类有机物
计算机科学
胚胎干细胞
微流控
间质细胞
个性化
计算生物学
组织工程
干细胞
再生医学
细胞
人体生理学
生化工程
细胞生物学
生物
生物信息学
电池类型
干细胞生物学
诱导多能干细胞
间充质干细胞
概念证明
纳米技术
生物医学工程
内生
作者
Bianca Menzani,Priscille De Gea,Xavier Gidrol,Emily Tubbs
出处
期刊:Lab on a Chip
[Royal Society of Chemistry]
日期:2026-01-01
卷期号:26 (6): 1798-1819
被引量:10
摘要
models for studying human physiology, development and disease. Their potential is very important and they have broad applications, but their impact is currently limited by persistent challenges such as incomplete maturation, batch variability, restricted long-range interactions and, critically, the absence of functional and perfusable vasculature. Integrating organoids into microfluidic platforms offers a way to overcome some of these constraints by providing a controlled and dynamic microenvironment with precisely tuned physical and biochemical cues. Among emerging strategies, vascularization stands out as a critical step toward improving organoid physiology and relevance: establishing stable, lumenized and perfusable networks within the 3D structure enables direct delivery of oxygen and nutrients, facilitates metabolic waste removal and promotes their maturation beyond embryonic stages. Achieving such models will require the combined expertise of stem cell biology, microfluidics, and biomaterials engineering to generate devices with organ-specific endothelial and stromal components, physiological flow profiles, and bidirectional anastomosis between endogenous and exogenous vascular compartments. This review discusses the biological rationale, current strategies, and technical considerations for vascularizing organoids-on-chip, highlighting their potential to improve physiological relevance, functional performance, personalization and translational applicability.
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