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Comparative morphology of the urohyal bone of fishes collected from the Persian Gulf and Oman Sea

Published online by Cambridge University Press:  24 May 2016

Laith A. Jawad*
Affiliation:
Flat Bush, Manukau, Auckland, New Zealand
Fatima Laghai Khahe Jahromi
Affiliation:
Ichthyology Research Laboratory, Department of Biology, College of Sciences, Shiraz University, Shiraz 71454, Iran
Azad Teimori
Affiliation:
Department of Biology, Faculty of Sciences, Shahid Bahonar University of Kerman, Kerman, Iran
Hamidreza Mehraban
Affiliation:
Ichthyology Research Laboratory, Department of Biology, College of Sciences, Shiraz University, Shiraz 71454, Iran
Hamid R. Esmaeili
Affiliation:
Ichthyology Research Laboratory, Department of Biology, College of Sciences, Shiraz University, Shiraz 71454, Iran
*
Correspondence should be addressed to:L.A. Jawad, Flat Bush, Manukau, Auckland, New Zealand email: [email protected]

Abstract

The urohyal is incorporated within the hyoid and branchial arches and performs a significant role in the mouth opening-closing mechanism of fishes, and is considered a synapomorphy of teleostean fishes. Morphological variation of the urohyal, in terms of size and shape parameters, can allow species identification. Morphology of the urohyal in 49 species belonging to 43 genera and 29 families from the Persian Gulf and from the Oman Sea were compared using size and shape measurements. The results examine the suitability of using the urohyal morphology in differentiating fish species from this region; highlighting the taxonomic value of the urohyal, which until now, had been studied little in terms of use as a diagnostic feature in the classification of teleosts.

Type
Research Article
Copyright
Copyright © Marine Biological Association of the United Kingdom 2016 

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References

REFERENCES

Andreata, J.V. (1989) Sobre a osteología cefálica das especies de Gerres Quoy y Gaimard, 1824 (Pisces, Perciformes, Gerreidae) que ocorren em águas Brasileiras. Acta Biologica Leopoldina 11, 165202.Google Scholar
Andreata, J.V. and Barbieri, L.R. (1981) Osteología de cráneo de Diapterus brasilianus (Cuvier, 1830) (Perciformes, Percoidei, Gerreidae). Revista Brasileira de Biologia 41, 565574.Google Scholar
Annabi, A., Said, K. and Reichenbacher, B. (2013) Inter-population differences in otolith morphology are genetically encoded in the killifish Aphanius fasciatus (Cyprinodontiformes). Scientia Marina 77, 269279.Google Scholar
Antović, I. and Simonović, P. (2006) Phenetic relationships of six species of mullets (Mugilidae) from the South Adriatic, as inferred from the study of the visceral and dermal skeleton. Russian Journal of Marine Biology 32, 250254.Google Scholar
Aprieto, V.L. (1974) Early development of five carangid fishes of the Gulf of Mexico and the south Atlantic coast of United States. Fishery Bulletin 72, 415443.Google Scholar
Arratia, G. and Schultze, H.P. (1990) The urohyal: development and homology within osteichthyes. Journal of Morphology 203, 247282.CrossRefGoogle Scholar
Bellwood, D.R. (1994) A phylogenetic study of the parrotfishes family Scaridae (Pisces: Labroidei), with a revision of genera. Records of the Australian Museum, Supplement 20, 186.Google Scholar
Bianchi, G. (1984) Study on the morphology of five Mediterranean and Atlantic sparid fishes with a reinstatement of the genus Pagrus Cuvier, 1817. Cybium 8, 3156.Google Scholar
Brainerd, E.L. and Patek, S.N. (1998) Vertebral morphology, C-Start curvature, and the evolution of mechanical defence in tetraodontiform fishes. Copeia 1998, 971984.CrossRefGoogle Scholar
Chen, J., Friesen, W.O. and Iwasaki, T. (2011) Mechanisms underlying rhythmic locomotion: body–fluid interaction in undulatory swimming. Journal of Experimental Biology 214, 561574.CrossRefGoogle ScholarPubMed
Chollet-Villalpandoa, J.G., De La Cruz-Agüeroa, J. and García-Rodrígueza, F.J. (2014) Comparison of urohyal bone morphology among gerreid fish (Perciformes: Gerreidae). Italian Journal of Zoology 81, 246255.CrossRefGoogle Scholar
Cuvier, G. (1835) Leçons d'anatomie compare. Volume 1. Sociéte Typographique, Belge.Google Scholar
De La Cruz-Agüero, J. and Chollet-Villalpando, J.G. (2012) Catálogo sinóptico del hueso urohial de las especies de la familia Gerreidae de México. In del Moral, L.F., Martínez, J.A., Franco, J., Ramírez, A.J. and Tello, J.L. (eds) Investigación Ictiológica en México, tópicos selectos en honor al Dr. José Luis Castro Aguirre. México, DF: UNAM-FES Iztacala, SIMAC, pp. 5773.Google Scholar
Eschmeyer, W.N. (ed.) (2014) Catalog of fishes. Online version, updated 5 October 2014. Internet publication, San Francisco: California Academy of Sciences. http://research.calacademy.org/research/Ichthyology/Catalog/fishcatmain.asp.Google Scholar
Esmaeili, H.R. and Teimori, A. (2006) Morphology of urohyal bone and its importance in taxonomy of some freshwater fishes of Iran. Iranian Scientific Fisheries Journal 15, 18.Google Scholar
Fricke, R. (ed.) (2014) References in the Catalog of fishes. Online version, updated 5 October 2014. Internet publication, San Francisco: California Academy of Sciences. http://research.calacademy.org/research/Ichthyology/Catalog/fishcatmain.asp.Google Scholar
Gonzalez-Acosta, A.F., De La Cruz-Agüero, J. and Castro-Aguirre, J.L. (2005) A review of eastern Pacific species of the genus Eugerres (Perciformes: Gerreidae). Bulletin of Marine Science 76, 661673.Google Scholar
Gonzalez-Acosta, A.F., De La Cruz-Agüero, J. and Castro-Aguirre, J.L. (2007) A review of the marine western Atlantic species of the genus Eugerres (Perciformes: Gerreidae). Bulletin of Marine Science 80, 109124.Google Scholar
Gonzalez-Zevallos, D., Kuba, L. and Gosztonyi, A.E. (2010) Estimacion de la longitud utilizando relaciones morfomet ricas de huesos del craneo, cintura escapular, otolitos y medidas especιficas del cuerpo en Merluccius hubbsi en aguas patagonicas. Revista de Biología Marina y Oceanografía 45, 341345.Google Scholar
Gosline, W.A. (1996) Structures associated with feeding in three broad-mouthed, benthic fish groups. Environmental Biology of Fishes 47, 399405.Google Scholar
Gosztonyi, A.E., Kuba, L. and Mansur, L.E. (2007) Estimation of body size using morphometric relationships of head bones, pectoral fin bones and bony precaudal distance in Raneya brasiliensis (Kaup, 1856) (Pisces, Ophidiiformes, Ophidiidae) in Patagonian waters. Revista de Biología Marina y Oceanografía 42, 15.Google Scholar
Hansel, H.C., Duke, S.D., Lofy, P.T. and Gray, G.A. (1988) Use of diagnostic bones to identify and estimate original lengths of ingested prey fishes. Transaction of the American Fisheries Society 117, 5562.Google Scholar
Herrell, A., Adriaens, D., Verraes, W. and Aerts, P. (2002) Bite performance in clariid fishes with hypertrophied jaw adductors as deduced by bite modeling. Journal of Morphology 253, 196205.Google Scholar
Jahromi, F.L., Esmaeili, H.R., Teimori, A., Nokhatolfoghahai, M. and Ostovani, Sh.H. (2010) Morphology of urohyal bone and its importance in identification of two coral reef fishes (Perciformes: Scaridae). Journal of Aquatic Sciences 1, 6169.Google Scholar
Johal, M.S., Esmaeili, H.R. and Tandon, K.K. (2001) A comparison of back-calculated lengths of silver carp derived from bony structures. Journal of Fish Biology 59, 14831493.Google Scholar
Kaga, T. (2013) Phylogenetic systematics of the family Sillaginidae (Percomorpha: order Perciformes). Zootaxa 3642, 1105.Google Scholar
Keivany, Y. (2014) Osteology of hyobranchial arches in eurypterygian fishes. Iran Journal of Ichthyology 1, 129151.Google Scholar
Kim, B-J. (2002) Comparative anatomy and phylogeny of the family Mullidae (Teleostei: Perciformes). Memoirs of the Faculty of Fisheries, Hokkaido University 49, 174.Google Scholar
Kohno, H. (1984) Osteology and systematic position of the butterfly mackerel, Gasterochisma melampus . Japanese Journal of Ichthyology 31, 2437.Google Scholar
Kusaka, T. (1969a) Research on facial membrane bones of fish I. Regarding features of urohyal on 100 species. Bulletin de la Société franco-japonaise d'océanographie 7, 825.Google Scholar
Kusaka, T. (1969b) Research on facial membrane bones of fish II. Regarding features of urohyal on 220 species. Bulletin de la Société franco-japonaise d'océanographie 8, 149170.Google Scholar
Kusaka, T. (1974) The urohyal of fishes. Tokyo: University of Tokyo Press, 320 p.Google Scholar
Kusaka, T. and Thuc, N.T. (1972) Regarding features of urohyal, parasphenoid, hyomandibular and pelvic bone of the Japanese lanternfish (Family: Myctophidae, Teleostei). Bulletin de la Société franco-japonaise d'océanographie 10, 145155.Google Scholar
Lloris, D., Matallanas, J. and Oliver, P. (2003) Merluzas del mundo (Familia Merlucciidae). Catálogo comentado e ilustrado de las merluzas conocidas. Roma: FAO, 57 pp.Google Scholar
Lovejoy, N.R., Iranpour, M. and Collette, B.B. (2004) Phylogeny and jaw ontogeny of Beloniform fishes. Integrative Comparative Biology 44, 366377.Google Scholar
Mabee, P.M., Grey, E.A., Arratia, G., Bogutskaya, N., Boron, A., Coburn, M.M., Conway, K.W., Shunping, H.E., Naseka, A., Rios, N., Simons, A., Szlachciak, J. and Wang, X. (2011) Gill arch and hyoid arch diversity and cypriniform phylogeny: distributed integration of morphology and web-based tools. Zootaxa 2877, 140.Google Scholar
Marceniuk, A.P., Menezes, N.A. and Brito, M.R. (2012) Phylogenetic analysis of the family Ariidae (Ostariophysi: Siluriformes), with a hypothesis on the monophyly and relationships of the genera. Zoological Journal of the Linnean Society 165, 534669.Google Scholar
Murray, A. and Attia, S. (2004) A new species of Lates (Teleostei: Perciformes) from the Lower Oligocene of Egypt. Journal of Vertebrate Paleontology 24, 299308.Google Scholar
Otero, O. (2004) Anatomy, systematics and phylogeny of both recent and fossil latid fishes (Teleostei, Perciformes, Latidae). Zoological Journal of the Linnean Society 141, 81133.Google Scholar
Perez Comesaña, J.E., Clavin, P., Arias, K. and Riestra, C. (2013) Total length estimation of the Brazilian flathead Percophis brasiliensis, using morphometric relationships of skull, pectoral girdle bones, otoliths and specific body measures, in Argentine waters. Journal of Applied Ichthyology 30, 377380.Google Scholar
Porter, H.T. and Motta, P.J. (2004) A comparison of strike and prey capture kinematics of three species of piscivorous fishes: Florida gar (Lepisosteus platyrhinchus), redfin needlefish (Strongylura notata), and great barracuda (Sphyraena barracuda). Marine Biology 145, 9891000.Google Scholar
Rao, K.V.S. (1977) Systematics and comparative osteology of Indian lizard fishes (Saurida spp.). Indian Journal of Fisheries 24, 2465.Google Scholar
Reichenbacher, B. and Reichard, M. (2014) Otoliths of five extant species of the annual killifish Nothobranchius from the East African savannah. PLoS ONE 9, e112459.Google Scholar
Reichenbacher, B., Sienknecht, U., Kuchenhoff, H. and Fenske, N. (2007) Combined otolith morphology and morphometry for assessing taxonomy and diversity in fossil and extant killifish (Aphanius, Prolebias). Journal of Morphology 266, 898912.Google Scholar
Sasaki, K. (1989) Phylogeny of the family Sciaenidae, with notes on its zoogeography (Teleostei, Perciformes). Memoirs of the Faculty of Fisheries, Hokkaido University 36, 1137.Google Scholar
Sato, Y., Hasegawa, Y. and Yonezawa, A. (1988) The urohyal of Japanese Miocene clupeid fish Eosardinella hishinaiensis . Scientific Report of Yokohama National University 35, 5759.Google Scholar
Scharf, F.S., Buckel, J.A., Juanes, F. and Conover, D.O. (1997) Estimating piscine prey size from partial remains: testing for shifts in foraging mode by juvenile bluefish. Environmental Biology of Fishes 49, 377388.Google Scholar
Scharf, F.S., Yetter, R.M., Summers, A.P. and Juanes, F. (1998) Enhancing diet analyses of piscivorous fishes in the North West Atlantic through identification and reconstruction of original prey sizes from ingested remains. Fishery Bulletin 96, 575588.Google Scholar
Teimori, A., Esmaeili, H.R., Erpenbeck, D. and Reichenbacher, B. (2014) A new and unique species of the genus Aphanius (Teleostei: Cyprinodontidae) from Southern Iran: a case of regressive evolution. Zoologischer Anzeiger 253, 327337.Google Scholar
Tombari, A., Gosztonyi, A., Echeverria, D. and Volpedo, A. (2010) Otolith and vertebral morphology of marine atherinid species (Atheriniformes, Atherinopsidae) coexisting in the southwestern Atlantic Ocean. Ciencias Marinas 36, 213223.Google Scholar