Suppr超能文献

叶口蝠科蝙蝠辐射范围内,翼内肌的排列受体重影响。

Arrangements of intramembranous muscles of wings are influenced by body mass across the radiation of phyllostomid bats.

作者信息

Conceição-da-Silva Alana, Louzada Nathália Siqueira Veríssimo, Tavares William Corrêa

机构信息

Núcleo Multidisciplinar de Pesquisa em Biologia, Campus UFRJ Duque de Caxias Professor Geraldo Cidade, Universidade Federal do Rio de Janeiro, Duque de Caxias, Rio de Janeiro, Brazil.

Programa de Pós-Graduação em Biodiversidade e Biologia Evolutiva, Instituto de Biologia, Universidade Federal do Rio de Janeiro, Rio de Janeiro, Rio de Janeiro, Brazil.

出版信息

Anat Rec (Hoboken). 2025 Aug;308(8):2194-2211. doi: 10.1002/ar.25594. Epub 2024 Oct 23.

Abstract

Extensive research into bat flight mechanisms has highlighted the complex functional and evolutionary dynamics of their wing structures, yet the anatomical details of certain wing muscles remain elusive. In particular, the intramembranous plagiopatagiales proprii muscles, located within the plagiopatagium-an area of the wing lacking direct joint connections-exhibit remarkable variation across bat families. These muscles, which extend anteroposteriorly in macroscopic bundles, play a crucial role in wing stiffening, modulating membrane tension, and reducing wing curvature during flight. Since larger bats tend to have higher wing loading (WL; the ratio of body mass [BMa] to wing area) and may therefore experience increased patagial curvature and resultant drag, we hypothesized that body size significantly influences the evolutionary development of the plagiopatagiales proprii muscles. This study investigates the relationship between BMa and the morphology of the plagiopatagiales proprii in New World leaf-nosed bats (Phyllostomidae), employing bivariate allometry, multivariate analysis, and comparative phylogenetic methods across 24 species from eight phyllostomid subfamilies. Our findings reveal a significant phylogenetic signal in muscle architecture, along with positive evolutionary allometry in muscle area. This suggests an adaptive increase in muscle size in larger species, likely to counterbalance the increased WL, reduce wing curvature, and minimize drag. This research enhances our understanding of the functional and adaptive morphological evolution of intramembranous wing muscles in phyllostomid bats, underscoring their evolutionary significance.

摘要

对蝙蝠飞行机制的广泛研究突出了其翅膀结构复杂的功能和进化动态,但某些翼肌的解剖细节仍不清楚。特别是,位于翼膜内(翼膜是翅膀上一个缺乏直接关节连接的区域)的膜内斜距肌在不同蝙蝠科之间表现出显著差异。这些肌肉以宏观束状从前向后延伸,在飞行过程中对翅膀变硬、调节膜张力和减少翅膀弯曲起着关键作用。由于大型蝙蝠往往具有更高的翼载荷(翼载荷是体重与翅膀面积的比值),因此可能会经历更大的翼膜曲率和由此产生的阻力,我们假设体型大小会显著影响膜内斜距肌的进化发展。本研究调查了新大陆叶口蝠(叶口蝠科)的体重与膜内斜距肌形态之间的关系,采用双变量异速生长分析、多变量分析以及比较系统发育方法,研究对象涵盖叶口蝠科八个亚科的24个物种。我们的研究结果揭示了肌肉结构中存在显著的系统发育信号,以及肌肉面积的正向进化异速生长。这表明大型物种的肌肉大小适应性增加,可能是为了抵消增加的翼载荷、减少翅膀弯曲并将阻力降至最低。这项研究增进了我们对叶口蝠科蝙蝠膜内翼肌功能和适应性形态进化的理解,强调了它们的进化意义。

文献检索

告别复杂PubMed语法,用中文像聊天一样搜索,搜遍4000万医学文献。AI智能推荐,让科研检索更轻松。

立即免费搜索

文件翻译

保留排版,准确专业,支持PDF/Word/PPT等文件格式,支持 12+语言互译。

免费翻译文档

深度研究

AI帮你快速写综述,25分钟生成高质量综述,智能提取关键信息,辅助科研写作。

立即免费体验