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Using pictographs as traits to explore morphological diversity in sharks
Zachary A Siders1, Fabio P Caltabellotta1,2, Katherine B Loesser3
1Fisheries and Aquatic Sciences Program, School of Forest, Fisheries, and Geomatic Sciences University of Florida Florida Gainesville USA.
Ecology and Evolution
|January 30, 2023
Summary
Scientific illustrations, or pictographs, offer a valuable, easy-to-digitize data source for shark body shape analysis. This study shows pictographs are reliable for morphological measurements and phylogenetic analyses.
Area of Science:
- Ichthyology
- Morphometrics
- Computational Biology
Background:
- Body shape is crucial for species differentiation but traditional measurements face challenges like distortion and collection difficulties.
- Scientific illustrations (pictographs) are underutilized despite offering rich morphological data.
- This study explores the utility of pictographs for analyzing shark body shape.
Purpose of the Study:
- To validate the use of pictographs as a reliable data source for morphological measurements in sharks.
- To construct a multivariate morphospace for shark body shape using pictograph data.
- To assess the influence of habitat, endemism, and illustrator on body shape variability.
- To demonstrate the application of pictographs in ancestral trait reconstruction and phylogenetic modeling.
Main Methods:
- Collected and landmarked 473 pictographs from 67 shark species.
- Employed Elliptical Fourier Analysis and principal components analysis to create a morphospace.
- Evaluated variability using habitat association, endemism, and illustrator data.
- Applied pictograph data to ancestral trait reconstruction and phylogenetic generalized linear mixed models (PGLMM).
Main Results:
- Measurements from pictographs showed minimal deviation from specimen-derived data.
- Habitat preference significantly impacted pictograph discovery rates and within-species similarity.
- Limited illustrators exhibited systematic variability; habitat was a stronger influence.
- Pictographs provided greater explanatory power than traditional measurements in PGLMM.
- Observed Lamnid divergence ~100 MYA and linked endemism to specific body shape features in Carcharhinidae + Sphyrnidae.
Conclusions:
- Pictographs are a reliable, easily digitizable, and undervalued data source for species' body shape analysis.
- Pictograph data enhances accuracy in ancestral trait reconstruction and phylogenetic modeling.
- Further research can leverage established methods for comparing pictographs and assessing variability in biodiversity studies.
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