ArticleTissue engineering. Part A2021
Induced Pluripotent Stem Cell-Derived Endothelial Networks Accelerate Vascularization But Not Bone Regeneration.
Article in Tissue engineering. Part A, 2021. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 9 papers.
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Who cites it
9 citing papers in PubMed.
- Preclinical Evaluation and Advancements in Vascularized Bone Tissue Engineering.Biomimetics (Basel, Switzerland) · 2025Review
- Leveraging the predictive power of a 3D in vitro vascularization screening assay for hydrogel-based tissue-engineered periosteum allograft healing.Biomaterials advances · 2025Article
- Optimizing Tissue-Engineered Periosteum Biochemical Cues to Hasten Bone Allograft Healing.Journal of biomedical materials research. Part A · 2025Article
- Biomaterials for Regenerative Cranioplasty: Current State of Clinical Application and Future Challenges.Journal of functional biomaterials · 2024Review
- Recent Advances in Bioengineering Bone Revascularization Based on Composite Materials Comprising Hydroxyapatite.International journal of molecular sciences · 2023Review
- In Vitro Prevascularization of Self-Assembled Human Bone-Like Tissues and Preclinical Assessment Using a Rat Calvarial Bone Defect Model.Materials (Basel, Switzerland) · 2021Article
- Recent Advances on Cell-Based Co-Culture Strategies for Prevascularization in Tissue Engineering.Frontiers in bioengineering and biotechnology · 2021Review
- Gold Nanoparticles Mediated Drug-Gene Combinational Therapy for Breast Cancer Treatment.International journal of nanomedicine · 2020Article
- Photocuring 3D printing technology as an advanced tool for promoting angiogenesis in hypoxia-related diseases.Journal of tissue engineeringReview
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9 authors.
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Abstract
Vascularization is critical for engineering mineralized tissues. It has been previously shown that biomaterials containing preformed endothelial networks anastomose to host vasculature following implantation. However, the networks alone may not increase regeneration. In addition, a clinically applicable source of cells for vascularization is needed. In this study, vascular networks were generated from endothelial cells (ECs) derived from human induced pluripotent stem cells (iPSCs). Network formation by iPSC-ECs within fibrin gels was investigated in a mesenchymal stem cells (MSCs) coculture spheroid model. Statistical design of experiments technique was evaluated for its predicting capability during the optimization of experimental parameters. The prevascularized units were combined with hydroxyapatite nanoparticles to develop a vascularized composite hydrogel that was implanted in a rodent critical-sized cranial defect model. Immunohistological staining for human-specific CD31 at week 1 indicated the presence and maintenance of the implanted vessels. At 8 weeks, the prevascularized systems resulted in higher vessel density over MSC-only scaffolds. The implanted vessels appeared to establish flow with host vasculature. While there was a slight increase in bone volume in the prevascularized bone construct compared to MSC-only bone constructs, there was not a profound increase in bone regeneration. These results show that scaffolds with network structures can be generated from ECs derived from iPSC and that the networks survive and inosculate with the host postimplantation in a bone model. Impact statement Vascularization is critical for engineering bone. Prevascularized scaffolds have been shown to improve postimplantation vascularization. Herein, vascularized networks were generated from induced pluripotent cells derived from endothelial cells. These vascularized units were combined with a fibrin/hydroxyapatite scaffold to develop a prevascularized construct for bone regeneration. Implantation of these scaffolds in a small animal cranial defect model resulted in network inosculation and increased vascularization, but exhibited only a limited effect on bone formation. This study provides insight into the challenges of generating vascularized bone.
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