引用次数: 0

摘要

骨再生是一个多方面的过程,涉及细胞功能的良好协调相互作用,如炎症调节、新血管的形成和骨组织的发育。骨再生是一个多方面的过程,涉及多种细胞活动的良好协调相互作用,如炎症控制,血管和骨组织。Zhang等人开发了一种嵌入骨髓基质细胞衍生外泌体的多功能水凝胶系统,以解决大型骨缺损的挑战。这种创新的方法证明了骨髓基质细胞来源的外泌体通过在体外显著增强血管生成和成骨分化来指导细胞命运的双重作用能力。水凝胶系统有效促进巨噬细胞向抗炎M2表型极化,营造支持骨修复的环境。这种水凝胶的有效性在小鼠骨折模型中得到了验证,它显著促进了骨再生和功能性血管形成。尽管有令人信服的证据,但本研究强调了进一步研究的领域,包括实验程序的详细描述、对照组的选择、长期结果和体内炎症状态的评估。解决这些限制将增强研究结果的稳健性和影响力。
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Innovative hydrogel delivery of bone marrow stromal cell-derived exosomes for enhanced bone healing.

Bone regeneration is a multifaceted process involving the well-coordinated interaction of cellular functions such as the regulation of inflammation, the formation of new blood vessels, and the development of bone tissue. Bone regeneration is a multifaceted process involving the well-coordinated interplay of multiple cellular activities, such as inflammation control, blood vessel and bone tissue. Zhang et al developed a multifunctional hydrogel system embedded with bone marrow stromal cell-derived exosomes to address the challenges of large bone defects. This innovative approach demonstrated the dual-role capability of bone marrow stromal cell-derived exosomes in directing cell fate by significantly enhancing both angiogenesis and osteogenic differentiation in vitro. The hydrogel system effectively promoted the polarization of macrophages towards the anti-inflammatory M2 phenotype, fostering an environment that supports bone repair. The effectiveness of this hydrogel was validated in a murine fracture model, which promoted significant bone regeneration and functional vascularization. Despite compelling evidence, this study highlights areas for further investigation, including detailed descriptions of experimental procedures, control group selection, long-term outcomes, and the evaluation of inflammation status in vivo. Addressing these limitations will enhance the robustness and impact of the findings.

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来源期刊
World journal of stem cells
World journal of stem cells Biochemistry, Genetics and Molecular Biology-Molecular Biology
CiteScore
7.80
自引率
4.90%
发文量
750
期刊介绍: The World Journal of Stem Cells (WJSC) is a leading academic journal devoted to reporting the latest, cutting-edge research progress and findings of basic research and clinical practice in the field of stem cells. It was launched on December 31, 2009 and is published monthly (12 issues annually) by BPG, the world''s leading professional clinical medical journal publishing company.
期刊最新文献
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