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Effects of biomechanical and biochemical stimuli on angio- and vasculogenesis in a complex microvasculature-on-chip

The endothelium of blood vessels is a vital organ that reacts differently to subtle changes in stiffness and mechanical forces exerted on its environment (extracellular matrix (ECM)). Upon alteration of these biomechanical cues, endothelial cells initiate signaling pathways that govern vascular remo...

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Autores principales: Ferrari, Dario, Sengupta, Arunima, Heo, Lyong, Pethö, Laszlo, Michler, Johann, Geiser, Thomas, de Jesus Perez, Vinicio A., Kuebler, Wolfgang M., Zeinali, Soheila, Guenat, Olivier T.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9985038/
https://www.ncbi.nlm.nih.gov/pubmed/36879808
http://dx.doi.org/10.1016/j.isci.2023.106198
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author Ferrari, Dario
Sengupta, Arunima
Heo, Lyong
Pethö, Laszlo
Michler, Johann
Geiser, Thomas
de Jesus Perez, Vinicio A.
Kuebler, Wolfgang M.
Zeinali, Soheila
Guenat, Olivier T.
author_facet Ferrari, Dario
Sengupta, Arunima
Heo, Lyong
Pethö, Laszlo
Michler, Johann
Geiser, Thomas
de Jesus Perez, Vinicio A.
Kuebler, Wolfgang M.
Zeinali, Soheila
Guenat, Olivier T.
author_sort Ferrari, Dario
collection PubMed
description The endothelium of blood vessels is a vital organ that reacts differently to subtle changes in stiffness and mechanical forces exerted on its environment (extracellular matrix (ECM)). Upon alteration of these biomechanical cues, endothelial cells initiate signaling pathways that govern vascular remodeling. The emerging organs-on-chip technologies allow the mimicking of complex microvasculature networks, identifying the combined or singular effects of these biomechanical or biochemical stimuli. Here, we present a microvasculature-on-chip model to investigate the singular effect of ECM stiffness and mechanical cyclic stretch on vascular development. Following two different approaches for vascular growth, the effect of ECM stiffness on sprouting angiogenesis and the effect of cyclic stretch on endothelial vasculogenesis are studied. Our results indicate that ECM hydrogel stiffness controls the size of the patterned vasculature and the density of sprouting angiogenesis. RNA sequencing shows that the cellular response to stretching is characterized by the upregulation of certain genes such as ANGPTL4+5, PDE1A, and PLEC.
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spelling pubmed-99850382023-03-05 Effects of biomechanical and biochemical stimuli on angio- and vasculogenesis in a complex microvasculature-on-chip Ferrari, Dario Sengupta, Arunima Heo, Lyong Pethö, Laszlo Michler, Johann Geiser, Thomas de Jesus Perez, Vinicio A. Kuebler, Wolfgang M. Zeinali, Soheila Guenat, Olivier T. iScience Article The endothelium of blood vessels is a vital organ that reacts differently to subtle changes in stiffness and mechanical forces exerted on its environment (extracellular matrix (ECM)). Upon alteration of these biomechanical cues, endothelial cells initiate signaling pathways that govern vascular remodeling. The emerging organs-on-chip technologies allow the mimicking of complex microvasculature networks, identifying the combined or singular effects of these biomechanical or biochemical stimuli. Here, we present a microvasculature-on-chip model to investigate the singular effect of ECM stiffness and mechanical cyclic stretch on vascular development. Following two different approaches for vascular growth, the effect of ECM stiffness on sprouting angiogenesis and the effect of cyclic stretch on endothelial vasculogenesis are studied. Our results indicate that ECM hydrogel stiffness controls the size of the patterned vasculature and the density of sprouting angiogenesis. RNA sequencing shows that the cellular response to stretching is characterized by the upregulation of certain genes such as ANGPTL4+5, PDE1A, and PLEC. Elsevier 2023-02-13 /pmc/articles/PMC9985038/ /pubmed/36879808 http://dx.doi.org/10.1016/j.isci.2023.106198 Text en © 2023 The Author(s) https://creativecommons.org/licenses/by/4.0/This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Ferrari, Dario
Sengupta, Arunima
Heo, Lyong
Pethö, Laszlo
Michler, Johann
Geiser, Thomas
de Jesus Perez, Vinicio A.
Kuebler, Wolfgang M.
Zeinali, Soheila
Guenat, Olivier T.
Effects of biomechanical and biochemical stimuli on angio- and vasculogenesis in a complex microvasculature-on-chip
title Effects of biomechanical and biochemical stimuli on angio- and vasculogenesis in a complex microvasculature-on-chip
title_full Effects of biomechanical and biochemical stimuli on angio- and vasculogenesis in a complex microvasculature-on-chip
title_fullStr Effects of biomechanical and biochemical stimuli on angio- and vasculogenesis in a complex microvasculature-on-chip
title_full_unstemmed Effects of biomechanical and biochemical stimuli on angio- and vasculogenesis in a complex microvasculature-on-chip
title_short Effects of biomechanical and biochemical stimuli on angio- and vasculogenesis in a complex microvasculature-on-chip
title_sort effects of biomechanical and biochemical stimuli on angio- and vasculogenesis in a complex microvasculature-on-chip
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9985038/
https://www.ncbi.nlm.nih.gov/pubmed/36879808
http://dx.doi.org/10.1016/j.isci.2023.106198
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