Recent genome duplications facilitate the phenotypic diversity of Hb repertoire in the Cyprinidae.


Journal

Science China. Life sciences
ISSN: 1869-1889
Titre abrégé: Sci China Life Sci
Pays: China
ID NLM: 101529880

Informations de publication

Date de publication:
Jul 2021
Historique:
received: 29 05 2020
accepted: 28 08 2020
pubmed: 15 10 2020
medline: 6 1 2022
entrez: 14 10 2020
Statut: ppublish

Résumé

Whole-genome duplications (WGDs) are an important contributor to phenotypic innovations in evolutionary history. The diversity of blood oxygen transport traits is the perfect reflection of physiological versatility for evolutionary success among vertebrates. In this study, the evolutionary changes of hemoglobin (Hb) repertoire driven by the recent genome duplications were detected in representative Cyprinidae fish, including eight diploid and four tetraploid species. Comparative genomic analysis revealed a substantial variation in both membership composition and intragenomic organization of Hb genes in these species. Phylogenetic reconstruction analyses were conducted to characterize the evolutionary history of these genes. Data were integrated with the expression profiles of the genes during ontogeny. Our results indicated that genome duplications facilitated the phenotypic diversity of the Hb gene family; each was associated with species-specific changes in gene content via gene loss and fusion after genome duplications. This led to repeated evolutionary transitions in the ontogenic regulation of Hb gene expression. Our results revealed that genome duplications helped to generate phenotypic changes in Cyprinidae Hb systems.

Identifiants

pubmed: 33051703
doi: 10.1007/s11427-020-1809-0
pii: 10.1007/s11427-020-1809-0
doi:

Substances chimiques

Hemoglobins 0

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

1149-1164

Références

Abi-Rached, L., Gilles, A., Shiina, T., Pontarotti, P., and Inoko, H. (2002). Evidence of en bloc duplication in vertebrate genomes. Nat Genet 31, 100–105.
pubmed: 11967531
Altschul, S.F., Gish, W., Miller, W., Myers, E.W., and Lipman, D.J. (1990). Basic local alignment search tool. J Mol Biol 215, 403–410.
pubmed: 2231712
Arnegard, M.E., Zwickl, D.J., Lu, Y., and Zakon, H.H. (2010). Old gene duplication facilitates origin and diversification of an innovative communication system—twice. Proc Natl Acad Sci USA 107, 22172–22177.
pubmed: 21127261 pmcid: 3009798
Baalsrud, H.T., Voje, K.L., Tørresen, O.K., Solbakken, M.H., Matschiner, M., Malmstrøm, M., Hanel, R., Salzburger, W., Jakobsen, K.S., and Jentoft, S. (2017). Evolution of hemoglobin genes in codfishes influenced by ocean depth. Sci Rep 7, 1.
Berenbrink, M. (2007). Historical reconstructions ofevolving physiological complexity: O
pubmed: 17449830
Berenbrink, M., Koldkjaer, P., Kepp, O., and Cossins, A.R. (2005). Evolution of oxygen secretion in fishes and the emergence ofa complex physiological system. Science 307, 1752–1757.
pubmed: 15774753
Berthelot, C., Brunet, F., Chalopin, D., Juanchich, A., Bernard, M., Noël, B., Bento, P., Da Silva, C., Labadie, K., Alberti, A., et al. (2014). The rainbow trout genome provides novel insights into evolution after whole-genome duplication in vertebrates. Nat Commun 5, 1.
Birney, E., Clamp, M., and Durbin, R. (2004). GeneWise and genomewise. Genome Res 14, 988–995.
pubmed: 15123596 pmcid: 479130
Blanc, G., and Wolfe, K.H. (2004). Functional divergence of duplicated genes formed by polyploidy during Arabidopsis evolution. Plant Cell 16, 1679–1691.
pubmed: 15208398 pmcid: 514153
Borza, T., Stone, C., Gamperl, A.K., and Bowman, S. (2009). Atlantic cod (Gadus morhua) hemoglobin genes: multiplicity and polymorphism. BMC Genet 10, 51.
pubmed: 19728884 pmcid: 2757024
Braasch, I., Salzburger, W., and Meyer, A. (2006). Asymmetric evolution in two fish-specifically duplicated receptor tyrosine kinase paralogons involved in teleost coloration. Mol Biol Evol 23, 1192–1202.
pubmed: 16547150
Braasch, I., Schartl, M., and Volff, J.N. (2007). Evolution of pigment synthesis pathways by gene and genome duplication in fish. BMC Evol Biol 7, 74.
pubmed: 17498288 pmcid: 1890551
Braasch, I., Brunet, F., Volff, J.N., and Schartl, M. (2009a). Pigmentation pathway evolution after whole-genome duplication in fish. Genome Biol Evol 1, 479–493.
pubmed: 20333216 pmcid: 2839281
Braasch, I., Volff, J.N., and Schartl, M. (2009b). The endothelin system: evolution of vertebrate-specific ligand-receptor interactions by three rounds of genome duplication. Mol Biol Evol 26, 783–799.
pubmed: 19174480
Brunet, F.G., Volff, J.N., and Schartl, M. (2016). Whole genome duplications shaped the receptor tyrosine kinase repertoire of jawed vertebrates. Genome Biol Evol 8, 1600–1613.
pubmed: 27260203 pmcid: 4898815
Cadiz, L., Desmarais, E., Servili, A., Quazuguel, P., Madec, L., Huelvan, C., Andersen, O., Zambonino-Infante, J., and Mazurais, D. (2017). Genomic organization and spatio-temporal expression of the hemoglobin genes in European sea bass (Dicentrarchus labrax). Mar Biol 164, 95.
Chen, S., Zhou, Y., Chen, Y., and Gu, J. (2018). fastp: an ultra-fast all-in-one FASTQ preprocessor. Bioinformatics 34, i884–i890.
pubmed: 30423086 pmcid: 30423086
Chen, Z., Omori, Y., Koren, S., Shirokiya, T., Kuroda, T., Miyamoto, A., Wada, H., Fujiyama, A., Toyoda, A., Zhang, S., et al. (2019). De novo assembly of the goldfish (Carassius auratus) genome and the evolution of genes after whole-genome duplication. Sci Adv 5, eaav0547.
pubmed: 31249862 pmcid: 6594761
Comai, L. (2005). The advantages and disadvantages of being polyploid. Nat Rev Genet 6, 836–846.
pubmed: 16304599
Crooks, G.E., Hon, G., Chandonia, J.M., and Brenner, S.E. (2004). WebLogo: a sequence logo generator. Genome Res 14, 1188–1190.
pubmed: 419797 pmcid: 419797
Czelusniak, J., Goodman, M., Hewett-Emmett, D., Weiss, M.L., Venta, P.J., and Tashian, R.E. (1982). Phylogenetic origins and adaptive evolution of avian and mammalian haemoglobin genes. Nature 298, 297–300.
pubmed: 6178039
Damsgaard, C., Storz, J.F., Hoffmann, F.G., and Fago, A. (2013). Hemoglobin isoform differentiation and allosteric regulation of oxygen binding in the turtle, Trachemys scripta. Am J Physiol Regul Integr Comp Physiol 305, R961–R967.
pubmed: 23986362 pmcid: 3798770
David, L., Blum, S., Feldman, M.W., Lavi, U., and Hillel, J. (2003). Recent duplication of the common carp (Cyprinus carpio L.) genome as revealed by analyses of microsatellite loci. Mol Biol Evol 20, 1425–1434.
pubmed: 12832638
Dehal, P.S., and Boore, J.L. (2005). Two rounds of whole genome duplication in the ancestral vertebrate. PLoS Biol 3.
Douard, V., Brunet, F., Boussau, B., Ahrens-Fath, I., Vlaeminck-Guillem, V., Haendler, B., Laudet, V., and Guiguen, Y. (2008). The fate of the duplicated androgen receptor in fishes: a late neofunctionalization event? BMC Evol Biol 8, 336.
pubmed: 19094205 pmcid: 2637867
Fago, A., Forest, E., and Weber, R.E. (2001). Hemoglobin and subunit multiplicity in the rainbow trout (Oncorhynchus mykiss) hemoglobin system. Fish Physiol Biochem 24, 335–342.
Feng, J., Liu, S., Wang, X., Wang, R., Zhang, J., Jiang, Y., Li, C., Kaltenboeck, L., Li, J., and Liu, Z. (2014). Channel catfish hemoglobin genes: identification, phylogenetic and syntenic analysis, and specific induction in response to heat stress. Comp Biochem Physiol Part D Genomics Proteomics 9, 11–22.
pubmed: 24334243
Flajnik, M.F., and Kasahara, M. (2010). Origin and evolution of the adaptive immune system: genetic events and selective pressures. Nat Rev Genet 11, 47–59.
pubmed: 19997068
Giles, M.A., and Vanstone, W.E. (1976). Ontogenetic variation in the multiple hemoglobins of coho salmon (Oncorhynchus kisutch) and effect of environmental factors on their expression. J Fish Res Bd Can 33, 1144–1149.
Giordano, D., Russo, R., Coppola, D., di Prisco, G., and Verde, C. (2010). Molecular adaptations in haemoglobins of notothenioid fishes. J Fish Biol 76, 301–318.
pubmed: 20738709
Glasauer, S.M.K., and Neuhauss, S.C.F. (2014). Whole-genome duplication in teleost fishes and its evolutionary consequences. Mol Genet Genomics 289, 1045–1060.
pubmed: 25092473
Goodman, M., Czelusniak, J., Koop, B.F., Tagle, D.A., and Slightom, J.L. (1987). Globins: a case study in molecular phylogeny. Cold Spring Harbor Symp Quant Biol 52, 875–890.
pubmed: 3454296
Goodman, M., Moore, G.W., and Matsuda, G. (1975). Darwinian evolution in the genealogy of haemoglobin. Nature 253, 603–608.
pubmed: 1089897
Gribaldo, S., Casane, D., Lopez, P., and Philippe, H. (2003). Functional divergence prediction from evolutionary analysis: a case study of vertebrate hemoglobin. Mol Biol Evol 20, 1754–1759.
pubmed: 12832652
Grispo, M.T., Natarajan, C., Projecto-Garcia, J., Moriyama, H., Weber, R. E., and Storz, J.F. (2012). Gene duplication and the evolution of hemoglobin isoform differentiation in birds. J Biol Chem 287, 37647–37658.
pubmed: 22962007 pmcid: 3488042
Gu, X., Wang, Y., and Gu, J. (2002). Age distribution of human gene families shows significant roles of both large- and small-scale duplications in vertebrate evolution. Nat Genet 31, 205–209.
pubmed: 12032571
Hardison, R.C. (2001). Organisation, evolution and regulation of the globin genes. In: Steinberg, M.H., Forget, B.G., Higgs, D.R., and Nagel, R.L., eds. Disorders of Hemoglobin: Genetics, Pathophysiology, and Clinical Management. Cambridge: Cambridge University Press. 95–115.
Hardison, R.C. (2012). Evolution ofhemoglobin and its genes. Cold Spring Harbor Perspect Med 2, a011627.
Henkel, C.V., Burgerhout, E., De Wijze, D.L., Dirks, R.P., Minegishi, Y., Jansen, H.J., Spaink, H.P., Dufour, S., Weltzien, F., Tsukamoto, K., etal. (2012). Primitive duplicate hox clusters in the European Eel’s genome. PLoS One 7, 32231.
Hirano, M., Das, S., Guo, P., and Cooper, M.D., (2011). The evolution of adaptive immunity in vertebrates. Adv Immunal 109, 125–157.
Hoffmann, F.G., Opazo, J.C., and Storz, J.F. (2012). Whole-genome duplications spurred the functional diversification of the globin gene superfamily in vertebrates. Mol Biol Evol 29, 303–312.
Hoffmann, F.G., and Storz, J.F. (2007). The α
pubmed: 17586601
Hoffmann, F.G., Storz, J.F., Gorr, T.A., and Opazo, J.C. (2010). Lineage-specific patterns of functional diversification in thea- and β-globin gene families of tetrapod vertebrates. Mol Biol Evol 27, 1126–1138.
pubmed: 20047955 pmcid: 2877528
Hoffmann, F.G., Vandewege, M.W., Storz, J.F., and Opazo, J.C. (2018). Gene turnover and diversification of the α- and β-globin gene families in sauropsid vertebrates. Genome Biol Evol 10, 344–358.
pubmed: 29340581 pmcid: 5786229
Holland, P.W., Garcia-Fernàndez, J., Williams, N.A., and Sidow, A. (1994). Gene duplications and the origins of vertebrate development. Development 1994, 125–133.
Huminiecki, L., and Conant, G.C. (2012). Polyploidy and the evolution of complex traits. Int J Evol Biol 2012, 1–12.
Hurley, I.A., Mueller, R.L., Dunn, K.A., Schmidt, E.J., Friedman, M., Ho, R.K., Prince, V.E., Yang, Z., Thomas, M.G., and Coates, M.I. (2007). A new time-scale for ray-finned fish evolution. Proc R Soc B 274, 489–498.
pubmed: 17476768
Iuchi, I., Suzuki, R., and Yamagami, K. (1975). Ontogenetic expression of larval and adult hemoglobin phenotypes in the intergeneric salmonid hybrids. J Exp Zool 192, 57–64.
pubmed: 1127409
Jaillon, O., Aury, J.M., Brunet, F., Petit, J.L., Stange-Thomann, N., Mauceli, E., Bouneau, L., Fischer, C., Ozouf-Costaz, C., Bernot, A., et al. (2004). Genome duplication in the teleost fish Tetraodon nigroviridis reveals the early vertebrate proto-karyotype. Nature 431, 946–957.
pubmed: 15496914
Katoh, K., and Standley, D.M. (2013). MAFFT multiple sequence alignment software version 7: improvements in performance and usability. Mol Biol Evol 30, 772–780.
pubmed: 3603318 pmcid: 3603318
Kim, D., Langmead, B., and Salzberg, S.L. (2015). HISAT: a fast spliced aligner with low memory requirements. Nat Methods 12, 357–360.
pubmed: 25751142 pmcid: 25751142
Lanfear, R., Frandsen, P.B., Wright, A.M., Senfeld, T., and Calcott, B. (2017). PartitionFinder 2: new methods for selecting partitioned models of evolution for molecular and morphological phylogenetic analyses. Mol Biol Evol 34, 772–773.
pubmed: 28013191
Lanfranchi, G., Pallavicini, A., Laveder, P., and Valle, G. (1994). Ancestral hemoglobin switching in lampreys. Dev Biol 164, 402–408.
pubmed: 8045343
Lassmann, T., and Sonnhammer, E.L. (2005). Automatic assessment of alignment quality. Nucleic Acids Res 33, 7120–7128.
pubmed: 16361270 pmcid: 1316116
Li, H., Handsaker, B., Wysoker, A., Fennell, T., Ruan, J., Homer, N., Marth, G., Abecasis, G., and Durbin, R. (2009). The sequence alignment/map format and SAMtools. Bioinformatics 25, 2078–2079.
pubmed: 2723002 pmcid: 2723002
Lien, S., Koop, B.F., Sandve, S.R., Miller, J.R., Kent, M.P., Nome, T., Hvidsten, T.R., Leong, J.S., Minkley, D.R., Zimin, A., et al. (2016). The Atlantic salmon genome provides insights into rediploidization. Nature 533, 200–205.
pubmed: 27088604 pmcid: 8127823
Liu, H.P., Xiao, S.J., Wu, N., Wang, D., Liu, Y.C., Zhou, C.W., Liu, Q.Y., Yang, R.B., Jiang, W.K., Liang, Q.Q., et al. (2019). The sequence and de novo assembly of Oxygymnocypris stewartii genome. Sci Data 6, 190009.
pubmed: 30720802 pmcid: 6362891
Macqueen, D.J., and Johnston, I.A. (2014). Awell-constrained estimate for the timing of the salmonid whole genome duplication reveals major decoupling from species diversification. Proc R Soc B 281, 20132881.
pubmed: 24452024 pmcid: 3906940
Makova, K.D., and Li, W.H. (2003). Divergence in the spatial pattern of gene expression between human duplicate genes. Genome Res 13, 1638–1645.
pubmed: 12840042 pmcid: 403737
Marlétaz, F., Firbas, P.N., Maeso, I., Tena, J.J., Bogdanovic, O., Perry, M., Wyatt, C.D.R., de la Calle-Mustienes, E., Bertrand, S., Burguera, D., et al. (2018). Amphioxus functional genomics and the origins ofvertebrate gene regulation. Nature 564, 64–70.
pubmed: 30464347 pmcid: 6292497
Meyer, A., and Van de Peer, Y. (2005). From 2R to 3R: evidence for a fish-specific genome duplication (FSGD). Bioessays 27, 937–945.
pubmed: 16108068
Nakamura, Y., Yasuike, M., Mekuchi, M., Iwasaki, Y., Ojima, N., Fujiwara, A., Chow, S., and Saitoh, K. (2017). Rhodopsin gene copies in Japanese eel originated in a teleost-specific genome duplication. Zool Lett 3, 18.
Near, T.J., Parker, S.K., and Detrich III, H.W. (2006). A genomic fossil reveals key steps in hemoglobin loss by the Antarctic icefishes. Mol Biol Evol 23, 2008–2016.
pubmed: 16870682
Ocampo Daza, D. (2013). Evolution of vertebrate endocrine and neuronal gene families: focus on pituitary and retina. Dissertation for Doctoral Degree. Uppsala: Uppsala University.
Opazo, J.C., Butts, G.T., Nery, M.F., Storz, J.F., and Hoffmann, F.G. (2013). Whole-genome duplication and the functional diversification of teleost fish hemoglobins. Mol Biol Evol 30, 140–153.
pubmed: 22949522
Opazo, J.C., Hoffmann, F.G., Natarajan, C., Witt, C.C., Berenbrink, M., and Storz, J.F. (2015). Gene turnover in the avian globin gene families and evolutionary changes in hemoglobin isoform expression. Mol Biol Evol 32, 871–887.
pubmed: 25502940
Otto, S.P. (2007). The evolutionary consequences of polyploidy. Cell 131, 452–462.
pubmed: 17981114
Pan, Y.K., Ern, R., Morrison, P.R., Brauner, C.J., and Esbaugh, A.J. (2017). Acclimation to prolonged hypoxia alters hemoglobin isoform expression and increases hemoglobin oxygen affinity and aerobic performance in a marine fish. Sci Rep 7, 7834.
pubmed: 28798467 pmcid: 5552867
Pebusque, M.J., Coulier, F., Birnbaum, D., and Pontarotti, P. (1998). Ancient large-scale genome duplications: phylogenetic and linkage analyses shed light on chordate genome evolution. Mol Biol Evol 15, 1145–1159.
pubmed: 9729879
Pertea, M., Pertea, G.M., Antonescu, C.M., Chang, T.C., Mendell, J.T., and Salzberg, S.L. (2015). StringTie enables improved reconstruction of a transcriptome from RNA-seq reads. Nat Biotechnol 33, 290–295.
pubmed: 25690850 pmcid: 25690850
Piekarski, N., Gross, J.B., and Hanken, J. (2014). Evolutionary innovation and conservation in the embryonic derivation of the vertebrate skull. Nat Commun 5, 5661.
pubmed: 25434971
Prince, V.E., and Pickett, F.B. (2002). Splitting pairs: the diverging fates of duplicated genes. Nat Rev Genet 3, 827–837.
pubmed: 12415313
Quinn, N.L., Boroevich, K.A., Lubieniecki, K.P., Chow, W., Davidson, E. A., Phillips, R.B., Koop, B.F., and Davidson, W.S. (2010). Genomic organization and evolution of the Atlantic salmon hemoglobin repertoire. BMC Genomics 11, 539.
pubmed: 20923558 pmcid: 3091688
Randall, D.J., Rummer, J.L., Wilson, J.M., Wang, S., and Brauner, C.J. (2014). A unique mode of tissue oxygenation and the adaptive radiation of teleost fishes. J Exp Biol 217, 1205–1214.
pubmed: 24744420
Roesner, A., Hankeln, T., and Burmester, T. (2006). Hypoxia induces a complex response of globin expression in zebrafish (Danio rerio). J Exp Biol 209, 2129–2137.
pubmed: 16709914
Ronquist, F., and Huelsenbeck, J.P. (2003). MrBayes 3: Bayesian phylogenetic inference under mixed models. Bioinformatics 19, 1572–1574.
pubmed: 12912839 pmcid: 12912839
Rutjes, H.A., Nieveen, M.C., Weber, R.E., Witte, F., and Van den Thillart, G.E.E.J.M. (2007). Multiple strategies of Lake Victoria cichlids to cope with lifelong hypoxia include hemoglobin switching. Am J Physiol Regul Integr Comp Physiol 293, R1376–R1383.
pubmed: 17626121
Sandve, S.R., Rohlfs, R.V., and Hvidsten, T.R. (2018). Subfunctionalization versus neofunctionalization after whole-genome duplication. Nat Genet 50, 908–909.
pubmed: 29955176
Sato, Y., Hashiguchi, Y., and Nishida, M. (2009). Temporal pattern of loss/persistence of duplicate genes involved in signal transduction and metabolic pathways after teleost-specific genome duplication. BMC Evol Biol 9, 127.
pubmed: 19500364 pmcid: 2702319
Shimeld, S.M., and Holland, P.W.H. (2000). Vertebrate innovations. Proc Natl Acad Sci USA 97, 4449–4452.
pubmed: 10781042 pmcid: 34320
Solovyev, V., Kosarev, P., Seledsov, I., and Vorobyev, D. (2006). Automatic annotation of eukaryotic genes, pseudogenes and promoters. Genome Biol 7, S10.
pubmed: 16925832 pmcid: 1810547
Song, X., Wang, Y., and Tang, Y. (2013). Rapid diversification of FoxP2 in teleosts through gene duplication in the teleost-specific whole genome duplication event. PLoS ONE 8, e83858.
pubmed: 24349554 pmcid: 3857310
Stamatakis, A. (2014). RAxML version 8: a tool for phylogenetic analysis and post-analysis of large phylogenies. Bioinformatics 30, 1312–1313.
pubmed: 24451623 pmcid: 3998144
Storz, J.F. (2016). Gene duplication and evolutionary innovations in hemoglobin-oxygen transport. Physiology 31, 223–232.
pubmed: 27053736 pmcid: 5005275
Storz, J.F., Natarajan, C., Grouleff, M.K., Vandewege, M., Hoffmann, F.G., You, X., Venkatesh, B., and Fago, A. (2020). Oxygenation properties of hemoglobin and the evolutionary origins of isoform multiplicity in an amphibious air-breathing fish, the blue-spotted mudskipper (Boleophthalmus pectinirostris). J Exp Biol 223, jeb217307.
pubmed: 31836650 pmcid: 6983713
Storz, J.F., Opazo, J.C., and Hoffmann, F.G. (2011). Phylogenetic diversification of the globin gene superfamily in chordates. IUBMB Life 63, 313–322.
pubmed: 21557448 pmcid: 4399706
Storz, J.F., Opazo, J.C., and Hoffmann, F.G. (2013). Gene duplication, genome duplication, and the functional diversification of vertebrate globins. Mol Phylogenet Evol 66, 469–478.
pubmed: 22846683
Tiedke, J., Gerlach, F., Mitz, S.A., Hankeln, T., and Burmester, T. (2011). Ontogeny of globin expression in zebrafish (Danio rerio). J Comp Physiol B 181, 1011–1021.
pubmed: 21614507
Van de Peer, Y., Maere, S., and Meyer, A. (2009). The evolutionary significance of ancient genome duplications. Nat Rev Genet 10, 725–732.
pubmed: 19652647
Van de Peer, Y., Mizrachi, E., and Marchal, K. (2017). The evolutionary significance of polyploidy. Nat Rev Genet 18, 411–424.
pubmed: 28502977
Wada, H. (2001). Origin and evolution of the neural crest: a hypothetical reconstruction of its evolutionary history. Dev Growth Differ 43, 509–520.
pubmed: 11576168
Wada, H., and Makabe, K. (2006). Genome duplications of early vertebrates as a possible chronicle of the evolutionary history of the neural crest. Int J Biol Sci 2, 133–141.
pubmed: 16763673 pmcid: 1474148
Wang, J.T., Li, J.T., Zhang, X.F., and Sun, X.W. (2012). Transcriptome analysis reveals the time of the fourth round of genome duplication in common carp (Cyprinus carpio). BMC Genomics 13, 96.
pubmed: 22424280 pmcid: 3352309
Wang, X., Gan, X., Li, J., Chen, Y., and He, S. (2016). Cyprininae phylogeny revealed independent origins of the Tibetan Plateau endemic polyploid cyprinids and their diversifications related to the Neogene uplift of the plateau. Sci China Life Sci 59, 1149–1165.
pubmed: 27646682
Weber, R.E. (2000). Adaptations for oxygen transport: lessons from fish hemoglobins. In: Di Prisco, G., Giardina, B., and Weber, R.E., eds. Hemoglobin Function in Vertebrates: Molecular Adaptation in Extreme and Temperate Environments. New York: Springer. 23–37.
Weber, R.E., Fago, A., Malte, H., Storz, J.F., and Gorr, T.A. (2013). Lack of conventional oxygen-linked proton and anion binding sites does not impair allosteric regulation of oxygen binding in dwarf caiman hemoglobin. Am J Physiol Regul Integr Comp Physiol 305, R300–R312.
pubmed: 23720132 pmcid: 3743003
Weber, R.E., and White, F.N. (1994). Chloride-dependent organic phosphate sensitivity of the oxygenation reaction in crocodilian hemoglobins. J Exp Biol 192, 1–11.
pubmed: 9317219
Wells, P.R., and Pinder, A.W. (1996). The respiratory development of Atlantic salmon. II. Partitioning of oxygen uptake among gills, yolk sac and body surfaces. J Exp Biol 199, 2737–2744.
pubmed: 9320645
Wells, R.M., (2009). Blood-gas transport and hemoglobin function: adaptations for functional and environmental hypoxia. In: Richards, J.G., Farrell, A.P., and Brauner, C.J., eds. Fish Physiology. New York: Elsevier. 255–299.
Wheeler, D., Hope, R.M., Cooper, S.J.B., Gooley, A.A., and Holland, R.A.B. (2004). Linkage of the β-like ω-globin gene to a-like globin genes in an Australian marsupial supports the chromosome duplication model for separation of globin gene clusters. J Mol Evol 58, 642–652.
pubmed: 15461421
Wolf, U., Ritter, H., Atkin, N.B., and Ohno, S. (1969). Polyploidization in the fish family Cyprinidae, order Cypriniformes. Hum Genet 7, 240–244.
Xia, M., Chao, Y., Jia, J., Li, C., Kong, Q., Zhao, Y., Guo, S., and Qi, D. (2016). Changes of hemoglobin expression in response to hypoxia in a Tibetan schizothoracine fish, Schizopygopsis pylzovi. J Comp Physiol B 186, 1033–1043.
pubmed: 27424163
Xu, P., Xu, J., Liu, G., Chen, L., Zhou, Z., Peng, W., Jiang, Y., Zhao, Z., Jia, Z., Sun, Y., et al. (2019). The allotetraploid origin and asymmetrical genome evolution of the common carp Cyprinus carpio. Nat Commun 10, 4625.
pubmed: 31604932 pmcid: 6789147
Zhu, X., Guan, Y., Signore, A.V., Natarajan, C., DuBay, S.G., Cheng, Y., Han, N., Song, G., Qu, Y., Moriyama, H., et al. (2018). Divergent and parallel routes ofbiochemical adaptation in high-altitude passerine birds from the Qinghai-Tibet Plateau. Proc Natl Acad Sci USA 115, 1865–1870.
pubmed: 29432191 pmcid: 5828625
Zimmer, E.A., Martin, S.L., Beverley, S.M., Kan, Y.W., and Wilson, A.C. (1980). Rapid duplication and loss of genes coding for the alpha chains of hemoglobin. Proc Natl Acad Sci USA 77, 2158–2162.
pubmed: 6929543 pmcid: 348671

Auteurs

Yi Lei (Y)

The Key Laboratory of Aquatic Biodiversity and Conservation of Chinese Academy of Sciences, Institute of Hydrobiology, Chinese Academy of Sciences, Wuhan, 430072, China.
University of Chinese Academy of Sciences, Beijing, 100049, China.

Liandong Yang (L)

The Key Laboratory of Aquatic Biodiversity and Conservation of Chinese Academy of Sciences, Institute of Hydrobiology, Chinese Academy of Sciences, Wuhan, 430072, China.
University of Chinese Academy of Sciences, Beijing, 100049, China.

Haifeng Jiang (H)

The Key Laboratory of Aquatic Biodiversity and Conservation of Chinese Academy of Sciences, Institute of Hydrobiology, Chinese Academy of Sciences, Wuhan, 430072, China.
University of Chinese Academy of Sciences, Beijing, 100049, China.

Juan Chen (J)

The Key Laboratory of Aquatic Biodiversity and Conservation of Chinese Academy of Sciences, Institute of Hydrobiology, Chinese Academy of Sciences, Wuhan, 430072, China.
University of Chinese Academy of Sciences, Beijing, 100049, China.

Ning Sun (N)

The Key Laboratory of Aquatic Biodiversity and Conservation of Chinese Academy of Sciences, Institute of Hydrobiology, Chinese Academy of Sciences, Wuhan, 430072, China.
University of Chinese Academy of Sciences, Beijing, 100049, China.

Wenqi Lv (W)

The Key Laboratory of Aquatic Biodiversity and Conservation of Chinese Academy of Sciences, Institute of Hydrobiology, Chinese Academy of Sciences, Wuhan, 430072, China.
University of Chinese Academy of Sciences, Beijing, 100049, China.

Shunping He (S)

The Key Laboratory of Aquatic Biodiversity and Conservation of Chinese Academy of Sciences, Institute of Hydrobiology, Chinese Academy of Sciences, Wuhan, 430072, China. clad@ihb.ac.cn.
Center for Excellence in Animal Evolution and Genetics, Chinese Academy of Sciences, Kunming, 650223, China. clad@ihb.ac.cn.

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