Cargando…

Gene expression profiles in Rana pirica tadpoles following exposure to a predation threat

BACKGROUND: Rana pirica tadpoles show morphological changes in response to a predation threat: larvae of the dragonfly Aeshna nigroflava induce heightened tail depth, whereas larval salamander Hynobius retardatus induce a bulgy morphology with heightened tail depth. Although both predators induce si...

Descripción completa

Detalles Bibliográficos
Autores principales: Mori, Tsukasa, Yanagisawa, Yukio, Kitani, Yoichiro, Sugiyama, Manabu, Kishida, Osamu, Nishimura, Kinya
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BioMed Central 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4403775/
https://www.ncbi.nlm.nih.gov/pubmed/25886855
http://dx.doi.org/10.1186/s12864-015-1389-4
_version_ 1782367380039532544
author Mori, Tsukasa
Yanagisawa, Yukio
Kitani, Yoichiro
Sugiyama, Manabu
Kishida, Osamu
Nishimura, Kinya
author_facet Mori, Tsukasa
Yanagisawa, Yukio
Kitani, Yoichiro
Sugiyama, Manabu
Kishida, Osamu
Nishimura, Kinya
author_sort Mori, Tsukasa
collection PubMed
description BACKGROUND: Rana pirica tadpoles show morphological changes in response to a predation threat: larvae of the dragonfly Aeshna nigroflava induce heightened tail depth, whereas larval salamander Hynobius retardatus induce a bulgy morphology with heightened tail depth. Although both predators induce similar tail morphologies, it is possible that there are functional differences between these tail morphs. RESULTS: Here, we performed a discriminant microarray analysis using Xenopus laevis genome arrays to compare tail tissues of control and predator-exposed tadpoles. We identified 9 genes showing large-scale changes in their expression profile: ELAV-like1, methyltransferase like 7A, dolichyl-phosphate mannosyltransferase, laminin subunit beta-1, gremlin 1, BCL6 corepressor-like 1, and three genes of unknown identity. A further 80 genes showed greater than 5 fold differences in expression after exposure to dragonfly larvae and 81 genes showed altered expression after exposure to larval salamanders. Predation-threat responsive genes were identified by selecting genes that reverted to control levels of expression following removal of the predator. Thirteen genes were induced specifically by dragonfly larvae, nine others were salamander-specific, and sixteen were induced by both. Functional analyses indicated that some of the genes induced by dragonfly larvae caused an increase in laminins necessary for cell adhesion in the extracellular matrix. The higher expression of gremlin 1 and HIF1a genes after exposure to dragonfly larvae indicated an in vivo hypoxic reaction, while down-regulation of syndecan-2 may indicate impairment of angiogenesis. Exposure to larval salamanders caused down-regulation of XCIRP-1, which is known to inhibit expression of adhesion molecules; the tadpoles showed reduced expression of cα(E)-catenin, small muscle protein, dystrophin, and myosin light chain genes. CONCLUSION: The connective tissue of tadpoles exposed to larval salamanders may be looser. The differences in gene expression profiles induced by the two predators suggest that there are functional differences between the altered tail tissues of the two groups of tadpoles. ELECTRONIC SUPPLEMENTARY MATERIAL: The online version of this article (doi:10.1186/s12864-015-1389-4) contains supplementary material, which is available to authorized users.
format Online
Article
Text
id pubmed-4403775
institution National Center for Biotechnology Information
language English
publishDate 2015
publisher BioMed Central
record_format MEDLINE/PubMed
spelling pubmed-44037752015-04-21 Gene expression profiles in Rana pirica tadpoles following exposure to a predation threat Mori, Tsukasa Yanagisawa, Yukio Kitani, Yoichiro Sugiyama, Manabu Kishida, Osamu Nishimura, Kinya BMC Genomics Research Article BACKGROUND: Rana pirica tadpoles show morphological changes in response to a predation threat: larvae of the dragonfly Aeshna nigroflava induce heightened tail depth, whereas larval salamander Hynobius retardatus induce a bulgy morphology with heightened tail depth. Although both predators induce similar tail morphologies, it is possible that there are functional differences between these tail morphs. RESULTS: Here, we performed a discriminant microarray analysis using Xenopus laevis genome arrays to compare tail tissues of control and predator-exposed tadpoles. We identified 9 genes showing large-scale changes in their expression profile: ELAV-like1, methyltransferase like 7A, dolichyl-phosphate mannosyltransferase, laminin subunit beta-1, gremlin 1, BCL6 corepressor-like 1, and three genes of unknown identity. A further 80 genes showed greater than 5 fold differences in expression after exposure to dragonfly larvae and 81 genes showed altered expression after exposure to larval salamanders. Predation-threat responsive genes were identified by selecting genes that reverted to control levels of expression following removal of the predator. Thirteen genes were induced specifically by dragonfly larvae, nine others were salamander-specific, and sixteen were induced by both. Functional analyses indicated that some of the genes induced by dragonfly larvae caused an increase in laminins necessary for cell adhesion in the extracellular matrix. The higher expression of gremlin 1 and HIF1a genes after exposure to dragonfly larvae indicated an in vivo hypoxic reaction, while down-regulation of syndecan-2 may indicate impairment of angiogenesis. Exposure to larval salamanders caused down-regulation of XCIRP-1, which is known to inhibit expression of adhesion molecules; the tadpoles showed reduced expression of cα(E)-catenin, small muscle protein, dystrophin, and myosin light chain genes. CONCLUSION: The connective tissue of tadpoles exposed to larval salamanders may be looser. The differences in gene expression profiles induced by the two predators suggest that there are functional differences between the altered tail tissues of the two groups of tadpoles. ELECTRONIC SUPPLEMENTARY MATERIAL: The online version of this article (doi:10.1186/s12864-015-1389-4) contains supplementary material, which is available to authorized users. BioMed Central 2015-04-02 /pmc/articles/PMC4403775/ /pubmed/25886855 http://dx.doi.org/10.1186/s12864-015-1389-4 Text en © Mori et al.; licensee BioMed Central. 2015 This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly credited. The Creative Commons Public Domain Dedication waiver (http://creativecommons.org/publicdomain/zero/1.0/) applies to the data made available in this article, unless otherwise stated.
spellingShingle Research Article
Mori, Tsukasa
Yanagisawa, Yukio
Kitani, Yoichiro
Sugiyama, Manabu
Kishida, Osamu
Nishimura, Kinya
Gene expression profiles in Rana pirica tadpoles following exposure to a predation threat
title Gene expression profiles in Rana pirica tadpoles following exposure to a predation threat
title_full Gene expression profiles in Rana pirica tadpoles following exposure to a predation threat
title_fullStr Gene expression profiles in Rana pirica tadpoles following exposure to a predation threat
title_full_unstemmed Gene expression profiles in Rana pirica tadpoles following exposure to a predation threat
title_short Gene expression profiles in Rana pirica tadpoles following exposure to a predation threat
title_sort gene expression profiles in rana pirica tadpoles following exposure to a predation threat
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4403775/
https://www.ncbi.nlm.nih.gov/pubmed/25886855
http://dx.doi.org/10.1186/s12864-015-1389-4
work_keys_str_mv AT moritsukasa geneexpressionprofilesinranapiricatadpolesfollowingexposuretoapredationthreat
AT yanagisawayukio geneexpressionprofilesinranapiricatadpolesfollowingexposuretoapredationthreat
AT kitaniyoichiro geneexpressionprofilesinranapiricatadpolesfollowingexposuretoapredationthreat
AT sugiyamamanabu geneexpressionprofilesinranapiricatadpolesfollowingexposuretoapredationthreat
AT kishidaosamu geneexpressionprofilesinranapiricatadpolesfollowingexposuretoapredationthreat
AT nishimurakinya geneexpressionprofilesinranapiricatadpolesfollowingexposuretoapredationthreat