Towards the Fabrication of a Fibrin Based Vascular Network

Physiologically relevant scaffold-based tissue engineered structures have been limited in scope and viability by the diffusion limits of oxygen and other nutrients and functions provided by native vasculature in vivo. This has prevented the maintenance of healthy cell populations in scaffolds that a...

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Main Author: Santos, Johanna Eleanor
Other Authors: Catherine Whittington, Committee Member
Format: Others
Published: Digital WPI 2018
Subjects:
Online Access:https://digitalcommons.wpi.edu/etd-theses/1259
https://digitalcommons.wpi.edu/cgi/viewcontent.cgi?article=2259&context=etd-theses
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spelling ndltd-wpi.edu-oai-digitalcommons.wpi.edu-etd-theses-22592019-05-22T04:35:06Z Towards the Fabrication of a Fibrin Based Vascular Network Santos, Johanna Eleanor Physiologically relevant scaffold-based tissue engineered structures have been limited in scope and viability by the diffusion limits of oxygen and other nutrients and functions provided by native vasculature in vivo. This has prevented the maintenance of healthy cell populations in scaffolds that are more than 200痠 thick. Combining concepts from microfluidics with biomaterials engineering, this project set out to engineer a perfusable fibrin-based vascular network capable of physiologically relevant flow properties as well as diffusion that supports viable cell populations. To create this system, a small artery sized (1.5 mm wide) gelatin sacrificial structure was embedded inside of a block of robust fibrin gel (4.26% w/v fibrin) then melted and rinsed out to create a perfusable vascular network. Characterization consisted of morphometric and histological analyses for channel sizes compared to the sacrificial structures, particle tracking to observe flow properties, and fluorescent dextran diffusion to measure diffusivity into the fibrin scaffold. We found that channels derived from sacrificial structures maintain their size and shape inside of the gel. Flow properties of the fluid through the channels were found to be both laminar and within expected physiological rates compared to native vessels of similar sizes. Cells on the surface of the fibrin vascular device expressed fluorescent markers that were delivered through the vascular network and perfused through the fibrin scaffold. These findings suggest that a fibrin based vascular system may provide a platform creating a functional vascular layer and for developing tissue engineered systems of increased size and complexity. 2018-08-03T07:00:00Z text application/pdf https://digitalcommons.wpi.edu/etd-theses/1259 https://digitalcommons.wpi.edu/cgi/viewcontent.cgi?article=2259&context=etd-theses Masters Theses (All Theses, All Years) Digital WPI Catherine Whittington, Committee Member George D. Pins, Advisor Jeannine Coburn, Committee Member Vascular Engineering Fibrin Vasculature
collection NDLTD
format Others
sources NDLTD
topic Vascular Engineering Fibrin Vasculature
spellingShingle Vascular Engineering Fibrin Vasculature
Santos, Johanna Eleanor
Towards the Fabrication of a Fibrin Based Vascular Network
description Physiologically relevant scaffold-based tissue engineered structures have been limited in scope and viability by the diffusion limits of oxygen and other nutrients and functions provided by native vasculature in vivo. This has prevented the maintenance of healthy cell populations in scaffolds that are more than 200痠 thick. Combining concepts from microfluidics with biomaterials engineering, this project set out to engineer a perfusable fibrin-based vascular network capable of physiologically relevant flow properties as well as diffusion that supports viable cell populations. To create this system, a small artery sized (1.5 mm wide) gelatin sacrificial structure was embedded inside of a block of robust fibrin gel (4.26% w/v fibrin) then melted and rinsed out to create a perfusable vascular network. Characterization consisted of morphometric and histological analyses for channel sizes compared to the sacrificial structures, particle tracking to observe flow properties, and fluorescent dextran diffusion to measure diffusivity into the fibrin scaffold. We found that channels derived from sacrificial structures maintain their size and shape inside of the gel. Flow properties of the fluid through the channels were found to be both laminar and within expected physiological rates compared to native vessels of similar sizes. Cells on the surface of the fibrin vascular device expressed fluorescent markers that were delivered through the vascular network and perfused through the fibrin scaffold. These findings suggest that a fibrin based vascular system may provide a platform creating a functional vascular layer and for developing tissue engineered systems of increased size and complexity.
author2 Catherine Whittington, Committee Member
author_facet Catherine Whittington, Committee Member
Santos, Johanna Eleanor
author Santos, Johanna Eleanor
author_sort Santos, Johanna Eleanor
title Towards the Fabrication of a Fibrin Based Vascular Network
title_short Towards the Fabrication of a Fibrin Based Vascular Network
title_full Towards the Fabrication of a Fibrin Based Vascular Network
title_fullStr Towards the Fabrication of a Fibrin Based Vascular Network
title_full_unstemmed Towards the Fabrication of a Fibrin Based Vascular Network
title_sort towards the fabrication of a fibrin based vascular network
publisher Digital WPI
publishDate 2018
url https://digitalcommons.wpi.edu/etd-theses/1259
https://digitalcommons.wpi.edu/cgi/viewcontent.cgi?article=2259&context=etd-theses
work_keys_str_mv AT santosjohannaeleanor towardsthefabricationofafibrinbasedvascularnetwork
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