Fast-degrading PLA/ORMOGLASS fibrous composite scaffold leads to a calcium-rich angiogenic environment

dc.contributor
Universitat Politècnica de Catalunya. Departament de Ciència dels Materials i Enginyeria Metal·lúrgica
dc.contributor
Universitat Politècnica de Catalunya. BBT - Biomaterials, Biomecànica i Enginyeria de Teixits
dc.contributor.author
Sachot, Nadège
dc.contributor.author
Roguska, Agata
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Planell Estany, Josep Anton
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Lewandowska, Malgorzata
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Engel López, Elisabeth
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Castaño Linares, Óscar
dc.date.issued
2017-01-01
dc.identifier
Sachot, N., Roguska, A., Planell, J. A., Lewandowska, M., Engel, E., Castaño, Ó. Fast-degrading PLA/ORMOGLASS fibrous composite scaffold leads to a calcium-rich angiogenic environment. "International journal of nanomedicine (Online)", 1 Gener 2017, vol. 12, p. 4901-4919.
dc.identifier
1178-2013
dc.identifier
https://hdl.handle.net/2117/106915
dc.identifier
10.2147/IJN.S135806
dc.identifier
28744124
dc.description.abstract
The success of scaffold implantation in acellular tissue engineering approaches relies on the ability of the material to interact properly with the biological environment. This behavior mainly depends on the design of the graft surface and, more precisely, on its capacity to biodegrade in a well-defined manner (nature of ions released, surface-to-volume ratio, dissolution profile of this release, rate of material resorption, and preservation of mechanical properties). The assessment of the biological behavior of temporary templates is therefore very important in tissue engineering, especially for composites, which usually exhibit complicated degradation behavior. Here, blended polylactic acid (PLA) calcium phosphate ORMOGLASS (organically modified glass) nanofibrous mats have been incubated up to 4 weeks in physiological simulated conditions, and their morphological, topographical, and chemical changes have been investigated. The results showed that a significant loss of inorganic phase occurred at the beginning of the immersion and the ORMOGLASS maintained a stable composition afterward throughout the degradation period. As a whole, the nanostructured scaffolds underwent fast and heterogeneous degradation. This study reveals that an angiogenic calcium-rich environment can be achieved through fast-degrading ORMOGLASS/PLA blended fibers, which seems to be an excellent alternative for guided bone regeneration.
dc.description.abstract
Postprint (published version)
dc.format
19 p.
dc.format
application/pdf
dc.language
eng
dc.relation
https://www.dovepress.com/fast-degrading-plaormoglass--fibrous-composite-scaffold-leads-to-a-cal-peer-reviewed-article-IJN
dc.rights
http://creativecommons.org/licenses/by-nc-nd/3.0/es/
dc.rights
Open Access
dc.rights
Attribution-NonCommercial-NoDerivs 3.0 Spain
dc.subject
Àrees temàtiques de la UPC::Enginyeria dels materials
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Tissue engineering
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Calcium phosphate
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electrospinning
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fast degradation
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Ormoglasses
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angiogenesis
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nanofibers
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calcium release
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Enginyeria de teixits
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Fosfat de calci
dc.title
Fast-degrading PLA/ORMOGLASS fibrous composite scaffold leads to a calcium-rich angiogenic environment
dc.type
Article


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