Cargando…

Increased pore size of scaffolds improves coating efficiency with sulfated hyaluronan and mineralization capacity of osteoblasts

BACKGROUND: Delayed bone regeneration of fractures in osteoporosis patients or of critical-size bone defects after tumor resection are a major medical and socio-economic challenge. Therefore, the development of more effective and osteoinductive biomaterials is crucial. METHODS: We examined the osteo...

Descripción completa

Detalles Bibliográficos
Autores principales: Krieghoff, Jan, Picke, Ann-Kristin, Salbach-Hirsch, Juliane, Rother, Sandra, Heinemann, Christiane, Bernhardt, Ricardo, Kascholke, Christian, Möller, Stephanie, Rauner, Martina, Schnabelrauch, Matthias, Hintze, Vera, Scharnweber, Dieter, Schulz-Siegmund, Michaela, Hacker, Michael C., Hofbauer, Lorenz C., Hofbauer, Christine
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BioMed Central 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6921484/
https://www.ncbi.nlm.nih.gov/pubmed/31890268
http://dx.doi.org/10.1186/s40824-019-0172-z
_version_ 1783481171673350144
author Krieghoff, Jan
Picke, Ann-Kristin
Salbach-Hirsch, Juliane
Rother, Sandra
Heinemann, Christiane
Bernhardt, Ricardo
Kascholke, Christian
Möller, Stephanie
Rauner, Martina
Schnabelrauch, Matthias
Hintze, Vera
Scharnweber, Dieter
Schulz-Siegmund, Michaela
Hacker, Michael C.
Hofbauer, Lorenz C.
Hofbauer, Christine
author_facet Krieghoff, Jan
Picke, Ann-Kristin
Salbach-Hirsch, Juliane
Rother, Sandra
Heinemann, Christiane
Bernhardt, Ricardo
Kascholke, Christian
Möller, Stephanie
Rauner, Martina
Schnabelrauch, Matthias
Hintze, Vera
Scharnweber, Dieter
Schulz-Siegmund, Michaela
Hacker, Michael C.
Hofbauer, Lorenz C.
Hofbauer, Christine
author_sort Krieghoff, Jan
collection PubMed
description BACKGROUND: Delayed bone regeneration of fractures in osteoporosis patients or of critical-size bone defects after tumor resection are a major medical and socio-economic challenge. Therefore, the development of more effective and osteoinductive biomaterials is crucial. METHODS: We examined the osteogenic potential of macroporous scaffolds with varying pore sizes after biofunctionalization with a collagen/high-sulfated hyaluronan (sHA3) coating in vitro. The three-dimensional scaffolds were made up from a biodegradable three-armed lactic acid-based macromer (TriLA) by cross-polymerization. Templating with solid lipid particles that melt during fabrication generates a continuous pore network. Human mesenchymal stem cells (hMSC) cultivated on the functionalized scaffolds in vitro were investigated for cell viability, production of alkaline phosphatase (ALP) and bone matrix formation. Statistical analysis was performed using student’s t-test or two-way ANOVA. RESULTS: We succeeded in generating scaffolds that feature a significantly higher average pore size and a broader distribution of individual pore sizes (HiPo) by modifying composition and relative amount of lipid particles, macromer concentration and temperature for cross-polymerization during scaffold fabrication. Overall porosity was retained, while the scaffolds showed a 25% decrease in compressive modulus compared to the initial TriLA scaffolds with a lower pore size (LoPo). These HiPo scaffolds were more readily coated as shown by higher amounts of immobilized collagen (+ 44%) and sHA3 (+ 25%) compared to LoPo scaffolds. In vitro, culture of hMSCs on collagen and/or sHA3-coated HiPo scaffolds demonstrated unaltered cell viability. Furthermore, the production of ALP, an early marker of osteogenesis (+ 3-fold), and formation of new bone matrix (+ 2.5-fold) was enhanced by the functionalization with sHA3 of both scaffold types. Nevertheless, effects were more pronounced on HiPo scaffolds about 112%. CONCLUSION: In summary, we showed that the improvement of scaffold pore sizes enhanced the coating efficiency with collagen and sHA3, which had a significant positive effect on bone formation markers, underlining the promise of using this material approach for in vivo studies.
format Online
Article
Text
id pubmed-6921484
institution National Center for Biotechnology Information
language English
publishDate 2019
publisher BioMed Central
record_format MEDLINE/PubMed
spelling pubmed-69214842019-12-30 Increased pore size of scaffolds improves coating efficiency with sulfated hyaluronan and mineralization capacity of osteoblasts Krieghoff, Jan Picke, Ann-Kristin Salbach-Hirsch, Juliane Rother, Sandra Heinemann, Christiane Bernhardt, Ricardo Kascholke, Christian Möller, Stephanie Rauner, Martina Schnabelrauch, Matthias Hintze, Vera Scharnweber, Dieter Schulz-Siegmund, Michaela Hacker, Michael C. Hofbauer, Lorenz C. Hofbauer, Christine Biomater Res Research Article BACKGROUND: Delayed bone regeneration of fractures in osteoporosis patients or of critical-size bone defects after tumor resection are a major medical and socio-economic challenge. Therefore, the development of more effective and osteoinductive biomaterials is crucial. METHODS: We examined the osteogenic potential of macroporous scaffolds with varying pore sizes after biofunctionalization with a collagen/high-sulfated hyaluronan (sHA3) coating in vitro. The three-dimensional scaffolds were made up from a biodegradable three-armed lactic acid-based macromer (TriLA) by cross-polymerization. Templating with solid lipid particles that melt during fabrication generates a continuous pore network. Human mesenchymal stem cells (hMSC) cultivated on the functionalized scaffolds in vitro were investigated for cell viability, production of alkaline phosphatase (ALP) and bone matrix formation. Statistical analysis was performed using student’s t-test or two-way ANOVA. RESULTS: We succeeded in generating scaffolds that feature a significantly higher average pore size and a broader distribution of individual pore sizes (HiPo) by modifying composition and relative amount of lipid particles, macromer concentration and temperature for cross-polymerization during scaffold fabrication. Overall porosity was retained, while the scaffolds showed a 25% decrease in compressive modulus compared to the initial TriLA scaffolds with a lower pore size (LoPo). These HiPo scaffolds were more readily coated as shown by higher amounts of immobilized collagen (+ 44%) and sHA3 (+ 25%) compared to LoPo scaffolds. In vitro, culture of hMSCs on collagen and/or sHA3-coated HiPo scaffolds demonstrated unaltered cell viability. Furthermore, the production of ALP, an early marker of osteogenesis (+ 3-fold), and formation of new bone matrix (+ 2.5-fold) was enhanced by the functionalization with sHA3 of both scaffold types. Nevertheless, effects were more pronounced on HiPo scaffolds about 112%. CONCLUSION: In summary, we showed that the improvement of scaffold pore sizes enhanced the coating efficiency with collagen and sHA3, which had a significant positive effect on bone formation markers, underlining the promise of using this material approach for in vivo studies. BioMed Central 2019-12-18 /pmc/articles/PMC6921484/ /pubmed/31890268 http://dx.doi.org/10.1186/s40824-019-0172-z Text en © The Author(s). 2019 Open AccessThis article is distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution, and reproduction in any medium, provided you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made. The Creative Commons Public Domain Dedication waiver (http://creativecommons.org/publicdomain/zero/1.0/) applies to the data made available in this article, unless otherwise stated.
spellingShingle Research Article
Krieghoff, Jan
Picke, Ann-Kristin
Salbach-Hirsch, Juliane
Rother, Sandra
Heinemann, Christiane
Bernhardt, Ricardo
Kascholke, Christian
Möller, Stephanie
Rauner, Martina
Schnabelrauch, Matthias
Hintze, Vera
Scharnweber, Dieter
Schulz-Siegmund, Michaela
Hacker, Michael C.
Hofbauer, Lorenz C.
Hofbauer, Christine
Increased pore size of scaffolds improves coating efficiency with sulfated hyaluronan and mineralization capacity of osteoblasts
title Increased pore size of scaffolds improves coating efficiency with sulfated hyaluronan and mineralization capacity of osteoblasts
title_full Increased pore size of scaffolds improves coating efficiency with sulfated hyaluronan and mineralization capacity of osteoblasts
title_fullStr Increased pore size of scaffolds improves coating efficiency with sulfated hyaluronan and mineralization capacity of osteoblasts
title_full_unstemmed Increased pore size of scaffolds improves coating efficiency with sulfated hyaluronan and mineralization capacity of osteoblasts
title_short Increased pore size of scaffolds improves coating efficiency with sulfated hyaluronan and mineralization capacity of osteoblasts
title_sort increased pore size of scaffolds improves coating efficiency with sulfated hyaluronan and mineralization capacity of osteoblasts
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6921484/
https://www.ncbi.nlm.nih.gov/pubmed/31890268
http://dx.doi.org/10.1186/s40824-019-0172-z
work_keys_str_mv AT krieghoffjan increasedporesizeofscaffoldsimprovescoatingefficiencywithsulfatedhyaluronanandmineralizationcapacityofosteoblasts
AT pickeannkristin increasedporesizeofscaffoldsimprovescoatingefficiencywithsulfatedhyaluronanandmineralizationcapacityofosteoblasts
AT salbachhirschjuliane increasedporesizeofscaffoldsimprovescoatingefficiencywithsulfatedhyaluronanandmineralizationcapacityofosteoblasts
AT rothersandra increasedporesizeofscaffoldsimprovescoatingefficiencywithsulfatedhyaluronanandmineralizationcapacityofosteoblasts
AT heinemannchristiane increasedporesizeofscaffoldsimprovescoatingefficiencywithsulfatedhyaluronanandmineralizationcapacityofosteoblasts
AT bernhardtricardo increasedporesizeofscaffoldsimprovescoatingefficiencywithsulfatedhyaluronanandmineralizationcapacityofosteoblasts
AT kascholkechristian increasedporesizeofscaffoldsimprovescoatingefficiencywithsulfatedhyaluronanandmineralizationcapacityofosteoblasts
AT mollerstephanie increasedporesizeofscaffoldsimprovescoatingefficiencywithsulfatedhyaluronanandmineralizationcapacityofosteoblasts
AT raunermartina increasedporesizeofscaffoldsimprovescoatingefficiencywithsulfatedhyaluronanandmineralizationcapacityofosteoblasts
AT schnabelrauchmatthias increasedporesizeofscaffoldsimprovescoatingefficiencywithsulfatedhyaluronanandmineralizationcapacityofosteoblasts
AT hintzevera increasedporesizeofscaffoldsimprovescoatingefficiencywithsulfatedhyaluronanandmineralizationcapacityofosteoblasts
AT scharnweberdieter increasedporesizeofscaffoldsimprovescoatingefficiencywithsulfatedhyaluronanandmineralizationcapacityofosteoblasts
AT schulzsiegmundmichaela increasedporesizeofscaffoldsimprovescoatingefficiencywithsulfatedhyaluronanandmineralizationcapacityofosteoblasts
AT hackermichaelc increasedporesizeofscaffoldsimprovescoatingefficiencywithsulfatedhyaluronanandmineralizationcapacityofosteoblasts
AT hofbauerlorenzc increasedporesizeofscaffoldsimprovescoatingefficiencywithsulfatedhyaluronanandmineralizationcapacityofosteoblasts
AT hofbauerchristine increasedporesizeofscaffoldsimprovescoatingefficiencywithsulfatedhyaluronanandmineralizationcapacityofosteoblasts