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Biofabrication of SDF-1 Functionalized 3D-Printed Cell-Free Scaffolds for Bone Tissue Regeneration

Large segmental bone defects occurring after trauma, bone tumors, infections or revision surgeries are a challenge for surgeons. The aim of our study was to develop a new biomaterial utilizing simple and cheap 3D-printing techniques. A porous polylactide (PLA) cylinder was printed and functionalized...

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Autores principales: Lauer, Alina, Wolf, Philipp, Mehler, Dorothea, Götz, Hermann, Rüzgar, Mehmet, Baranowski, Andreas, Henrich, Dirk, Rommens, Pol Maria, Ritz, Ulrike
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7139557/
https://www.ncbi.nlm.nih.gov/pubmed/32245268
http://dx.doi.org/10.3390/ijms21062175
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author Lauer, Alina
Wolf, Philipp
Mehler, Dorothea
Götz, Hermann
Rüzgar, Mehmet
Baranowski, Andreas
Henrich, Dirk
Rommens, Pol Maria
Ritz, Ulrike
author_facet Lauer, Alina
Wolf, Philipp
Mehler, Dorothea
Götz, Hermann
Rüzgar, Mehmet
Baranowski, Andreas
Henrich, Dirk
Rommens, Pol Maria
Ritz, Ulrike
author_sort Lauer, Alina
collection PubMed
description Large segmental bone defects occurring after trauma, bone tumors, infections or revision surgeries are a challenge for surgeons. The aim of our study was to develop a new biomaterial utilizing simple and cheap 3D-printing techniques. A porous polylactide (PLA) cylinder was printed and functionalized with stromal-derived factor 1 (SDF-1) or bone morphogenetic protein 7 (BMP-7) immobilized in collagen type I. Biomechanical testing proved biomechanical stability and the scaffolds were implanted into a 6 mm critical size defect in rat femur. Bone growth was observed via x-ray and after 8 weeks, bone regeneration was analyzed with µCT and histological staining methods. Development of non-unions was detected in the control group with no implant. Implantation of PLA cylinder alone resulted in a slight but not significant osteoconductive effect, which was more pronounced in the group where the PLA cylinder was loaded with collagen type I. Addition of SDF-1 resulted in an osteoinductive effect, with stronger new bone formation. BMP-7 treatment showed the most distinct effect on bone regeneration. However, histological analyses revealed that newly formed bone in the BMP-7 group displayed a holey structure. Our results confirm the osteoinductive character of this 3D-biofabricated cell-free new biomaterial and raise new options for its application in bone tissue regeneration.
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spelling pubmed-71395572020-04-10 Biofabrication of SDF-1 Functionalized 3D-Printed Cell-Free Scaffolds for Bone Tissue Regeneration Lauer, Alina Wolf, Philipp Mehler, Dorothea Götz, Hermann Rüzgar, Mehmet Baranowski, Andreas Henrich, Dirk Rommens, Pol Maria Ritz, Ulrike Int J Mol Sci Article Large segmental bone defects occurring after trauma, bone tumors, infections or revision surgeries are a challenge for surgeons. The aim of our study was to develop a new biomaterial utilizing simple and cheap 3D-printing techniques. A porous polylactide (PLA) cylinder was printed and functionalized with stromal-derived factor 1 (SDF-1) or bone morphogenetic protein 7 (BMP-7) immobilized in collagen type I. Biomechanical testing proved biomechanical stability and the scaffolds were implanted into a 6 mm critical size defect in rat femur. Bone growth was observed via x-ray and after 8 weeks, bone regeneration was analyzed with µCT and histological staining methods. Development of non-unions was detected in the control group with no implant. Implantation of PLA cylinder alone resulted in a slight but not significant osteoconductive effect, which was more pronounced in the group where the PLA cylinder was loaded with collagen type I. Addition of SDF-1 resulted in an osteoinductive effect, with stronger new bone formation. BMP-7 treatment showed the most distinct effect on bone regeneration. However, histological analyses revealed that newly formed bone in the BMP-7 group displayed a holey structure. Our results confirm the osteoinductive character of this 3D-biofabricated cell-free new biomaterial and raise new options for its application in bone tissue regeneration. MDPI 2020-03-21 /pmc/articles/PMC7139557/ /pubmed/32245268 http://dx.doi.org/10.3390/ijms21062175 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Lauer, Alina
Wolf, Philipp
Mehler, Dorothea
Götz, Hermann
Rüzgar, Mehmet
Baranowski, Andreas
Henrich, Dirk
Rommens, Pol Maria
Ritz, Ulrike
Biofabrication of SDF-1 Functionalized 3D-Printed Cell-Free Scaffolds for Bone Tissue Regeneration
title Biofabrication of SDF-1 Functionalized 3D-Printed Cell-Free Scaffolds for Bone Tissue Regeneration
title_full Biofabrication of SDF-1 Functionalized 3D-Printed Cell-Free Scaffolds for Bone Tissue Regeneration
title_fullStr Biofabrication of SDF-1 Functionalized 3D-Printed Cell-Free Scaffolds for Bone Tissue Regeneration
title_full_unstemmed Biofabrication of SDF-1 Functionalized 3D-Printed Cell-Free Scaffolds for Bone Tissue Regeneration
title_short Biofabrication of SDF-1 Functionalized 3D-Printed Cell-Free Scaffolds for Bone Tissue Regeneration
title_sort biofabrication of sdf-1 functionalized 3d-printed cell-free scaffolds for bone tissue regeneration
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7139557/
https://www.ncbi.nlm.nih.gov/pubmed/32245268
http://dx.doi.org/10.3390/ijms21062175
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