McCord Charlene L, Westneat Mark W
Department of Organismal Biology and Anatomy, University of Chicago, Chicago, Illinois, 60637.
Field Museum of Natural History, Division of Fishes, Chicago, Illlinois, 60605.
J Morphol. 2016 Jun;277(6):737-52. doi: 10.1002/jmor.20531. Epub 2016 Mar 20.
The robust skull and highly subdivided adductor mandibulae muscles of triggerfishes provide an excellent system within which to analyze the evolutionary processes underlying phenotypic diversification. We surveyed the anatomical diversity of balistid jaws using Procrustes-based geometric morphometric analyses and a phylomorphospace approach to quantifying morphological transformation through evolution. We hypothesized that metrics of interspecific cranial shape would reveal patterns of phylogenetic diversification that are congruent with functional and ecological transformation. Morphological landmarks outlining skull and adductor mandibulae muscle shape were collected from 27 triggerfish species. Procrustes-transformed skull shape configurations revealed significant phylogenetic and size-influenced structure. Phylomorphospace plots of cranial shape diversity reveal groupings of shape between different species of triggerfish that are mostly consistent with phylogenetic relatedness. Repeated instances of convergence upon similar cranial shape by genetically disparate taxa are likely due to the functional demands of shared specialized dietary habits. This study shows that the diversification of triggerfish skulls occurs via modifications of cranial silhouette and the positioning of subdivided jaw adductor muscles. Using the morphometric data collected here as input to a biomechanical model of triggerfish jaw function, we find that subdivided jaw adductors, in conjunction with a unique cranial skeleton, have direct biomechanical consequences that are not always congruent with phylomorphospace patterns in the triggerfish lineage. The integration of geometric morphometrics with biomechanical modeling in a phylogenetic context provides novel insight into the evolutionary patterns and ecological role of muscle subdivisions in triggerfishes. J. Morphol. 277:737-752, 2016. © 2016 Wiley Periodicals, Inc.
扳机鱼坚固的头骨和高度细分的咬肌提供了一个极佳的系统,可用于分析表型多样化背后的进化过程。我们使用基于普氏分析的几何形态测量学方法和系统发育形态空间方法来量化进化过程中的形态转变,以此调查扳机鱼颌骨的解剖学多样性。我们假设种间颅骨形状指标将揭示与功能和生态转变相一致的系统发育多样化模式。从27种扳机鱼中收集了勾勒头骨和咬肌形状的形态地标。普氏变换后的头骨形状构型显示出显著的系统发育和受大小影响的结构。颅骨形状多样性的系统发育形态空间图揭示了不同扳机鱼物种之间形状的分组,这些分组大多与系统发育相关性一致。遗传上不同的分类群多次趋同于相似颅骨形状,可能是由于共同的特殊饮食习惯的功能需求。这项研究表明,扳机鱼头骨的多样化是通过颅骨轮廓的改变和细分的颌骨内收肌的定位而发生的。利用此处收集的形态测量数据作为扳机鱼颌骨功能生物力学模型的输入,我们发现细分的颌骨内收肌与独特的颅骨骨骼相结合,具有直接的生物力学后果,这些后果并不总是与扳机鱼谱系中的系统发育形态空间模式一致。在系统发育背景下将几何形态测量学与生物力学建模相结合,为扳机鱼中肌肉细分的进化模式和生态作用提供了新的见解。《形态学杂志》277:737 - 752,2016年。© 2016威利期刊公司