Friedman Sarah T, Muñoz Martha M
Department of Ecology and Evolutionary Biology, Yale University, New Haven, CT 06511,USA.
Integr Org Biol. 2022 Aug 13;4(1):obac020. doi: 10.1093/iob/obac020. eCollection 2022.
Many organismal functions are temperature-dependent due to the contractile properties of muscle. Spring-based mechanisms offer a thermally robust alternative to temperature-sensitive muscular movements and may correspondingly expand a species' climatic niche by partially decoupling the relationship between temperature and performance. Using the ballistic tongues of salamanders as a case study, we explore whether the thermal robustness of elastic feeding mechanisms increases climatic niche breadth, expands geographic range size, and alters the dynamics of niche evolution. Combining phylogenetic comparative methods with global climate data, we find that the feeding mechanism imparts no discernable signal on either climatic niche properties or the evolutionary dynamics of most climatic niche parameters. Although biomechanical innovation in feeding influences many features of whole-organism performance, it does not appear to drive macro-climatic niche evolution in salamanders. We recommend that future work incorporate micro-scale environmental data to better capture the conditions that salamanders experience, and we discuss a few outstanding questions in this regard. Overall, this study lays the groundwork for an investigation into the evolutionary relationships between climatic niche and biomechanical traits in ectotherms.
由于肌肉的收缩特性,许多生物体功能都依赖于温度。基于弹簧的机制为温度敏感的肌肉运动提供了一种热稳健的替代方案,并可能通过部分解除温度与性能之间的关系,相应地扩大物种的气候生态位。以蝾螈的弹射舌为案例研究,我们探究弹性进食机制的热稳健性是否会增加气候生态位宽度、扩大地理分布范围大小,并改变生态位进化的动态。将系统发育比较方法与全球气候数据相结合,我们发现进食机制对气候生态位属性或大多数气候生态位参数的进化动态均无明显影响。尽管进食方面的生物力学创新会影响整个生物体性能的许多特征,但它似乎并未驱动蝾螈的宏观气候生态位进化。我们建议未来的研究纳入微观尺度的环境数据,以更好地捕捉蝾螈所经历的条件,并讨论了这方面的一些悬而未决的问题。总体而言,本研究为探究变温动物气候生态位与生物力学特征之间的进化关系奠定了基础。