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Fine-tuned repression of Drp1-driven mitochondrial fission primes a ‘stem/progenitor-like state’ to support neoplastic transformation

Gene knockout of the master regulator of mitochondrial fission, Drp1, prevents neoplastic transformation. Also, mitochondrial fission and its opposing process of mitochondrial fusion are emerging as crucial regulators of stemness. Intriguingly, stem/progenitor cells maintaining repressed mitochondri...

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Autores principales: Spurlock, Brian, Parker, Danitra, Basu, Malay Kumar, Hjelmeland, Anita, GC, Sajina, Liu, Shanrun, Siegal, Gene P, Gunter, Alan, Moran, Aida, Mitra, Kasturi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: eLife Sciences Publications, Ltd 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8497058/
https://www.ncbi.nlm.nih.gov/pubmed/34545812
http://dx.doi.org/10.7554/eLife.68394
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author Spurlock, Brian
Parker, Danitra
Basu, Malay Kumar
Hjelmeland, Anita
GC, Sajina
Liu, Shanrun
Siegal, Gene P
Gunter, Alan
Moran, Aida
Mitra, Kasturi
author_facet Spurlock, Brian
Parker, Danitra
Basu, Malay Kumar
Hjelmeland, Anita
GC, Sajina
Liu, Shanrun
Siegal, Gene P
Gunter, Alan
Moran, Aida
Mitra, Kasturi
author_sort Spurlock, Brian
collection PubMed
description Gene knockout of the master regulator of mitochondrial fission, Drp1, prevents neoplastic transformation. Also, mitochondrial fission and its opposing process of mitochondrial fusion are emerging as crucial regulators of stemness. Intriguingly, stem/progenitor cells maintaining repressed mitochondrial fission are primed for self-renewal and proliferation. Using our newly derived carcinogen transformed human cell model, we demonstrate that fine-tuned Drp1 repression primes a slow cycling ‘stem/progenitor-like state’, which is characterized by small networks of fused mitochondria and a gene-expression profile with elevated functional stem/progenitor markers (Krt15, Sox2 etc) and their regulators (Cyclin E). Fine tuning Drp1 protein by reducing its activating phosphorylation sustains the neoplastic stem/progenitor cell markers. Whereas, fine-tuned reduction of Drp1 protein maintains the characteristic mitochondrial shape and gene-expression of the primed ‘stem/progenitor-like state’ to accelerate neoplastic transformation, and more complete reduction of Drp1 protein prevents it. Therefore, our data highlights a ‘goldilocks’ level of Drp1 repression supporting stem/progenitor state dependent neoplastic transformation.
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spelling pubmed-84970582021-10-08 Fine-tuned repression of Drp1-driven mitochondrial fission primes a ‘stem/progenitor-like state’ to support neoplastic transformation Spurlock, Brian Parker, Danitra Basu, Malay Kumar Hjelmeland, Anita GC, Sajina Liu, Shanrun Siegal, Gene P Gunter, Alan Moran, Aida Mitra, Kasturi eLife Cancer Biology Gene knockout of the master regulator of mitochondrial fission, Drp1, prevents neoplastic transformation. Also, mitochondrial fission and its opposing process of mitochondrial fusion are emerging as crucial regulators of stemness. Intriguingly, stem/progenitor cells maintaining repressed mitochondrial fission are primed for self-renewal and proliferation. Using our newly derived carcinogen transformed human cell model, we demonstrate that fine-tuned Drp1 repression primes a slow cycling ‘stem/progenitor-like state’, which is characterized by small networks of fused mitochondria and a gene-expression profile with elevated functional stem/progenitor markers (Krt15, Sox2 etc) and their regulators (Cyclin E). Fine tuning Drp1 protein by reducing its activating phosphorylation sustains the neoplastic stem/progenitor cell markers. Whereas, fine-tuned reduction of Drp1 protein maintains the characteristic mitochondrial shape and gene-expression of the primed ‘stem/progenitor-like state’ to accelerate neoplastic transformation, and more complete reduction of Drp1 protein prevents it. Therefore, our data highlights a ‘goldilocks’ level of Drp1 repression supporting stem/progenitor state dependent neoplastic transformation. eLife Sciences Publications, Ltd 2021-09-21 /pmc/articles/PMC8497058/ /pubmed/34545812 http://dx.doi.org/10.7554/eLife.68394 Text en © 2021, Spurlock et al https://creativecommons.org/licenses/by/4.0/This article is distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use and redistribution provided that the original author and source are credited.
spellingShingle Cancer Biology
Spurlock, Brian
Parker, Danitra
Basu, Malay Kumar
Hjelmeland, Anita
GC, Sajina
Liu, Shanrun
Siegal, Gene P
Gunter, Alan
Moran, Aida
Mitra, Kasturi
Fine-tuned repression of Drp1-driven mitochondrial fission primes a ‘stem/progenitor-like state’ to support neoplastic transformation
title Fine-tuned repression of Drp1-driven mitochondrial fission primes a ‘stem/progenitor-like state’ to support neoplastic transformation
title_full Fine-tuned repression of Drp1-driven mitochondrial fission primes a ‘stem/progenitor-like state’ to support neoplastic transformation
title_fullStr Fine-tuned repression of Drp1-driven mitochondrial fission primes a ‘stem/progenitor-like state’ to support neoplastic transformation
title_full_unstemmed Fine-tuned repression of Drp1-driven mitochondrial fission primes a ‘stem/progenitor-like state’ to support neoplastic transformation
title_short Fine-tuned repression of Drp1-driven mitochondrial fission primes a ‘stem/progenitor-like state’ to support neoplastic transformation
title_sort fine-tuned repression of drp1-driven mitochondrial fission primes a ‘stem/progenitor-like state’ to support neoplastic transformation
topic Cancer Biology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8497058/
https://www.ncbi.nlm.nih.gov/pubmed/34545812
http://dx.doi.org/10.7554/eLife.68394
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