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The Cancer Aneuploidy Paradox: In the Light of Evolution

Aneuploidy should compromise cellular proliferation but paradoxically favours tumour progression and poor prognosis. Here, we consider this paradox in terms of our most recent observations of chemo/radio-resistant cells undergoing reversible polyploidy. The latter perform the segregation of two pare...

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Autores principales: Salmina, Kristine, Huna, Anda, Kalejs, Martins, Pjanova, Dace, Scherthan, Harry, Cragg, Mark S., Erenpreisa, Jekaterina
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6409809/
https://www.ncbi.nlm.nih.gov/pubmed/30691027
http://dx.doi.org/10.3390/genes10020083
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author Salmina, Kristine
Huna, Anda
Kalejs, Martins
Pjanova, Dace
Scherthan, Harry
Cragg, Mark S.
Erenpreisa, Jekaterina
author_facet Salmina, Kristine
Huna, Anda
Kalejs, Martins
Pjanova, Dace
Scherthan, Harry
Cragg, Mark S.
Erenpreisa, Jekaterina
author_sort Salmina, Kristine
collection PubMed
description Aneuploidy should compromise cellular proliferation but paradoxically favours tumour progression and poor prognosis. Here, we consider this paradox in terms of our most recent observations of chemo/radio-resistant cells undergoing reversible polyploidy. The latter perform the segregation of two parental groups of end-to-end linked dyads by pseudo-mitosis creating tetraploid cells through a dysfunctional spindle. This is followed by autokaryogamy and a homologous pairing preceding a bi-looped endo-prophase. The associated RAD51 and DMC1/γ-H2AX double-strand break repair foci are tandemly situated on the AURKB/REC8/kinetochore doublets along replicated chromosome loops, indicative of recombination events. MOS-associated REC8-positive peri-nucleolar centromere cluster organises a monopolar spindle. The process is completed by reduction divisions (bi-polar or by radial cytotomy including pedogamic exchanges) and by the release of secondary cells and/or the formation of an embryoid. Together this process preserves genomic integrity and chromosome pairing, while tolerating aneuploidy by by-passing the mitotic spindle checkpoint. Concurrently, it reduces the chromosome number and facilitates recombination that decreases the mutation load of aneuploidy and lethality in the chemo-resistant tumour cells. This cancer life-cycle has parallels both within the cycling polyploidy of the asexual life cycles of ancient unicellular protists and cleavage embryos of early multicellulars, supporting the atavistic theory of cancer.
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spelling pubmed-64098092019-03-26 The Cancer Aneuploidy Paradox: In the Light of Evolution Salmina, Kristine Huna, Anda Kalejs, Martins Pjanova, Dace Scherthan, Harry Cragg, Mark S. Erenpreisa, Jekaterina Genes (Basel) Article Aneuploidy should compromise cellular proliferation but paradoxically favours tumour progression and poor prognosis. Here, we consider this paradox in terms of our most recent observations of chemo/radio-resistant cells undergoing reversible polyploidy. The latter perform the segregation of two parental groups of end-to-end linked dyads by pseudo-mitosis creating tetraploid cells through a dysfunctional spindle. This is followed by autokaryogamy and a homologous pairing preceding a bi-looped endo-prophase. The associated RAD51 and DMC1/γ-H2AX double-strand break repair foci are tandemly situated on the AURKB/REC8/kinetochore doublets along replicated chromosome loops, indicative of recombination events. MOS-associated REC8-positive peri-nucleolar centromere cluster organises a monopolar spindle. The process is completed by reduction divisions (bi-polar or by radial cytotomy including pedogamic exchanges) and by the release of secondary cells and/or the formation of an embryoid. Together this process preserves genomic integrity and chromosome pairing, while tolerating aneuploidy by by-passing the mitotic spindle checkpoint. Concurrently, it reduces the chromosome number and facilitates recombination that decreases the mutation load of aneuploidy and lethality in the chemo-resistant tumour cells. This cancer life-cycle has parallels both within the cycling polyploidy of the asexual life cycles of ancient unicellular protists and cleavage embryos of early multicellulars, supporting the atavistic theory of cancer. MDPI 2019-01-25 /pmc/articles/PMC6409809/ /pubmed/30691027 http://dx.doi.org/10.3390/genes10020083 Text en © 2019 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Salmina, Kristine
Huna, Anda
Kalejs, Martins
Pjanova, Dace
Scherthan, Harry
Cragg, Mark S.
Erenpreisa, Jekaterina
The Cancer Aneuploidy Paradox: In the Light of Evolution
title The Cancer Aneuploidy Paradox: In the Light of Evolution
title_full The Cancer Aneuploidy Paradox: In the Light of Evolution
title_fullStr The Cancer Aneuploidy Paradox: In the Light of Evolution
title_full_unstemmed The Cancer Aneuploidy Paradox: In the Light of Evolution
title_short The Cancer Aneuploidy Paradox: In the Light of Evolution
title_sort cancer aneuploidy paradox: in the light of evolution
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6409809/
https://www.ncbi.nlm.nih.gov/pubmed/30691027
http://dx.doi.org/10.3390/genes10020083
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