Using Thin-plate Spline Grids in Modeling Sex Differences in the Shapes of the Apical Disc in the Sea Urchin Tripneustes gratilla

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Research Paper 01/02/2016
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Using Thin-plate Spline Grids in Modeling Sex Differences in the Shapes of the Apical Disc in the Sea Urchin Tripneustes gratilla

Alinasser Alfad Yusop, Nurullaji Aguil, Roldan Echem, Mark Anthony J. Torres
J. Bio. Env. Sci.8( 2), 320-326, February 2016.
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Abstract

Variations in the shapes of the apical discs between sexes in the sea urchin Tripneustes gratilla were modeled through the use of Thin-plate spline (TPS) deformation grids.The analysis was done in two levels. First, the consensus or average morphologies of each sex were established and compared. Second, patterns of shape variation were analyzed through a careful study of a series of TPS grids when data was subjected to the geometric morphometric method of Relative Warp Analysis (RWA). The results show that differences in the shapes of apical disc were almost impossible to detect when only the consensus shapes were compared. Variations were much more obvious when the TPS of the top seven relative warps were analyzed. Among the local variations observed was the presence of two shape classes among the females. The males on the other hand assumed a unimodal distribution which is suggestive of it belonging to a single shape class. An important recurrent theme is the apparent asymmetry in the shapes of the lateral margins of the apical disc in both sexes.

VIEWS 5

Abdel-Rahman EH, Taylor PJ, Contrafatto G, Lamb JM, Bloomer P, Chimimba CT. 2009. Geometric craniometric analysis of sexual dimorphism and ontogenetic variation: A case study based on two geographically disparate species, Aethomys ineptus from Southern Africa and Arvicanthis niloticus from Sudan (Rodentia:Muridae). DST-NRF Center for Excellence for Invasion Biology.

Adams DC, Rohlf FJ, Slice DE. 2004. Geometric Morphometrics: Ten Years of Progress following the Revolution Italian Journal of Zoology 71(1), 5-16.

Benitez HA. 2013. Sexual Dimorphism using Geometric Morphometric Approach. Intech Open Access/Open Minds 16p.

De Camargo WRF, de Camargo NF, Correa DCV, de Camargo AJA, Diniz IR. 2015. Sexual Dimorphism and Allometric effects associated with the wing shape of seven moth species of Sphingidae (Lepidoptera: Bombycoidea). Journal of Insect Science 15(1).

Fruciano C, Tigano C, Ferrito V. 2011. Geographical and Morphological Variation within and between colour phases. Biological Journal of the Linean Society 104(1), 148-162.

Juinio-Meñez MAR, Salmo SG. III Tamayo EL, Estepa NG. 2000. Bugsay, Community Environmental Education: Experiences from Bolinao, Northern Philippines. Marine Environment Resources Foundation, Inc. Marine Science Institute, University of the Philippines, Q.C. Philippines. 126 p.

Tahara Y, Okada M, Kobayashi N. 1958. Further notes on the sexual dimorphisms in Japanese Sea Urchins. Publications of the Seto Marine Biological Laboratory 8(1), 183-189.

Wesbter M, Sheets HD. 2010. A Practical introduction to landmark-based geometric morphometrics In Quantitative Methods in Paleobiology, 163-188 p.