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Biology subjects

Choo, L. Q.

Publications and source records attributed to Choo, L. Q..

2 recordsLinked to original sources

Benchmarking Geometric Morphometric Methods: A Performance Evaluation for Gastropod Shell Shape Analyses

Understanding morphological variation is crucial for the study of speciation and for conservation as it helps in assessing biodiversity and predicting responses to environmental changes. These approaches are broadly applicable but are especially valuable in marine environments, where species are often elusive, difficult to study, and face heightened threats from rapid environmental shifts. The marine snail Littorina saxatilis is notable for its extensive polymorphism in shell shape, size, and colour, with ecotypes that evolve in response to environmental forces including wave exposure and crab predation. Morphometric tools have been central to investigating the mechanisms driving this phenotypic divergence; yet, a direct comparison of their methodological efficacy is lacking. Here, we took advantage of L. saxatilis ecotypes to contrast three morphometric approaches: elliptical Fourier analysis (EFA), landmarks-based geometric morphometrics (GM), and the growth-based model implemented in the ShellShaper software (SS). We assessed their clustering power, biological interpretability, robustness to measurement error and transferability among datasets. Our findings provide insights to guide method selection in studies aimed at exploring morphological variation: EFA is better suited for high-throughput screening and describing intermediate shapes; SS offers superior clustering power with highly interpretable growth parameters; and GM is best for detailed anatomical studies but is less efficient for large datasets. We provide guidelines to align method selection with specific research goals, balancing analytical efficiency with the required morphological and biological insight. By following this framework, researchers can ensure that robust morphological analysis is achieved, which is essential not only for elucidating mechanisms of adaptation and speciation but also for effective management and conservation of marine biodiversity.

evolutionary biology↗

Inversions support both parallel and location-specific adaptations in snail ecotypes

Replicated hybrid zones between ecotypes established over within shore environmental gradients provide an opportunity to study the genomic architecture of barriers to gene flow. The marine snail Littorina fabalis segregates locally into dwarf and large ecotypes over wave-exposure gradients on northwestern European shores. Previous work focusing on a hybrid zone in Sweden revealed strong genetic differentiation between the ecotypes, concentrated in 12 putative chromosomal inversions. Here we compare the Swedish hybrid zone with samples from France distributed across a similar wave-exposed gradient. Our aims were to test if similar exposure gradients promote parallel ecotype distributions and hybrid zones, and if similar genomic architectures contribute to divergence and adaptation across the gradients. Unpredictably, we found that the shell size cline was reversed in France compared to Sweden, with small individuals occupying the more-sheltered end of the environmental gradient in Sweden but the more-exposed end in France. We also observed a cline in shell colour in France, whereas nearly all Swedish snails were yellow. Using whole-genome sequencing, we found similar levels of genetic differentiation between ecotypes in both places. Most of the differences were accounted for by the same 15 inversions, and the arrangement clines showed similar associations to the wave-exposure gradient in both hybrid zones. These inversions were enriched in SNPs differentiating the ecotypes that were either specific to one hybrid zone or showed reversed cline patterns between zones. Genome-wide association studies (GWAS) detected significant associations between genomic regions within inversions and shell size in Sweden, while one inversion was associated with colour in France. Our results show that the same inversions play a dual role: they support ecotype differences across similar environmental gradients in distant locations, while also contribute site-specific variation contributing to local adaptation.

evolutionary biology↗