Engineering vasculature: Architectural effects on microcapillary-like structure self-assembly.

One of the greatest obstacles to clinical translation of bone tissue engineering is the inability to effectively and efficiently vascularize scaffolds. The goal of this work was to explore systematically whether architecture, at a scale of hundreds of microns, can be used to direct the growth of mic...

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Main Authors: Maria Isabella Gariboldi, Richard Butler, Serena M Best, Ruth E Cameron
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2019-01-01
Series:PLoS ONE
Online Access:https://doi.org/10.1371/journal.pone.0210390
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author Maria Isabella Gariboldi
Richard Butler
Serena M Best
Ruth E Cameron
author_facet Maria Isabella Gariboldi
Richard Butler
Serena M Best
Ruth E Cameron
author_sort Maria Isabella Gariboldi
collection DOAJ
description One of the greatest obstacles to clinical translation of bone tissue engineering is the inability to effectively and efficiently vascularize scaffolds. The goal of this work was to explore systematically whether architecture, at a scale of hundreds of microns, can be used to direct the growth of microcapillary-like structures into the core of scaffolds. Biphasic bioceramic patterned architectures were produced using silicone molds of 3D printed parts. Grooves and ridges were designed to have widths of 330 μm and 660 μm, with periodicities respectively of 1240 μm and 630 μm. Groove depth was varied between 150 μm and 585 μm. Co-cultures of human dermal microvascular endothelial cells (HDMECs) and human osteoblasts (hOBs) were used to grow microcapillary-like structures on substrates. Bioceramic architecture was found to significantly affect microcapillary-like structure location and orientation. Microcapillary-like structures were found to form predominantly in grooves or between convexities. For all patterned samples, the CD31 (endothelial cell marker) signal was at least 2.5 times higher along grooves versus perpendicular to grooves. In addition, the average signal was at least two times higher within grooves than outside grooves for all samples. Grooves with a width of 330 μm and a depth of 300 μm resulted in the formation of individual, highly aligned microcapillary-like structures with lengths around 5 mm. Extensive literature has focused on the role of nano- and micro-topography (on the scale below tens of microns) on cellular response. However, the idea that architecture at a scale much larger than a cell could be used to modulate angiogenesis has not been systematically investigated. This work shows the crucial influence of architecture on microcapillary-like structure self-assembly at the scale of hundreds of microns. Elucidating the precise correspondence between architecture and microcapillary-like structure organization will ultimately allow the engineering of microvasculature by tuning local scaffold design to achieve desirable microvessel properties.
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spelling doaj.art-9ab4af92bf27455ca2f3a9eb11ac35d32022-12-21T18:38:50ZengPublic Library of Science (PLoS)PLoS ONE1932-62032019-01-01141e021039010.1371/journal.pone.0210390Engineering vasculature: Architectural effects on microcapillary-like structure self-assembly.Maria Isabella GariboldiRichard ButlerSerena M BestRuth E CameronOne of the greatest obstacles to clinical translation of bone tissue engineering is the inability to effectively and efficiently vascularize scaffolds. The goal of this work was to explore systematically whether architecture, at a scale of hundreds of microns, can be used to direct the growth of microcapillary-like structures into the core of scaffolds. Biphasic bioceramic patterned architectures were produced using silicone molds of 3D printed parts. Grooves and ridges were designed to have widths of 330 μm and 660 μm, with periodicities respectively of 1240 μm and 630 μm. Groove depth was varied between 150 μm and 585 μm. Co-cultures of human dermal microvascular endothelial cells (HDMECs) and human osteoblasts (hOBs) were used to grow microcapillary-like structures on substrates. Bioceramic architecture was found to significantly affect microcapillary-like structure location and orientation. Microcapillary-like structures were found to form predominantly in grooves or between convexities. For all patterned samples, the CD31 (endothelial cell marker) signal was at least 2.5 times higher along grooves versus perpendicular to grooves. In addition, the average signal was at least two times higher within grooves than outside grooves for all samples. Grooves with a width of 330 μm and a depth of 300 μm resulted in the formation of individual, highly aligned microcapillary-like structures with lengths around 5 mm. Extensive literature has focused on the role of nano- and micro-topography (on the scale below tens of microns) on cellular response. However, the idea that architecture at a scale much larger than a cell could be used to modulate angiogenesis has not been systematically investigated. This work shows the crucial influence of architecture on microcapillary-like structure self-assembly at the scale of hundreds of microns. Elucidating the precise correspondence between architecture and microcapillary-like structure organization will ultimately allow the engineering of microvasculature by tuning local scaffold design to achieve desirable microvessel properties.https://doi.org/10.1371/journal.pone.0210390
spellingShingle Maria Isabella Gariboldi
Richard Butler
Serena M Best
Ruth E Cameron
Engineering vasculature: Architectural effects on microcapillary-like structure self-assembly.
PLoS ONE
title Engineering vasculature: Architectural effects on microcapillary-like structure self-assembly.
title_full Engineering vasculature: Architectural effects on microcapillary-like structure self-assembly.
title_fullStr Engineering vasculature: Architectural effects on microcapillary-like structure self-assembly.
title_full_unstemmed Engineering vasculature: Architectural effects on microcapillary-like structure self-assembly.
title_short Engineering vasculature: Architectural effects on microcapillary-like structure self-assembly.
title_sort engineering vasculature architectural effects on microcapillary like structure self assembly
url https://doi.org/10.1371/journal.pone.0210390
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