3D-printed nerve guidance conduits multi-functionalized with canine multipotent mesenchymal stromal cells promote neuroregeneration after sciatic nerve injury in rats
Abstract Background Nerve injuries are debilitating, leading to long-term motor deficits. Remyelination and axonal growth are supported and enhanced by growth factor and cytokines. Combination of nerve guidance conduits (NGCs) with adipose-tissue-derived multipotent mesenchymal stromal cells (AdMSCs...
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2021-05-01
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Online Access: | https://doi.org/10.1186/s13287-021-02315-8 |
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Article |
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DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Diego Noé Rodríguez-Sánchez Giovana Boff Araujo Pinto Luciana Politti Cartarozzi Alexandre Leite Rodrigues de Oliveira Ana Livia Carvalho Bovolato Marcio de Carvalho Jorge Vicente Lopes da Silva Janaina de Andréa Dernowsek Marjorie Golim Benedito Barraviera Rui Seabra Ferreira Elenice Deffune Mathues Bertanha Rogério Martins Amorim |
spellingShingle |
Diego Noé Rodríguez-Sánchez Giovana Boff Araujo Pinto Luciana Politti Cartarozzi Alexandre Leite Rodrigues de Oliveira Ana Livia Carvalho Bovolato Marcio de Carvalho Jorge Vicente Lopes da Silva Janaina de Andréa Dernowsek Marjorie Golim Benedito Barraviera Rui Seabra Ferreira Elenice Deffune Mathues Bertanha Rogério Martins Amorim 3D-printed nerve guidance conduits multi-functionalized with canine multipotent mesenchymal stromal cells promote neuroregeneration after sciatic nerve injury in rats Stem Cell Research & Therapy Canine mesenchymal stem cells Nerve regeneration Sciatic nerve injury Cell-based therapy Tissue engineering Nerve guidance conduits |
author_facet |
Diego Noé Rodríguez-Sánchez Giovana Boff Araujo Pinto Luciana Politti Cartarozzi Alexandre Leite Rodrigues de Oliveira Ana Livia Carvalho Bovolato Marcio de Carvalho Jorge Vicente Lopes da Silva Janaina de Andréa Dernowsek Marjorie Golim Benedito Barraviera Rui Seabra Ferreira Elenice Deffune Mathues Bertanha Rogério Martins Amorim |
author_sort |
Diego Noé Rodríguez-Sánchez |
title |
3D-printed nerve guidance conduits multi-functionalized with canine multipotent mesenchymal stromal cells promote neuroregeneration after sciatic nerve injury in rats |
title_short |
3D-printed nerve guidance conduits multi-functionalized with canine multipotent mesenchymal stromal cells promote neuroregeneration after sciatic nerve injury in rats |
title_full |
3D-printed nerve guidance conduits multi-functionalized with canine multipotent mesenchymal stromal cells promote neuroregeneration after sciatic nerve injury in rats |
title_fullStr |
3D-printed nerve guidance conduits multi-functionalized with canine multipotent mesenchymal stromal cells promote neuroregeneration after sciatic nerve injury in rats |
title_full_unstemmed |
3D-printed nerve guidance conduits multi-functionalized with canine multipotent mesenchymal stromal cells promote neuroregeneration after sciatic nerve injury in rats |
title_sort |
3d-printed nerve guidance conduits multi-functionalized with canine multipotent mesenchymal stromal cells promote neuroregeneration after sciatic nerve injury in rats |
publisher |
BMC |
series |
Stem Cell Research & Therapy |
issn |
1757-6512 |
publishDate |
2021-05-01 |
description |
Abstract Background Nerve injuries are debilitating, leading to long-term motor deficits. Remyelination and axonal growth are supported and enhanced by growth factor and cytokines. Combination of nerve guidance conduits (NGCs) with adipose-tissue-derived multipotent mesenchymal stromal cells (AdMSCs) has been performing promising strategy for nerve regeneration. Methods 3D-printed polycaprolactone (PCL)-NGCs were fabricated. Wistar rats subjected to critical sciatic nerve damage (12-mm gap) were divided into sham, autograft, PCL (empty NGC), and PCL + MSCs (NGC multi-functionalized with 106 canine AdMSCs embedded in heterologous fibrin biopolymer) groups. In vitro, the cells were characterized and directly stimulated with interferon-gamma to evaluate their neuroregeneration potential. In vivo, the sciatic and tibial functional indices were evaluated for 12 weeks. Gait analysis and nerve conduction velocity were analyzed after 8 and 12 weeks. Morphometric analysis was performed after 8 and 12 weeks following lesion development. Real-time PCR was performed to evaluate the neurotrophic factors BDNF, GDNF, and HGF, and the cytokine and IL-10. Immunohistochemical analysis for the p75NTR neurotrophic receptor, S100, and neurofilament was performed with the sciatic nerve. Results The inflammatory environment in vitro have increased the expression of neurotrophins BDNF, GDNF, HGF, and IL-10 in canine AdMSCs. Nerve guidance conduits multi-functionalized with canine AdMSCs embedded in HFB improved functional motor and electrophysiological recovery compared with PCL group after 12 weeks. However, the results were not significantly different than those obtained using autografts. These findings were associated with a shift in the regeneration process towards the formation of myelinated fibers. Increased immunostaining of BDNF, GDNF, and growth factor receptor p75NTR was associated with the upregulation of BDNF, GDNF, and HGF in the spinal cord of the PCL + MSCs group. A trend demonstrating higher reactivity of Schwann cells and axonal branching in the sciatic nerve was observed, and canine AdMSCs were engrafted at 30 days following repair. Conclusions 3D-printed NGCs multi-functionalized with canine AdMSCs embedded in heterologous fibrin biopolymer as cell scaffold exerted neuroregenerative effects. Our multimodal approach supports the trophic microenvironment, resulting in a pro-regenerative state after critical sciatic nerve injury in rats. |
topic |
Canine mesenchymal stem cells Nerve regeneration Sciatic nerve injury Cell-based therapy Tissue engineering Nerve guidance conduits |
url |
https://doi.org/10.1186/s13287-021-02315-8 |
work_keys_str_mv |
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doaj-007837b765de4649a53350f0d59dd87c2021-05-30T11:10:21ZengBMCStem Cell Research & Therapy1757-65122021-05-0112112010.1186/s13287-021-02315-83D-printed nerve guidance conduits multi-functionalized with canine multipotent mesenchymal stromal cells promote neuroregeneration after sciatic nerve injury in ratsDiego Noé Rodríguez-Sánchez0Giovana Boff Araujo Pinto1Luciana Politti Cartarozzi2Alexandre Leite Rodrigues de Oliveira3Ana Livia Carvalho Bovolato4Marcio de Carvalho5Jorge Vicente Lopes da Silva6Janaina de Andréa Dernowsek7Marjorie Golim8Benedito Barraviera9Rui Seabra Ferreira10Elenice Deffune11Mathues Bertanha12Rogério Martins Amorim13Department of Veterinary Clinics, School of Veterinary Medicine and Animal Science, São Paulo State University (UNESP)Department of Veterinary Clinics, School of Veterinary Medicine and Animal Science, São Paulo State University (UNESP)Department of Structural and Functional Biology, Institute of Biology, University of CampinasDepartment of Structural and Functional Biology, Institute of Biology, University of CampinasBlood Transfusion Center, Cell Engineering Laboratory, Botucatu Medical School, São Paulo State UniversityDepartment of Veterinary Clinics, School of Veterinary Medicine and Animal Science, São Paulo State University (UNESP)Renato Archer Information Technology Center (CTI), Three-dimensional Technologies Research GroupRenato Archer Information Technology Center (CTI), Three-dimensional Technologies Research GroupHemocenter division of Botucatu Medical School, São Paulo State UniversityCenter for the Study of Venoms and Venomous Animals (CEVAP), São Paulo State University (UNESP)Center for the Study of Venoms and Venomous Animals (CEVAP), São Paulo State University (UNESP)Blood Transfusion Center, Cell Engineering Laboratory, Botucatu Medical School, São Paulo State UniversityBlood Transfusion Center, Cell Engineering Laboratory, Botucatu Medical School, São Paulo State UniversityDepartment of Veterinary Clinics, School of Veterinary Medicine and Animal Science, São Paulo State University (UNESP)Abstract Background Nerve injuries are debilitating, leading to long-term motor deficits. Remyelination and axonal growth are supported and enhanced by growth factor and cytokines. Combination of nerve guidance conduits (NGCs) with adipose-tissue-derived multipotent mesenchymal stromal cells (AdMSCs) has been performing promising strategy for nerve regeneration. Methods 3D-printed polycaprolactone (PCL)-NGCs were fabricated. Wistar rats subjected to critical sciatic nerve damage (12-mm gap) were divided into sham, autograft, PCL (empty NGC), and PCL + MSCs (NGC multi-functionalized with 106 canine AdMSCs embedded in heterologous fibrin biopolymer) groups. In vitro, the cells were characterized and directly stimulated with interferon-gamma to evaluate their neuroregeneration potential. In vivo, the sciatic and tibial functional indices were evaluated for 12 weeks. Gait analysis and nerve conduction velocity were analyzed after 8 and 12 weeks. Morphometric analysis was performed after 8 and 12 weeks following lesion development. Real-time PCR was performed to evaluate the neurotrophic factors BDNF, GDNF, and HGF, and the cytokine and IL-10. Immunohistochemical analysis for the p75NTR neurotrophic receptor, S100, and neurofilament was performed with the sciatic nerve. Results The inflammatory environment in vitro have increased the expression of neurotrophins BDNF, GDNF, HGF, and IL-10 in canine AdMSCs. Nerve guidance conduits multi-functionalized with canine AdMSCs embedded in HFB improved functional motor and electrophysiological recovery compared with PCL group after 12 weeks. However, the results were not significantly different than those obtained using autografts. These findings were associated with a shift in the regeneration process towards the formation of myelinated fibers. Increased immunostaining of BDNF, GDNF, and growth factor receptor p75NTR was associated with the upregulation of BDNF, GDNF, and HGF in the spinal cord of the PCL + MSCs group. A trend demonstrating higher reactivity of Schwann cells and axonal branching in the sciatic nerve was observed, and canine AdMSCs were engrafted at 30 days following repair. Conclusions 3D-printed NGCs multi-functionalized with canine AdMSCs embedded in heterologous fibrin biopolymer as cell scaffold exerted neuroregenerative effects. Our multimodal approach supports the trophic microenvironment, resulting in a pro-regenerative state after critical sciatic nerve injury in rats.https://doi.org/10.1186/s13287-021-02315-8Canine mesenchymal stem cellsNerve regenerationSciatic nerve injuryCell-based therapyTissue engineeringNerve guidance conduits |