Reinecke T, Angielczyk K D
The Committee on Evolutionary Biology, University of Chicago, Chicago, IL 60637, USA.
Negaunee Integrative Research Center, Field Museum of Natural History, Chicago, IL 60605, USA.
Integr Org Biol. 2024 Oct 21;6(1):obae038. doi: 10.1093/iob/obae038. eCollection 2024.
Trabecular bone, and its ability to rapidly modify its structure in response to strain exerted on skeletal elements, has garnered increased attention from researchers with the advancement of CT technology that allows for the analysis of its complex lattice-like framework. Much of this research has focused on adults of select taxa, but analysis into trabecular development across ontogeny remains limited. In this paper, we explore the shift in several trabecular characteristics in the articular head of the humerus and femur in across the entirely of the species' lifespan. Our results show that while body mass plays a role in determining trabecular structure, other elements such as bone growth, increased activity, and puberty result in trends not observed in the interspecific analysis of adults. Furthermore, differences in the trabeculae of the humerus and femur suggest combining distinct boney elements in meta-analysis may obfuscate the variety in the structures. Finally, rates at which fore and hindlimb trabeculae orient themselves early in life differ enough to warrant further exploration to identify the currently unknown causes for their variation.
随着CT技术的进步,小梁骨及其响应施加于骨骼元素的应变而快速改变其结构的能力,受到了研究人员越来越多的关注,这种技术能够对其复杂的晶格状框架进行分析。这项研究大多集中在特定分类群的成年个体上,但对整个个体发育过程中小梁骨发育的分析仍然有限。在本文中,我们研究了某一物种整个寿命周期内肱骨和股骨关节头的几个小梁特征的变化。我们的研究结果表明,虽然体重在决定小梁结构方面起作用,但其他因素,如骨骼生长、活动增加和青春期,会导致在成年个体的种间分析中未观察到的趋势。此外,肱骨和股骨小梁的差异表明,在荟萃分析中合并不同的骨骼元素可能会掩盖结构的多样性。最后,前肢和后肢小梁在生命早期的定向速率差异足够大,值得进一步探索,以确定目前未知的变异原因。