Cargando…

Spatial control of self-organizing vascular networks with programmable aptamer-tethered growth factor photopatterning

Given the dynamic nature of engineered vascular networks within biofabricated tissue analogues, it is instrumental to have control over the constantly evolving biochemical cues within synthetic matrices throughout tissue remodeling. Incorporation of pro-angiogenic vascular endothelial growth factor...

Descripción completa

Detalles Bibliográficos
Autores principales: Rana, Deepti, Padmanaban, Prasanna, Becker, Malin, Stein, Fabian, Leijten, Jeroen, Koopman, Bart, Rouwkema, Jeroen
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9898740/
https://www.ncbi.nlm.nih.gov/pubmed/36747582
http://dx.doi.org/10.1016/j.mtbio.2023.100551
_version_ 1784882492844539904
author Rana, Deepti
Padmanaban, Prasanna
Becker, Malin
Stein, Fabian
Leijten, Jeroen
Koopman, Bart
Rouwkema, Jeroen
author_facet Rana, Deepti
Padmanaban, Prasanna
Becker, Malin
Stein, Fabian
Leijten, Jeroen
Koopman, Bart
Rouwkema, Jeroen
author_sort Rana, Deepti
collection PubMed
description Given the dynamic nature of engineered vascular networks within biofabricated tissue analogues, it is instrumental to have control over the constantly evolving biochemical cues within synthetic matrices throughout tissue remodeling. Incorporation of pro-angiogenic vascular endothelial growth factor (VEGF(165)) specific aptamers into cell-instructive polymer networks is shown to be pivotal for spatiotemporally controlling the local bioactivity of VEGF that selectively elicit specific cell responses. To harness this effect and quantitatively unravel its spatial resolution, herein, bicomponent micropatterns consisting of VEGF(165) specific aptamer-functionalized gelatin methacryloyl (GelMA) (aptamer regions) overlaid with pristine GelMA regions using visible-light photoinitiators (Ru/SPS) were fabricated via two-step photopatterning approach. For the 3D co-culture study, human umbilical vein-derived endothelial cells and mesenchymal stromal cells were used as model cell types. Bicomponent micropatterns with spatially defined spacings (300/500/800 ​μm) displayed high aptamer retention, aptamer-fluorescent complementary sequence (CS(F)) molecular recognition and VEGF sequestration localized within patterned aptamer regions. Stiffness gradient at the interface of aptamer and GelMA regions was observed with high modulus in aptamer region followed by low stiffness GelMA regions. Leveraging aptamer-tethered VEGF's dynamic affinity interactions with CS that upon hybridization facilitates triggered VEGF release, co-culture studies revealed unique characteristics of aptamer-tethered VEGF to form spatially defined luminal vascular networks covered with filopodia-like structures in vitro (spatial control) and highlights their ability to control network properties including orientation over time using CS as an external trigger (temporal control). Moreover, the comparison of single and double exposed regions within micropatterns revealed differences in cell behavior among both regions. Specifically, the localized aptamer-tethered VEGF within single exposed aptamer regions exhibited higher cellular alignment within the micropatterns till d5 of culture. Taken together, this study highlights the potential of photopatterned aptamer-tethered VEGF to spatiotemporally regulate vascular morphogenesis as a tool for controlling vascular remodeling in situ.
format Online
Article
Text
id pubmed-9898740
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher Elsevier
record_format MEDLINE/PubMed
spelling pubmed-98987402023-02-05 Spatial control of self-organizing vascular networks with programmable aptamer-tethered growth factor photopatterning Rana, Deepti Padmanaban, Prasanna Becker, Malin Stein, Fabian Leijten, Jeroen Koopman, Bart Rouwkema, Jeroen Mater Today Bio Living Materials edited by Chao Zhong Given the dynamic nature of engineered vascular networks within biofabricated tissue analogues, it is instrumental to have control over the constantly evolving biochemical cues within synthetic matrices throughout tissue remodeling. Incorporation of pro-angiogenic vascular endothelial growth factor (VEGF(165)) specific aptamers into cell-instructive polymer networks is shown to be pivotal for spatiotemporally controlling the local bioactivity of VEGF that selectively elicit specific cell responses. To harness this effect and quantitatively unravel its spatial resolution, herein, bicomponent micropatterns consisting of VEGF(165) specific aptamer-functionalized gelatin methacryloyl (GelMA) (aptamer regions) overlaid with pristine GelMA regions using visible-light photoinitiators (Ru/SPS) were fabricated via two-step photopatterning approach. For the 3D co-culture study, human umbilical vein-derived endothelial cells and mesenchymal stromal cells were used as model cell types. Bicomponent micropatterns with spatially defined spacings (300/500/800 ​μm) displayed high aptamer retention, aptamer-fluorescent complementary sequence (CS(F)) molecular recognition and VEGF sequestration localized within patterned aptamer regions. Stiffness gradient at the interface of aptamer and GelMA regions was observed with high modulus in aptamer region followed by low stiffness GelMA regions. Leveraging aptamer-tethered VEGF's dynamic affinity interactions with CS that upon hybridization facilitates triggered VEGF release, co-culture studies revealed unique characteristics of aptamer-tethered VEGF to form spatially defined luminal vascular networks covered with filopodia-like structures in vitro (spatial control) and highlights their ability to control network properties including orientation over time using CS as an external trigger (temporal control). Moreover, the comparison of single and double exposed regions within micropatterns revealed differences in cell behavior among both regions. Specifically, the localized aptamer-tethered VEGF within single exposed aptamer regions exhibited higher cellular alignment within the micropatterns till d5 of culture. Taken together, this study highlights the potential of photopatterned aptamer-tethered VEGF to spatiotemporally regulate vascular morphogenesis as a tool for controlling vascular remodeling in situ. Elsevier 2023-01-20 /pmc/articles/PMC9898740/ /pubmed/36747582 http://dx.doi.org/10.1016/j.mtbio.2023.100551 Text en © 2023 The Authors 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 Living Materials edited by Chao Zhong
Rana, Deepti
Padmanaban, Prasanna
Becker, Malin
Stein, Fabian
Leijten, Jeroen
Koopman, Bart
Rouwkema, Jeroen
Spatial control of self-organizing vascular networks with programmable aptamer-tethered growth factor photopatterning
title Spatial control of self-organizing vascular networks with programmable aptamer-tethered growth factor photopatterning
title_full Spatial control of self-organizing vascular networks with programmable aptamer-tethered growth factor photopatterning
title_fullStr Spatial control of self-organizing vascular networks with programmable aptamer-tethered growth factor photopatterning
title_full_unstemmed Spatial control of self-organizing vascular networks with programmable aptamer-tethered growth factor photopatterning
title_short Spatial control of self-organizing vascular networks with programmable aptamer-tethered growth factor photopatterning
title_sort spatial control of self-organizing vascular networks with programmable aptamer-tethered growth factor photopatterning
topic Living Materials edited by Chao Zhong
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9898740/
https://www.ncbi.nlm.nih.gov/pubmed/36747582
http://dx.doi.org/10.1016/j.mtbio.2023.100551
work_keys_str_mv AT ranadeepti spatialcontrolofselforganizingvascularnetworkswithprogrammableaptamertetheredgrowthfactorphotopatterning
AT padmanabanprasanna spatialcontrolofselforganizingvascularnetworkswithprogrammableaptamertetheredgrowthfactorphotopatterning
AT beckermalin spatialcontrolofselforganizingvascularnetworkswithprogrammableaptamertetheredgrowthfactorphotopatterning
AT steinfabian spatialcontrolofselforganizingvascularnetworkswithprogrammableaptamertetheredgrowthfactorphotopatterning
AT leijtenjeroen spatialcontrolofselforganizingvascularnetworkswithprogrammableaptamertetheredgrowthfactorphotopatterning
AT koopmanbart spatialcontrolofselforganizingvascularnetworkswithprogrammableaptamertetheredgrowthfactorphotopatterning
AT rouwkemajeroen spatialcontrolofselforganizingvascularnetworkswithprogrammableaptamertetheredgrowthfactorphotopatterning