4.7 Article

Surface engineering of titania nanotubes incorporated with double-layered extracellular vesicles to modulate inflammation and osteogenesis

期刊

REGENERATIVE BIOMATERIALS
卷 8, 期 3, 页码 -

出版社

OXFORD UNIV PRESS
DOI: 10.1093/rb/rbab010

关键词

EVs; TNT; hybrid; macrophages; MSCs; osteogenesis

资金

  1. National Natural Science Foundation of China [31960209, 31760266]
  2. Scientific Innovation Foundation for Returned Overseas Chinese Scholars of Guizhou Province [2018-07]
  3. Guizhou Science and Technology Fund Project [Qian Ke He Ji Chu [2020]1Y093]
  4. Qian Wei Ji Ban Han [2017-24]
  5. Academic New Seedlings Cultivation and Innovation Exploration Project of Zunyi Medical University [Qian Ke He Ping Tai Ren Cai [2017]5733-015]

向作者/读者索取更多资源

The study utilized a hybrid technique combining exosomes with nanotubes to regulate inflammation, MSC migration, and osteogenesis, thereby promoting the migration and osteogenic differentiation of bone marrow stem cells. Experimental results demonstrated that EVs hybrid TNT significantly reduced the expression of inflammatory cytokines, enhanced the migration ability of MSCs, and significantly increased osteogenic differentiation.
Titania nanotubes (TNT) generated on titanium implant are emerged as important modification technique to facilitate bone regeneration. Mesenchymal stem cells (MSCs)-derived exosomes are membrane bound extracellular vesicles (EVs), which play an important role in tissue regeneration. The objective of this study was to generate an EVs hybrid TNT aiming at regulating inflammation, MSCs recruitment and osteogenesis. We isolated EVs from MSCs (MSCs EVs) and 3-day osteogenically differentiated MSCs (3d EVs). MSC EVs and 3d EVs exhibited round morphology under TEM, which also showed robust internalization by human bone marrow derived MSCs (hBMSCs). Next, we fabricated 3d EVs/MSC EVs hybrid TNT. When inflammatory macrophages were co-cultured with EVs hybrid TNT, the gene and protein expression of inflammatory cytokine were significantly reduced. Macrophage morphology was also examined by confocal laser scanning microscopy (CLSM) and scanning electron microscopy (SEM). Further migratory ability study using hBMSCs indicated significant enhancement of MSCs migration in EVs hybrid TNT. In addition, we further demonstrated significant increase of osteogenic differentiation of hBMSCs in EVs hybrid TNT. This study suggests that EVs hybrid TNT may serve as a viable therapeutic approach to enhance osteogenesis and bone regeneration.

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