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Functional adaptation underpinned the evolutionary assembly of the earliest vertebrate skeleton

机译:功能适应是最早的脊椎动物骨骼进化组装的基础

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摘要

Conodonts are the first vertebrates to bear a mineralized skeleton, restricted to an array of tooth-like feeding elements. The functional implications for the development of tooth-like elements differentiated into two tissues is tested using 2D finite element modeling, mapping the patterns of stress and strain that elements with differing material properties exhibited during function. Addition of a stiff crown does not change the patterns of stress, rather it reduces the deformation of the element under the same force regime, and distributes stress more evenly across the element. The euconodont crown, like vertebrate dental enamel, serves to stiffen the element and protect the underlying dentine. Stiffness of the crown may be a contributing factor to the subsequent diversity of euconodont form, and logically function, by allowing a greater range of feeding strategies to be employed. The euconodont crown also serves as an analogue to enamel and enameloid, demonstrating that enamel-like tissues have evolved multiple times in independent vertebrate lineages, likely as a response to similar selective pressures. Conodonts can, therefore, serve as an independent test on hypotheses of the effect of ecology on the development of the vertebrate skeleton.
机译:牙形刺是第一个带有矿化骨骼的脊椎动物,仅限于一系列牙齿状的进食元素。使用2D有限元建模测试了分化为两个组织的牙齿状元素的发育的功能含义,绘制了应力和应变模式,这些应力和应变模式是材料在使用过程中具有不同材料特性的元素所表现出来的。添加坚硬的胎冠不会改变应力的模式,而是会减少在相同力作用下的单元变形,并使应力在整个单元上更均匀地分布。象脊椎动物的牙釉质一样,共锥牙冠可以使牙齿变硬并保护下面的牙质。通过允许采用更大范围的进食策略,冠的刚度可能是促共形体形式的后续多样性和逻辑功能的促成因素。真共齿冠还可以作为牙釉质和类似生物的类似物,表明牙釉质样组织在独立的脊椎动物谱系中已经进化了多次,可能是对类似选择压力的反应。因此,牙形刺可以作为生态学对脊椎动物骨骼发育影响的假设的独立检验。

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