Cargando…

Targeted germ line disruptions reveal general and species-specific roles for paralog group 1 hox genes in zebrafish

BACKGROUND: The developing vertebrate hindbrain is transiently segmented into rhombomeres by a process requiring Hox activity. Hox genes control specification of rhombomere fates, as well as the stereotypic differentiation of rhombomere-specific neuronal populations. Accordingly, germ line disruptio...

Descripción completa

Detalles Bibliográficos
Autores principales: Weicksel, Steven E, Gupta, Ankit, Zannino, Denise A, Wolfe, Scot A, Sagerström, Charles G
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BioMed Central 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4061917/
https://www.ncbi.nlm.nih.gov/pubmed/24902847
http://dx.doi.org/10.1186/1471-213X-14-25
_version_ 1782321571411525632
author Weicksel, Steven E
Gupta, Ankit
Zannino, Denise A
Wolfe, Scot A
Sagerström, Charles G
author_facet Weicksel, Steven E
Gupta, Ankit
Zannino, Denise A
Wolfe, Scot A
Sagerström, Charles G
author_sort Weicksel, Steven E
collection PubMed
description BACKGROUND: The developing vertebrate hindbrain is transiently segmented into rhombomeres by a process requiring Hox activity. Hox genes control specification of rhombomere fates, as well as the stereotypic differentiation of rhombomere-specific neuronal populations. Accordingly, germ line disruption of the paralog group 1 (PG1) Hox genes Hoxa1 and Hoxb1 causes defects in hindbrain segmentation and neuron formation in mice. However, antisense-mediated interference with zebrafish hoxb1a and hoxb1b (analogous to murine Hoxb1 and Hoxa1, respectively) produces phenotypes that are qualitatively and quantitatively distinct from those observed in the mouse. This suggests that PG1 Hox genes may have species-specific functions, or that anti-sense mediated interference may not completely inactivate Hox function in zebrafish. RESULTS: Using zinc finger and TALEN technologies, we disrupted hoxb1a and hoxb1b in the zebrafish germ line to establish mutant lines for each gene. We find that zebrafish hoxb1a germ line mutants have a more severe phenotype than reported for Hoxb1a antisense treatment. This phenotype is similar to that observed in Hoxb1 knock out mice, suggesting that Hoxb1/hoxb1a have the same function in both species. Zebrafish hoxb1b germ line mutants also have a more severe phenotype than reported for hoxb1b antisense treatment (e.g. in the effect on Mauthner neuron differentiation), but this phenotype differs from that observed in Hoxa1 knock out mice (e.g. in the specification of rhombomere 5 (r5) and r6), suggesting that Hoxa1/hoxb1b have species-specific activities. We also demonstrate that Hoxb1b regulates nucleosome organization at the hoxb1a promoter and that retinoic acid acts independently of hoxb1b to activate hoxb1a expression. CONCLUSIONS: We generated several novel germ line mutants for zebrafish hoxb1a and hoxb1b. Our analyses indicate that Hoxb1 and hoxb1a have comparable functions in zebrafish and mouse, suggesting a conserved function for these genes. In contrast, while Hoxa1 and hoxb1b share functions in the formation of r3 and r4, they differ with regards to r5 and r6, where Hoxa1 appears to control formation of r5, but not r6, in the mouse, whereas hoxb1b regulates formation of r6, but not r5, in zebrafish. Lastly, our data reveal independent regulation of hoxb1a expression by retinoic acid and Hoxb1b in zebrafish.
format Online
Article
Text
id pubmed-4061917
institution National Center for Biotechnology Information
language English
publishDate 2014
publisher BioMed Central
record_format MEDLINE/PubMed
spelling pubmed-40619172014-06-19 Targeted germ line disruptions reveal general and species-specific roles for paralog group 1 hox genes in zebrafish Weicksel, Steven E Gupta, Ankit Zannino, Denise A Wolfe, Scot A Sagerström, Charles G BMC Dev Biol Research Article BACKGROUND: The developing vertebrate hindbrain is transiently segmented into rhombomeres by a process requiring Hox activity. Hox genes control specification of rhombomere fates, as well as the stereotypic differentiation of rhombomere-specific neuronal populations. Accordingly, germ line disruption of the paralog group 1 (PG1) Hox genes Hoxa1 and Hoxb1 causes defects in hindbrain segmentation and neuron formation in mice. However, antisense-mediated interference with zebrafish hoxb1a and hoxb1b (analogous to murine Hoxb1 and Hoxa1, respectively) produces phenotypes that are qualitatively and quantitatively distinct from those observed in the mouse. This suggests that PG1 Hox genes may have species-specific functions, or that anti-sense mediated interference may not completely inactivate Hox function in zebrafish. RESULTS: Using zinc finger and TALEN technologies, we disrupted hoxb1a and hoxb1b in the zebrafish germ line to establish mutant lines for each gene. We find that zebrafish hoxb1a germ line mutants have a more severe phenotype than reported for Hoxb1a antisense treatment. This phenotype is similar to that observed in Hoxb1 knock out mice, suggesting that Hoxb1/hoxb1a have the same function in both species. Zebrafish hoxb1b germ line mutants also have a more severe phenotype than reported for hoxb1b antisense treatment (e.g. in the effect on Mauthner neuron differentiation), but this phenotype differs from that observed in Hoxa1 knock out mice (e.g. in the specification of rhombomere 5 (r5) and r6), suggesting that Hoxa1/hoxb1b have species-specific activities. We also demonstrate that Hoxb1b regulates nucleosome organization at the hoxb1a promoter and that retinoic acid acts independently of hoxb1b to activate hoxb1a expression. CONCLUSIONS: We generated several novel germ line mutants for zebrafish hoxb1a and hoxb1b. Our analyses indicate that Hoxb1 and hoxb1a have comparable functions in zebrafish and mouse, suggesting a conserved function for these genes. In contrast, while Hoxa1 and hoxb1b share functions in the formation of r3 and r4, they differ with regards to r5 and r6, where Hoxa1 appears to control formation of r5, but not r6, in the mouse, whereas hoxb1b regulates formation of r6, but not r5, in zebrafish. Lastly, our data reveal independent regulation of hoxb1a expression by retinoic acid and Hoxb1b in zebrafish. BioMed Central 2014-06-05 /pmc/articles/PMC4061917/ /pubmed/24902847 http://dx.doi.org/10.1186/1471-213X-14-25 Text en Copyright © 2014 Weicksel et al.; licensee BioMed Central Ltd. http://creativecommons.org/licenses/by/4.0 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
Weicksel, Steven E
Gupta, Ankit
Zannino, Denise A
Wolfe, Scot A
Sagerström, Charles G
Targeted germ line disruptions reveal general and species-specific roles for paralog group 1 hox genes in zebrafish
title Targeted germ line disruptions reveal general and species-specific roles for paralog group 1 hox genes in zebrafish
title_full Targeted germ line disruptions reveal general and species-specific roles for paralog group 1 hox genes in zebrafish
title_fullStr Targeted germ line disruptions reveal general and species-specific roles for paralog group 1 hox genes in zebrafish
title_full_unstemmed Targeted germ line disruptions reveal general and species-specific roles for paralog group 1 hox genes in zebrafish
title_short Targeted germ line disruptions reveal general and species-specific roles for paralog group 1 hox genes in zebrafish
title_sort targeted germ line disruptions reveal general and species-specific roles for paralog group 1 hox genes in zebrafish
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4061917/
https://www.ncbi.nlm.nih.gov/pubmed/24902847
http://dx.doi.org/10.1186/1471-213X-14-25
work_keys_str_mv AT weickselstevene targetedgermlinedisruptionsrevealgeneralandspeciesspecificrolesforparaloggroup1hoxgenesinzebrafish
AT guptaankit targetedgermlinedisruptionsrevealgeneralandspeciesspecificrolesforparaloggroup1hoxgenesinzebrafish
AT zanninodenisea targetedgermlinedisruptionsrevealgeneralandspeciesspecificrolesforparaloggroup1hoxgenesinzebrafish
AT wolfescota targetedgermlinedisruptionsrevealgeneralandspeciesspecificrolesforparaloggroup1hoxgenesinzebrafish
AT sagerstromcharlesg targetedgermlinedisruptionsrevealgeneralandspeciesspecificrolesforparaloggroup1hoxgenesinzebrafish