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Bacterial Symbiosis Maintenance in the Asexually Reproducing and Regenerating Flatworm Paracatenula galateia

Bacteriocytes set the stage for some of the most intimate interactions between animal and bacterial cells. In all bacteriocyte possessing systems studied so far, de novo formation of bacteriocytes occurs only once in the host development, at the time of symbiosis establishment. Here, we present the...

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Autores principales: Dirks, Ulrich, Gruber-Vodicka, Harald R., Leisch, Nikolaus, Bulgheresi, Silvia, Egger, Bernhard, Ladurner, Peter, Ott, Jörg A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3317999/
https://www.ncbi.nlm.nih.gov/pubmed/22509347
http://dx.doi.org/10.1371/journal.pone.0034709
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author Dirks, Ulrich
Gruber-Vodicka, Harald R.
Leisch, Nikolaus
Bulgheresi, Silvia
Egger, Bernhard
Ladurner, Peter
Ott, Jörg A.
author_facet Dirks, Ulrich
Gruber-Vodicka, Harald R.
Leisch, Nikolaus
Bulgheresi, Silvia
Egger, Bernhard
Ladurner, Peter
Ott, Jörg A.
author_sort Dirks, Ulrich
collection PubMed
description Bacteriocytes set the stage for some of the most intimate interactions between animal and bacterial cells. In all bacteriocyte possessing systems studied so far, de novo formation of bacteriocytes occurs only once in the host development, at the time of symbiosis establishment. Here, we present the free-living symbiotic flatworm Paracatenula galateia and its intracellular, sulfur-oxidizing bacteria as a system with previously undescribed strategies of bacteriocyte formation and bacterial symbiont transmission. Using thymidine analogue S-phase labeling and immunohistochemistry, we show that all somatic cells in adult worms – including bacteriocytes – originate exclusively from aposymbiotic stem cells (neoblasts). The continued bacteriocyte formation from aposymbiotic stem cells in adult animals represents a previously undescribed strategy of symbiosis maintenance and makes P. galateia a unique system to study bacteriocyte differentiation and development. We also provide morphological and immunohistochemical evidence that P. galateia reproduces by asexual fragmentation and regeneration (paratomy) and, thereby, vertically transmits numerous symbiont-containing bacteriocytes to its asexual progeny. Our data support the earlier reported hypothesis that the symbiont population is subjected to reduced bottleneck effects. This would justify both the codiversification between Paracatenula hosts and their Candidatus Riegeria symbionts, and the slow evolutionary rates observed for several symbiont genes.
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spelling pubmed-33179992012-04-16 Bacterial Symbiosis Maintenance in the Asexually Reproducing and Regenerating Flatworm Paracatenula galateia Dirks, Ulrich Gruber-Vodicka, Harald R. Leisch, Nikolaus Bulgheresi, Silvia Egger, Bernhard Ladurner, Peter Ott, Jörg A. PLoS One Research Article Bacteriocytes set the stage for some of the most intimate interactions between animal and bacterial cells. In all bacteriocyte possessing systems studied so far, de novo formation of bacteriocytes occurs only once in the host development, at the time of symbiosis establishment. Here, we present the free-living symbiotic flatworm Paracatenula galateia and its intracellular, sulfur-oxidizing bacteria as a system with previously undescribed strategies of bacteriocyte formation and bacterial symbiont transmission. Using thymidine analogue S-phase labeling and immunohistochemistry, we show that all somatic cells in adult worms – including bacteriocytes – originate exclusively from aposymbiotic stem cells (neoblasts). The continued bacteriocyte formation from aposymbiotic stem cells in adult animals represents a previously undescribed strategy of symbiosis maintenance and makes P. galateia a unique system to study bacteriocyte differentiation and development. We also provide morphological and immunohistochemical evidence that P. galateia reproduces by asexual fragmentation and regeneration (paratomy) and, thereby, vertically transmits numerous symbiont-containing bacteriocytes to its asexual progeny. Our data support the earlier reported hypothesis that the symbiont population is subjected to reduced bottleneck effects. This would justify both the codiversification between Paracatenula hosts and their Candidatus Riegeria symbionts, and the slow evolutionary rates observed for several symbiont genes. Public Library of Science 2012-04-03 /pmc/articles/PMC3317999/ /pubmed/22509347 http://dx.doi.org/10.1371/journal.pone.0034709 Text en Dirks et al. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Dirks, Ulrich
Gruber-Vodicka, Harald R.
Leisch, Nikolaus
Bulgheresi, Silvia
Egger, Bernhard
Ladurner, Peter
Ott, Jörg A.
Bacterial Symbiosis Maintenance in the Asexually Reproducing and Regenerating Flatworm Paracatenula galateia
title Bacterial Symbiosis Maintenance in the Asexually Reproducing and Regenerating Flatworm Paracatenula galateia
title_full Bacterial Symbiosis Maintenance in the Asexually Reproducing and Regenerating Flatworm Paracatenula galateia
title_fullStr Bacterial Symbiosis Maintenance in the Asexually Reproducing and Regenerating Flatworm Paracatenula galateia
title_full_unstemmed Bacterial Symbiosis Maintenance in the Asexually Reproducing and Regenerating Flatworm Paracatenula galateia
title_short Bacterial Symbiosis Maintenance in the Asexually Reproducing and Regenerating Flatworm Paracatenula galateia
title_sort bacterial symbiosis maintenance in the asexually reproducing and regenerating flatworm paracatenula galateia
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3317999/
https://www.ncbi.nlm.nih.gov/pubmed/22509347
http://dx.doi.org/10.1371/journal.pone.0034709
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