Cargando…

Macroautophagy and Selective Mitophagy Ameliorate Chondrogenic Differentiation Potential in Adipose Stem Cells of Equine Metabolic Syndrome: New Findings in the Field of Progenitor Cells Differentiation

Equine metabolic syndrome (EMS) is mainly characterized by insulin resistance, obesity, and local or systemic inflammation. That unfriendly environment of adipose tissue has huge impact on stem cells population (ASC) residing within. In the present study, using molecular biology techniques and multi...

Descripción completa

Detalles Bibliográficos
Autores principales: Marycz, Krzysztof, Kornicka, Katarzyna, Grzesiak, Jakub, Śmieszek, Agnieszka, Szłapka, Jolanta
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Hindawi Publishing Corporation 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5178365/
https://www.ncbi.nlm.nih.gov/pubmed/28053691
http://dx.doi.org/10.1155/2016/3718468
_version_ 1782485166867873792
author Marycz, Krzysztof
Kornicka, Katarzyna
Grzesiak, Jakub
Śmieszek, Agnieszka
Szłapka, Jolanta
author_facet Marycz, Krzysztof
Kornicka, Katarzyna
Grzesiak, Jakub
Śmieszek, Agnieszka
Szłapka, Jolanta
author_sort Marycz, Krzysztof
collection PubMed
description Equine metabolic syndrome (EMS) is mainly characterized by insulin resistance, obesity, and local or systemic inflammation. That unfriendly environment of adipose tissue has huge impact on stem cells population (ASC) residing within. In the present study, using molecular biology techniques and multiple imaging techniques (SEM, FIB-SEM, and confocal microscopy), we evaluated the impact of EMS on ASC viability and chondrogenic differentiation. Moreover, we visualized the mitochondrial network and dynamics in ASC(CTRL) and ASC(EMS) during control and chondrogenic conditions. In control conditions, ASC(EMS) were characterized by increased mitochondrial fission in comparison to ASC(CTRL). We found that extensive remodeling of mitochondrial network including fusion and fission occurs during early step of differentiation. Moreover, we observed mitochondria morphology deterioration in ASC(EMS). These conditions seem to cause autophagic shift in ASC(EMS), as we observed increased accumulation of LAMP2 and formation of multiple autophagosomes in those cells, some of which contained dysfunctional mitochondria. “Autophagic” switch may be a rescue mechanism allowing ASC(EMS) to clear impaired by ROS proteins and mitochondria. Moreover it provides a precursors-to-macromolecules synthesis, especially during chondrogenesis. Our data indicates that autophagy in ASC(EMS) would be crucial for the quality control mechanisms and maintenance of cellular homeostasis ASC(EMS) allowing them to be in “stemness” status.
format Online
Article
Text
id pubmed-5178365
institution National Center for Biotechnology Information
language English
publishDate 2016
publisher Hindawi Publishing Corporation
record_format MEDLINE/PubMed
spelling pubmed-51783652017-01-04 Macroautophagy and Selective Mitophagy Ameliorate Chondrogenic Differentiation Potential in Adipose Stem Cells of Equine Metabolic Syndrome: New Findings in the Field of Progenitor Cells Differentiation Marycz, Krzysztof Kornicka, Katarzyna Grzesiak, Jakub Śmieszek, Agnieszka Szłapka, Jolanta Oxid Med Cell Longev Research Article Equine metabolic syndrome (EMS) is mainly characterized by insulin resistance, obesity, and local or systemic inflammation. That unfriendly environment of adipose tissue has huge impact on stem cells population (ASC) residing within. In the present study, using molecular biology techniques and multiple imaging techniques (SEM, FIB-SEM, and confocal microscopy), we evaluated the impact of EMS on ASC viability and chondrogenic differentiation. Moreover, we visualized the mitochondrial network and dynamics in ASC(CTRL) and ASC(EMS) during control and chondrogenic conditions. In control conditions, ASC(EMS) were characterized by increased mitochondrial fission in comparison to ASC(CTRL). We found that extensive remodeling of mitochondrial network including fusion and fission occurs during early step of differentiation. Moreover, we observed mitochondria morphology deterioration in ASC(EMS). These conditions seem to cause autophagic shift in ASC(EMS), as we observed increased accumulation of LAMP2 and formation of multiple autophagosomes in those cells, some of which contained dysfunctional mitochondria. “Autophagic” switch may be a rescue mechanism allowing ASC(EMS) to clear impaired by ROS proteins and mitochondria. Moreover it provides a precursors-to-macromolecules synthesis, especially during chondrogenesis. Our data indicates that autophagy in ASC(EMS) would be crucial for the quality control mechanisms and maintenance of cellular homeostasis ASC(EMS) allowing them to be in “stemness” status. Hindawi Publishing Corporation 2016 2016-12-08 /pmc/articles/PMC5178365/ /pubmed/28053691 http://dx.doi.org/10.1155/2016/3718468 Text en Copyright © 2016 Krzysztof Marycz et al. https://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Marycz, Krzysztof
Kornicka, Katarzyna
Grzesiak, Jakub
Śmieszek, Agnieszka
Szłapka, Jolanta
Macroautophagy and Selective Mitophagy Ameliorate Chondrogenic Differentiation Potential in Adipose Stem Cells of Equine Metabolic Syndrome: New Findings in the Field of Progenitor Cells Differentiation
title Macroautophagy and Selective Mitophagy Ameliorate Chondrogenic Differentiation Potential in Adipose Stem Cells of Equine Metabolic Syndrome: New Findings in the Field of Progenitor Cells Differentiation
title_full Macroautophagy and Selective Mitophagy Ameliorate Chondrogenic Differentiation Potential in Adipose Stem Cells of Equine Metabolic Syndrome: New Findings in the Field of Progenitor Cells Differentiation
title_fullStr Macroautophagy and Selective Mitophagy Ameliorate Chondrogenic Differentiation Potential in Adipose Stem Cells of Equine Metabolic Syndrome: New Findings in the Field of Progenitor Cells Differentiation
title_full_unstemmed Macroautophagy and Selective Mitophagy Ameliorate Chondrogenic Differentiation Potential in Adipose Stem Cells of Equine Metabolic Syndrome: New Findings in the Field of Progenitor Cells Differentiation
title_short Macroautophagy and Selective Mitophagy Ameliorate Chondrogenic Differentiation Potential in Adipose Stem Cells of Equine Metabolic Syndrome: New Findings in the Field of Progenitor Cells Differentiation
title_sort macroautophagy and selective mitophagy ameliorate chondrogenic differentiation potential in adipose stem cells of equine metabolic syndrome: new findings in the field of progenitor cells differentiation
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5178365/
https://www.ncbi.nlm.nih.gov/pubmed/28053691
http://dx.doi.org/10.1155/2016/3718468
work_keys_str_mv AT maryczkrzysztof macroautophagyandselectivemitophagyamelioratechondrogenicdifferentiationpotentialinadiposestemcellsofequinemetabolicsyndromenewfindingsinthefieldofprogenitorcellsdifferentiation
AT kornickakatarzyna macroautophagyandselectivemitophagyamelioratechondrogenicdifferentiationpotentialinadiposestemcellsofequinemetabolicsyndromenewfindingsinthefieldofprogenitorcellsdifferentiation
AT grzesiakjakub macroautophagyandselectivemitophagyamelioratechondrogenicdifferentiationpotentialinadiposestemcellsofequinemetabolicsyndromenewfindingsinthefieldofprogenitorcellsdifferentiation
AT smieszekagnieszka macroautophagyandselectivemitophagyamelioratechondrogenicdifferentiationpotentialinadiposestemcellsofequinemetabolicsyndromenewfindingsinthefieldofprogenitorcellsdifferentiation
AT szłapkajolanta macroautophagyandselectivemitophagyamelioratechondrogenicdifferentiationpotentialinadiposestemcellsofequinemetabolicsyndromenewfindingsinthefieldofprogenitorcellsdifferentiation