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Altered Mitochondrial Function and Accelerated Aging Phenotype in Neural Stem Cells Derived from Dnm1l Knockout Embryonic Stem Cells

Mitochondria are crucial for cellular energy metabolism and are involved in signaling, aging, and cell death. They undergo dynamic changes through fusion and fission to adapt to different cellular states. In this study, we investigated the effect of knocking out the dynamin 1-like protein (Dnm1l) ge...

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Autores principales: Na, Seung-Bin, Seo, Bong-Jong, Hong, Tae-Kyung, Oh, Seung-Yeon, Hong, Yean-Ju, Song, Jae-Hoon, Uhm, Sang-Jun, Hong, Kwonho, Do, Jeong-Tae
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10532274/
https://www.ncbi.nlm.nih.gov/pubmed/37762596
http://dx.doi.org/10.3390/ijms241814291
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author Na, Seung-Bin
Seo, Bong-Jong
Hong, Tae-Kyung
Oh, Seung-Yeon
Hong, Yean-Ju
Song, Jae-Hoon
Uhm, Sang-Jun
Hong, Kwonho
Do, Jeong-Tae
author_facet Na, Seung-Bin
Seo, Bong-Jong
Hong, Tae-Kyung
Oh, Seung-Yeon
Hong, Yean-Ju
Song, Jae-Hoon
Uhm, Sang-Jun
Hong, Kwonho
Do, Jeong-Tae
author_sort Na, Seung-Bin
collection PubMed
description Mitochondria are crucial for cellular energy metabolism and are involved in signaling, aging, and cell death. They undergo dynamic changes through fusion and fission to adapt to different cellular states. In this study, we investigated the effect of knocking out the dynamin 1-like protein (Dnm1l) gene, a key regulator of mitochondrial fission, in neural stem cells (NSCs) differentiated from Dnm1l knockout embryonic stem cells (Dnm1l(−/−) ESCs). Dnm1l(−/−) ESC-derived NSCs (Dnm1l(−/−) NSCs) exhibited similar morphology and NSC marker expression (Sox2, Nestin, and Pax6) to brain-derived NSCs, but lower Nestin and Pax6 expression than both wild-type ESC-derived NSCs (WT-NSCs) and brain-derived NSCs. In addition, compared with WT-NSCs, Dnm1l(−/−) NSCs exhibited distinct mitochondrial morphology and function, contained more elongated mitochondria, showed reduced mitochondrial respiratory capacity, and showed a metabolic shift toward glycolysis for ATP production. Notably, Dnm1l(−/−) NSCs exhibited impaired self-renewal ability and accelerated cellular aging during prolonged culture, resulting in decreased proliferation and cell death. Furthermore, Dnm1l(−/−) NSCs showed elevated levels of inflammation and cell stress markers, suggesting a connection between Dnm1l deficiency and premature aging in NSCs. Therefore, the compromised self-renewal ability and accelerated cellular aging of Dnm1l(−/−) NSCs may be attributed to mitochondrial fission defects.
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spelling pubmed-105322742023-09-28 Altered Mitochondrial Function and Accelerated Aging Phenotype in Neural Stem Cells Derived from Dnm1l Knockout Embryonic Stem Cells Na, Seung-Bin Seo, Bong-Jong Hong, Tae-Kyung Oh, Seung-Yeon Hong, Yean-Ju Song, Jae-Hoon Uhm, Sang-Jun Hong, Kwonho Do, Jeong-Tae Int J Mol Sci Article Mitochondria are crucial for cellular energy metabolism and are involved in signaling, aging, and cell death. They undergo dynamic changes through fusion and fission to adapt to different cellular states. In this study, we investigated the effect of knocking out the dynamin 1-like protein (Dnm1l) gene, a key regulator of mitochondrial fission, in neural stem cells (NSCs) differentiated from Dnm1l knockout embryonic stem cells (Dnm1l(−/−) ESCs). Dnm1l(−/−) ESC-derived NSCs (Dnm1l(−/−) NSCs) exhibited similar morphology and NSC marker expression (Sox2, Nestin, and Pax6) to brain-derived NSCs, but lower Nestin and Pax6 expression than both wild-type ESC-derived NSCs (WT-NSCs) and brain-derived NSCs. In addition, compared with WT-NSCs, Dnm1l(−/−) NSCs exhibited distinct mitochondrial morphology and function, contained more elongated mitochondria, showed reduced mitochondrial respiratory capacity, and showed a metabolic shift toward glycolysis for ATP production. Notably, Dnm1l(−/−) NSCs exhibited impaired self-renewal ability and accelerated cellular aging during prolonged culture, resulting in decreased proliferation and cell death. Furthermore, Dnm1l(−/−) NSCs showed elevated levels of inflammation and cell stress markers, suggesting a connection between Dnm1l deficiency and premature aging in NSCs. Therefore, the compromised self-renewal ability and accelerated cellular aging of Dnm1l(−/−) NSCs may be attributed to mitochondrial fission defects. MDPI 2023-09-19 /pmc/articles/PMC10532274/ /pubmed/37762596 http://dx.doi.org/10.3390/ijms241814291 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
Na, Seung-Bin
Seo, Bong-Jong
Hong, Tae-Kyung
Oh, Seung-Yeon
Hong, Yean-Ju
Song, Jae-Hoon
Uhm, Sang-Jun
Hong, Kwonho
Do, Jeong-Tae
Altered Mitochondrial Function and Accelerated Aging Phenotype in Neural Stem Cells Derived from Dnm1l Knockout Embryonic Stem Cells
title Altered Mitochondrial Function and Accelerated Aging Phenotype in Neural Stem Cells Derived from Dnm1l Knockout Embryonic Stem Cells
title_full Altered Mitochondrial Function and Accelerated Aging Phenotype in Neural Stem Cells Derived from Dnm1l Knockout Embryonic Stem Cells
title_fullStr Altered Mitochondrial Function and Accelerated Aging Phenotype in Neural Stem Cells Derived from Dnm1l Knockout Embryonic Stem Cells
title_full_unstemmed Altered Mitochondrial Function and Accelerated Aging Phenotype in Neural Stem Cells Derived from Dnm1l Knockout Embryonic Stem Cells
title_short Altered Mitochondrial Function and Accelerated Aging Phenotype in Neural Stem Cells Derived from Dnm1l Knockout Embryonic Stem Cells
title_sort altered mitochondrial function and accelerated aging phenotype in neural stem cells derived from dnm1l knockout embryonic stem cells
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10532274/
https://www.ncbi.nlm.nih.gov/pubmed/37762596
http://dx.doi.org/10.3390/ijms241814291
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