From Fairies to Giants: Untangling the Effect of Body Size, Phylogeny, and Ecology on Vertebral Bone Microstructure of Xenarthran Mammals.

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS
E H Zack, S M Smith, K D Angielczyk
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Abstract

Trabecular bone is a spongy bone tissue that serves as a scaffolding-like support inside many skeletal elements. Previous research found allometric variation in some aspects of trabecular bone architecture (TBA) and bone microstructure, whereas others scale isometrically. However, most of these studies examined very wide size and phylogenetic ranges or focused exclusively on primates or lab mice. We examined the impact of body size on TBA across a smaller size range in the mammalian clade Xenarthra (sloths, armadillos, and anteaters). We µCT-scanned the last six presacral vertebrae of 23 xenarthran specimens (body mass 120 g-35 kg). We collected ten gross-morphology measurements and seven TBA metrics and analyzed them using phylogenetic and nonphylogenetic methods. Most metrics had similar allometries to previous work. However, because ecology and phylogeny align closely in Xenarthra, the phylogenetic methods likely removed some covariance due to ecology; clarifying the impact of ecology on TBA in xenarthrans requires further work. Regressions for Folivora had high P-values and low R-squared values, indicating that the extant sloth sample either is too limited to determine patterns or that the unique way sloths load their vertebral columns causes unusually high TBA variation. The southern three-banded armadillo sits far below the regression lines, which may be related to its ability to roll into a ball. Body size, phylogeny, and ecology impact xenarthran TBA, but parsing these effects is highly complex.

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从仙女到巨人:解开体型、系统发育和生态学对异种哺乳动物椎骨微观结构的影响。
小梁骨是一种海绵状骨组织,在许多骨骼元素中起着支架般的支撑作用。先前的研究发现骨小梁结构(TBA)和骨微观结构的某些方面存在异速变化,而其他方面则是等距变化。然而,这些研究大多检查了非常广泛的尺寸和系统发育范围,或者只关注灵长类动物或实验室小鼠。我们在一个较小的哺乳动物分支(树懒、犰狳和食蚁兽)中研究了体型对TBA的影响。我们用微ct扫描了23例异种关节标本(体重120 g-35 kg)的最后6个骶前椎骨。我们收集了10个总形态测量值和7个TBA测量值,并使用系统发育和非系统发育方法对它们进行了分析。大多数指标与之前的工作具有相似的异速性。然而,由于异种门的生态学和系统发育密切相关,系统发育方法可能会消除一些因生态学而产生的协方差;澄清生态对异种动物TBA的影响需要进一步的工作。Folivora的回归具有高p值和低r平方值,表明现有树懒样本要么太有限,无法确定模式,要么树懒加载其脊柱的独特方式导致异常高的TBA变化。南部三带犰狳的位置远低于回归线,这可能与它滚成球的能力有关。体型、系统发育和生态影响异口虫TBA,但分析这些影响是非常复杂的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
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