The critical roles of hemodynamic cues, including shear stress and perfusion, together with metabolic and immune signaling, in driving the coordinated maturation of endothelial and mural compartments are highlighted.
Abstract
Human vascular function depends on tightly coordinated structural, mechanical, and cellular interactions, yet these features remain difficult to recapitulate in vitro. Induced pluripotent stem cells (iPSCs) enable efficient generation of vascular cell types, including endothelial cells, smooth muscle cells, and pericytes, but current systems often lack functional maturity and physiological relevance. Recent advances in vascular organoid engineering provide new opportunities to address this limitation. By integrating self-organization, co-culture, and bioengineering approaches, iPSC-derived systems can form three-dimensional vascular networks with increasing physiological relevance. Emerging evidence from studies of iPSC-derived vascular systems, spanning both two-dimensional differentiation models and three-dimensional organoid platforms, highlights the critical roles of hemodynamic cues, including shear stress and perfusion, together with metabolic and immune signaling, in driving the coordinated maturation of endothelial and mural compartments. These platforms enable modeling of key vascular pathologies, including inflammation, vascular remodeling, and barrier dysfunction, while gene editing further facilitates mechanistic investigation in patient-specific contexts. Together, iPSC-derived vascular systems provide a scalable and physiologically relevant platform for disease modeling, drug discovery, and regenerative medicine.
This review systematically summarizes the roles of various stem cells in angiogenesis, outlines strategies for constructing vascularized organoids, and highlights their emerging applications in modeling vascular-associated diseases and regenerative therapy, providing a comprehensive reference for advancing both basic r...
Qiuyue Gao, Cai-Feng Long, An-Jun Zhong et al.· Global Translational Medicin...· 0 citations
Organoids derived from human pluripotent stem cells (PSCs) have emerged as powerful in vitro models for studying development, disease, and therapeutic responses, yet their lack of functional vasculature limits growth, maturation, and physiological relevance. Early vascularization strategies relied on human umbilical ve...
Traditional human blood vessel organoids, built primarily around endothelial monocultures, fail to replicate the multicellular architecture and dynamic immunological functions of native microvasculature. This review synthesizes an emerging paradigm shift toward third-generation, multi-lineage, and immune-competent vasc...
Vascularized liver organoids are developed by integrating human induced pluripotent stem cell (iPSC)–derived hepatoblasts and endothelial cells into decellularized scaffolds functionalized with an anti-CD31 aptamer–based vascular coating agent (VCA) to establish a comprehensive framework for generating physiologically...
Da-Hyun Kim, Yongju Lee, Min-Ji Kim et al.· Science Advances· 1 citation
Vascular organoids derived from human pluripotent stem cells (hPSCs) have emerged as powerful three-dimensional models for studying vascular development, disease mechanisms, and drug responses. Current vascular organoid protocols enable the generation of self-organizing endothelial-pericyte networks; however, batch-to-...
A function-first framework in which regenerative organoids are engineered and evaluated according to measurable therapeutic outcomes, including tissue-specific function, vascular integration, immune compatibility, reproducibility, scalability, and long-term stability is proposed.
Yusuke Nishimura· Stem Cells· 0 citations
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