Hierarchical Vascular Network

A hierarchical vascular network is a branching system of blood vessels organized across multiple scales, from large arteries and veins to microscopic capillaries, to distribute fluids efficiently throughout tissue. Its architecture relies on repeated branching, diameter changes, and interconnected pathways that regulate flow, reduce transport distances, and support exchange between circulating blood and cells. In bioengineering, researchers reproduce these design principles in engineered tissues, organ-on-a-chip platforms, and biomimetic materials to improve nutrient delivery, oxygen transport, and waste removal. Creating functional vascular hierarchies is essential for developing larger, clinically relevant tissue constructs and advancing regenerative medicine.

Hierarchical Vascular Network - Related Videos

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JoVE EoE - Neuroimaging

Visualization of Neural and Vascular Networks in a Chicken Embryo

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2025

Source: Delalande, J., et.al. Dual Labeling of Neural Crest Cells and Blood Vessels Within Chicken Embryos Using ChickGFP Neural Tube Grafting and Carbocyanine Dye DiI Injection. J. Vis. Exp. (2015)This video demonstrates the transplantation of a GFP-labeled donor neural tube from a stage-matched transgenic chicken embryo into a recipient embryo at the level of somites one to seven, followed by vascular labeling using a lipophilic fluorescent dye. The combined approach allows for direct...

Research

JoVE Journal - Bioengineering
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Image-guided, Laser-based Fabrication of Vascular-derived Microfluidic Networks

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Cited by 10 •

2017

This protocol outlines the implementation of image-guided, laser-based hydrogel degradation to fabricate vascular-derived, biomimetic microfluidic networks embedded in poly(ethylene glycol) diacrylate (PEGDA) hydrogels. These biomimetic microfluidic systems may be useful for tissue engineering applications, generation of in vitro disease models, and fabrication of advanced "on-a-chip" devices.

Perfusable Vascular Network with a Tissue Model in a Microfluidic Device

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Cited by 10 •

2018

The protocol describes how to engineer a perfusable vascular network in a spheroid. The spheroid's surrounding microenvironment is devised to induce angiogenesis and connect the spheroid to the microchannels in a microfluidic device. The method allows the perfusion of the spheroid, which is a long-awaited technique in three-dimensional cultures.

Isolation of Murine Adipose Tissue-derived Microvascular Fragments as Vascularization Units for Tissue Engineering

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Cited by 58 •

2017

We present a protocol to isolate adipose tissue-derived microvascular fragments that represent promising vascularization units. They can be rapidly isolated, do not require in vitro processing and, thus, may be used for one-step prevascularization in different fields of tissue engineering.

A Full Skin Defect Model to Evaluate Vascularization of Biomaterials In Vivo

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Cited by 13 •

2014

Vascularization is key to approaches in successful tissue engineering. Therefore, reliable technologies are required to evaluate the development of vascular networks in tissue-constructs. Here we present a simple and cost-effective method to visualize and quantify vascularization in vivo.

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