Targeted Protein Fate Modulating Functional Microunits Promotes Intervertebral Fusion
- PMID: 38143276
- DOI: 10.1002/smtd.202301375
Targeted Protein Fate Modulating Functional Microunits Promotes Intervertebral Fusion
Abstract
Stable regulation of protein fate is a prerequisite for successful bone tissue repair. As a ubiquitin-specific protease (USP), USP26 can stabilize the protein fate of β-catenin to promote the osteogenic activity of mesenchymal cells (BMSCs) and significantly increased bone regeneration in bone defects in aged mice. However, direct transfection of Usp26 in vivo is inefficient. Therefore, improving the efficient expression of USP26 in target cells is the key to promoting bone tissue repair. Herein, 3D printing combined with microfluidic technology is applied to construct a functional microunit (protein fate regulating functional microunit, denoted as PFFM), which includes GelMA microspheres loaded with BMSCs overexpressing Usp26 and seeded into PCL 3D printing scaffolds. The PFFM provides a microenvironment for BMSCs, significantly promotes adhesion, and ensures cell activity and Usp26 supplementation that stabilizes β-catenin protein significantly facilitates BMSCs to express osteogenic phenotypes. In vivo experiments have shown that PFFM effectively accelerates intervertebral bone fusion. Therefore, PFFM can provide new ideas and alternatives for using USP26 for intervertebral fusion and other hard-to-repair bone defect diseases and is expected to provide clinical translational potential in future treatments.
Keywords: 3D bioprinting; Usp26; intervertebral fusion; living biomaterials; microfluidics; protein fate.
© 2023 Wiley‐VCH GmbH.
References
-
- V. Vinson, Science 2017, 355, 2577.
-
- M. Wang, R. J. Kaufman, Nature 2016, 529, 326.
-
- J. Bonifacino, A. Weissman, Annu. Rev. Cell Dev. Biol. 1998, 14, 19.
-
- S. Shaid, C. Brandts, H. Serve, I. Dikic, Cell Death Differ. 2013, 20, 21.
-
- F. Rapino, Z. Zhou, A. Roncero Sanchez, M. Joiret, C. Seca, N. El Hachem, G. Valenti, S. Latini, K. Shostak, L. Geris, P. Li, G. Huang, G. Mazzucchelli, D. Baiwir, C. Desmet, A. Chariot, M. Georges, P. Close, Nat. Commun. 2021, 12, 2170.
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- 2019YFA0112000/National Key Research and Development Program of China
- 82272556/National Natural Science Foundation of China
- 81972134/National Natural Science Foundation of China
- 82102210/National Natural Science Foundation of China
- GuangCi Professorship Program of Ruijin Hospital Shanghai Jiao Tong University School of Medicine
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