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Bioprinted 3D Bionic Scaffolds with Pancreatic Islets as a New Therapy for Type 1 Diabetes—Analysis of the Results of Preclinical Studies on a Mouse Model

Recently, tissue engineering, including 3D bioprinting of the pancreas, has acquired clinical significance and has become an outstanding potential method of customized treatment for type 1 diabetes mellitus. The study aimed to evaluate the function of 3D-bioprinted pancreatic petals with pancreatic...

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Autores principales: Klak, Marta, Wszoła, Michał, Berman, Andrzej, Filip, Anna, Kosowska, Anna, Olkowska-Truchanowicz, Joanna, Rachalewski, Michał, Tymicki, Grzegorz, Bryniarski, Tomasz, Kołodziejska, Marta, Dobrzański, Tomasz, Ujazdowska, Dominika, Wejman, Jarosław, Uhrynowska-Tyszkiewicz, Izabela, Kamiński, Artur
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10381593/
https://www.ncbi.nlm.nih.gov/pubmed/37504866
http://dx.doi.org/10.3390/jfb14070371
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author Klak, Marta
Wszoła, Michał
Berman, Andrzej
Filip, Anna
Kosowska, Anna
Olkowska-Truchanowicz, Joanna
Rachalewski, Michał
Tymicki, Grzegorz
Bryniarski, Tomasz
Kołodziejska, Marta
Dobrzański, Tomasz
Ujazdowska, Dominika
Wejman, Jarosław
Uhrynowska-Tyszkiewicz, Izabela
Kamiński, Artur
author_facet Klak, Marta
Wszoła, Michał
Berman, Andrzej
Filip, Anna
Kosowska, Anna
Olkowska-Truchanowicz, Joanna
Rachalewski, Michał
Tymicki, Grzegorz
Bryniarski, Tomasz
Kołodziejska, Marta
Dobrzański, Tomasz
Ujazdowska, Dominika
Wejman, Jarosław
Uhrynowska-Tyszkiewicz, Izabela
Kamiński, Artur
author_sort Klak, Marta
collection PubMed
description Recently, tissue engineering, including 3D bioprinting of the pancreas, has acquired clinical significance and has become an outstanding potential method of customized treatment for type 1 diabetes mellitus. The study aimed to evaluate the function of 3D-bioprinted pancreatic petals with pancreatic islets in the murine model. A total of 60 NOD-SCID (Nonobese diabetic/severe combined immunodeficiency) mice were used in the study and divided into three groups: control group; IsletTx (porcine islets transplanted under the renal capsule); and 3D bioprint (3D-bioprinted pancreatic petals with islets transplanted under the skin, on dorsal muscles). Glucose, C-peptide concentrations, and histological analyses were performed. In the obtained results, significantly lower mean fasting glucose levels (mg/dL) were observed both in a 3D-bioprint group and in a group with islets transplanted under the renal capsule when compared with untreated animals. Differences were observed in all control points: 7th, 14th, and 28th days post-transplantation (129, 119, 118 vs. 140, 139, 140; p < 0.001). Glucose levels were lower on the 14th and 28th days in a group with bioprinted petals compared to the group with islets transplanted under the renal capsule. Immunohistochemical staining indicated the presence of secreted insulin-living pancreatic islets and neovascularization within 3D-bioprinted pancreatic petals after transplantation. In conclusion, bioprinted bionic petals significantly lowered plasma glucose concentration in studied model species.
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spelling pubmed-103815932023-07-29 Bioprinted 3D Bionic Scaffolds with Pancreatic Islets as a New Therapy for Type 1 Diabetes—Analysis of the Results of Preclinical Studies on a Mouse Model Klak, Marta Wszoła, Michał Berman, Andrzej Filip, Anna Kosowska, Anna Olkowska-Truchanowicz, Joanna Rachalewski, Michał Tymicki, Grzegorz Bryniarski, Tomasz Kołodziejska, Marta Dobrzański, Tomasz Ujazdowska, Dominika Wejman, Jarosław Uhrynowska-Tyszkiewicz, Izabela Kamiński, Artur J Funct Biomater Article Recently, tissue engineering, including 3D bioprinting of the pancreas, has acquired clinical significance and has become an outstanding potential method of customized treatment for type 1 diabetes mellitus. The study aimed to evaluate the function of 3D-bioprinted pancreatic petals with pancreatic islets in the murine model. A total of 60 NOD-SCID (Nonobese diabetic/severe combined immunodeficiency) mice were used in the study and divided into three groups: control group; IsletTx (porcine islets transplanted under the renal capsule); and 3D bioprint (3D-bioprinted pancreatic petals with islets transplanted under the skin, on dorsal muscles). Glucose, C-peptide concentrations, and histological analyses were performed. In the obtained results, significantly lower mean fasting glucose levels (mg/dL) were observed both in a 3D-bioprint group and in a group with islets transplanted under the renal capsule when compared with untreated animals. Differences were observed in all control points: 7th, 14th, and 28th days post-transplantation (129, 119, 118 vs. 140, 139, 140; p < 0.001). Glucose levels were lower on the 14th and 28th days in a group with bioprinted petals compared to the group with islets transplanted under the renal capsule. Immunohistochemical staining indicated the presence of secreted insulin-living pancreatic islets and neovascularization within 3D-bioprinted pancreatic petals after transplantation. In conclusion, bioprinted bionic petals significantly lowered plasma glucose concentration in studied model species. MDPI 2023-07-14 /pmc/articles/PMC10381593/ /pubmed/37504866 http://dx.doi.org/10.3390/jfb14070371 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/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 (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Klak, Marta
Wszoła, Michał
Berman, Andrzej
Filip, Anna
Kosowska, Anna
Olkowska-Truchanowicz, Joanna
Rachalewski, Michał
Tymicki, Grzegorz
Bryniarski, Tomasz
Kołodziejska, Marta
Dobrzański, Tomasz
Ujazdowska, Dominika
Wejman, Jarosław
Uhrynowska-Tyszkiewicz, Izabela
Kamiński, Artur
Bioprinted 3D Bionic Scaffolds with Pancreatic Islets as a New Therapy for Type 1 Diabetes—Analysis of the Results of Preclinical Studies on a Mouse Model
title Bioprinted 3D Bionic Scaffolds with Pancreatic Islets as a New Therapy for Type 1 Diabetes—Analysis of the Results of Preclinical Studies on a Mouse Model
title_full Bioprinted 3D Bionic Scaffolds with Pancreatic Islets as a New Therapy for Type 1 Diabetes—Analysis of the Results of Preclinical Studies on a Mouse Model
title_fullStr Bioprinted 3D Bionic Scaffolds with Pancreatic Islets as a New Therapy for Type 1 Diabetes—Analysis of the Results of Preclinical Studies on a Mouse Model
title_full_unstemmed Bioprinted 3D Bionic Scaffolds with Pancreatic Islets as a New Therapy for Type 1 Diabetes—Analysis of the Results of Preclinical Studies on a Mouse Model
title_short Bioprinted 3D Bionic Scaffolds with Pancreatic Islets as a New Therapy for Type 1 Diabetes—Analysis of the Results of Preclinical Studies on a Mouse Model
title_sort bioprinted 3d bionic scaffolds with pancreatic islets as a new therapy for type 1 diabetes—analysis of the results of preclinical studies on a mouse model
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10381593/
https://www.ncbi.nlm.nih.gov/pubmed/37504866
http://dx.doi.org/10.3390/jfb14070371
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