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April 16, 2026Proceedings of the Royal Society B Biological Sciences2 citationsOpen Access

Integration of distal tibial shape and internal trabecular bone structure among catarrhine primates

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APAnnalisa PietrobelliMCMarine CazenaveASAlexander Synek

Key Points

  • The study aims to explore how distal tibial shape and internal bone structure reflect locomotor adaptations in primates.
  • Examined distal tibiae from eight catarrhine genera.
  • Utilized canonical holistic morphometric analysis for shape assessment.
  • Quantified trabecular bone volume fraction in three-dimensional volumes.
  • Applied geometric morphometric techniques for shape analysis.
  • Identified taxonomic differences in distal tibial shape and trabecular distribution.
  • Humans show a squared tibial plafond, suitable for vertical loading.
  • African apes exhibit a trapezoidal plafond linked to ankle flexion.
  • Orangutans and hylobatids display diverse trabecular patterns for multidirectional loading.
  • Cercopithecoids show narrower morphology related to plantarflexed postures.

Abstract

Abstract Primates display a wide range of locomotor behaviours, each resulting in distinct mechanical demands on the ankle joint. This study examines how variation in distal tibial shape and internal bone structure captures these locomotor adaptations. We examined the morphology of distal tibiae from eight extant catarrhine genera using canonical holistic morphometric analysis. Relative trabecular bone volume fraction was quantified across homologous three-dimensional volumes, and shape was assessed via a new geometric morphometric-based approach. Our analyses reveal taxonomic and locomotor differences in both distal tibial trabecular distribution and shape. Humans exhibit a squared tibial plafond with trabecular reinforcement at its center, reflecting vertical axial loading. African apes show a trapezoidal plafond with trabecular reinforcement linked to ankle flexion during climbing and quadrupedalism. Orangutans and hylobatids exhibit diverse trabecular distribution and morphology, consistent with multidirectional loading. Cercopithecoids display posterior trabecular reinforcement and narrower joint morphology, consistent with plantarflexed postures during quadrupedalism. Substantial covariation between tibial shape and trabecular distribution was identified across taxa, with functional gradients aligning with ankle loading regimes, showing that analyzing trabecular structure and external shape enhances our understanding of joint mechanics, offering critical insight for interpretation of primate locomotor diversity and evolution.

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Cite This Study

Pietrobelli et al. (2026) studied this question.

synapsesocial.com/papers/69e07bc12f7e8953b7cbd5aahttps://doi.org/10.1098/rspb.2026.0126
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