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Mouse fitness measures reveal incomplete functional redundancy of Hox paralogous group 1 proteins

Here we assess the fitness consequences of the replacement of the Hoxa1 coding region with its paralog Hoxb1 in mice (Mus musculus) residing in semi-natural enclosures. Previously, this Hoxa1(B1) swap was reported as resulting in no discernible embryonic or physiological phenotype (i.e., functionall...

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Autores principales: Ruff, James S., Saffarini, Raed B., Ramoz, Leda L., Morrison, Linda C., Baker, Shambralyn, Laverty, Sean M., Tvrdik, Petr, Capecchi, Mario R., Potts, Wayne K.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5381901/
https://www.ncbi.nlm.nih.gov/pubmed/28380068
http://dx.doi.org/10.1371/journal.pone.0174975
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author Ruff, James S.
Saffarini, Raed B.
Ramoz, Leda L.
Morrison, Linda C.
Baker, Shambralyn
Laverty, Sean M.
Tvrdik, Petr
Capecchi, Mario R.
Potts, Wayne K.
author_facet Ruff, James S.
Saffarini, Raed B.
Ramoz, Leda L.
Morrison, Linda C.
Baker, Shambralyn
Laverty, Sean M.
Tvrdik, Petr
Capecchi, Mario R.
Potts, Wayne K.
author_sort Ruff, James S.
collection PubMed
description Here we assess the fitness consequences of the replacement of the Hoxa1 coding region with its paralog Hoxb1 in mice (Mus musculus) residing in semi-natural enclosures. Previously, this Hoxa1(B1) swap was reported as resulting in no discernible embryonic or physiological phenotype (i.e., functionally redundant), despite the 51% amino acid sequence differences between these two Hox proteins. Within heterozygous breeding cages no differences in litter size nor deviations from Mendelian genotypic expectations were observed in the outbred progeny; however, within semi-natural population enclosures mice homozygous for the Hoxa1(B1) swap were out-reproduced by controls resulting in the mutant allele being only 87.5% as frequent as the control in offspring born within enclosures. Specifically, Hoxa1(B1) founders produced only 77.9% as many offspring relative to controls, as measured by homozygous pups, and a 22.1% deficiency of heterozygous offspring was also observed. These data suggest that Hoxa1 and Hoxb1 have diverged in function through either sub- or neo-functionalization and that the HoxA1 and HoxB1 proteins are not mutually interchangeable when expressed from the Hoxa1 locus. The fitness assays conducted under naturalistic conditions in this study have provided an ultimate-level assessment of the postulated equivalence of competing alleles. Characterization of these differences has provided greater understanding of the forces shaping the maintenance and diversifications of Hox genes as well as other paralogous genes. This fitness assay approach can be applied to any genetic manipulation and often provides the most sensitive way to detect functional differences.
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spelling pubmed-53819012017-04-19 Mouse fitness measures reveal incomplete functional redundancy of Hox paralogous group 1 proteins Ruff, James S. Saffarini, Raed B. Ramoz, Leda L. Morrison, Linda C. Baker, Shambralyn Laverty, Sean M. Tvrdik, Petr Capecchi, Mario R. Potts, Wayne K. PLoS One Research Article Here we assess the fitness consequences of the replacement of the Hoxa1 coding region with its paralog Hoxb1 in mice (Mus musculus) residing in semi-natural enclosures. Previously, this Hoxa1(B1) swap was reported as resulting in no discernible embryonic or physiological phenotype (i.e., functionally redundant), despite the 51% amino acid sequence differences between these two Hox proteins. Within heterozygous breeding cages no differences in litter size nor deviations from Mendelian genotypic expectations were observed in the outbred progeny; however, within semi-natural population enclosures mice homozygous for the Hoxa1(B1) swap were out-reproduced by controls resulting in the mutant allele being only 87.5% as frequent as the control in offspring born within enclosures. Specifically, Hoxa1(B1) founders produced only 77.9% as many offspring relative to controls, as measured by homozygous pups, and a 22.1% deficiency of heterozygous offspring was also observed. These data suggest that Hoxa1 and Hoxb1 have diverged in function through either sub- or neo-functionalization and that the HoxA1 and HoxB1 proteins are not mutually interchangeable when expressed from the Hoxa1 locus. The fitness assays conducted under naturalistic conditions in this study have provided an ultimate-level assessment of the postulated equivalence of competing alleles. Characterization of these differences has provided greater understanding of the forces shaping the maintenance and diversifications of Hox genes as well as other paralogous genes. This fitness assay approach can be applied to any genetic manipulation and often provides the most sensitive way to detect functional differences. Public Library of Science 2017-04-05 /pmc/articles/PMC5381901/ /pubmed/28380068 http://dx.doi.org/10.1371/journal.pone.0174975 Text en © 2017 Ruff 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 (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Ruff, James S.
Saffarini, Raed B.
Ramoz, Leda L.
Morrison, Linda C.
Baker, Shambralyn
Laverty, Sean M.
Tvrdik, Petr
Capecchi, Mario R.
Potts, Wayne K.
Mouse fitness measures reveal incomplete functional redundancy of Hox paralogous group 1 proteins
title Mouse fitness measures reveal incomplete functional redundancy of Hox paralogous group 1 proteins
title_full Mouse fitness measures reveal incomplete functional redundancy of Hox paralogous group 1 proteins
title_fullStr Mouse fitness measures reveal incomplete functional redundancy of Hox paralogous group 1 proteins
title_full_unstemmed Mouse fitness measures reveal incomplete functional redundancy of Hox paralogous group 1 proteins
title_short Mouse fitness measures reveal incomplete functional redundancy of Hox paralogous group 1 proteins
title_sort mouse fitness measures reveal incomplete functional redundancy of hox paralogous group 1 proteins
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5381901/
https://www.ncbi.nlm.nih.gov/pubmed/28380068
http://dx.doi.org/10.1371/journal.pone.0174975
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