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Licht, A.

Publications and source records attributed to Licht, A..

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Trabecular structure correlates with leaping distance in tamarins

ObjectivesThe intricate trabecular architecture of long-bone epiphyses underpins functional adaptations for diverse mammalian locomotion. Despite extensive study in other mammals, tamarin trabecular structure and fine-grained differences among leaping taxa remain poorly characterized. Materials and MethodsWe examined humeral and tibial trabecular networks in four tamarin species representing short- and long-distance leapers using {micro}CT-scans and a whole-epiphysis approach. We quantified network complexity with topological indices (node density, tortuosity, trabecular length, fractal dimension) alongside traditional metrics (degree of anisotropy [DA], bone volume fraction [BV/TV]) to capture both geometric and topological features. ResultsLong leapers exhibit significantly higher node density in both humeral and tibial epiphyses and increased trabecular tortuosity in the distal humerus. Elevated node density localizes beneath the humero-scapular joint, within the proximal humerus, and in variable regions across other epiphyses. Other parameters (DA, BV/TV, trabecular length, fractal dimension) showed no leaping-related differences, instead correlating with sex and captivity. DiscussionIncreased mechanical strain during longer leaps likely drives higher node density and, to a lesser extent, tortuosity in humeral and tibial epiphyses, with node density showing the strongest functional signal. While sex and captivity influence other trabecular traits, patterns in these key metrics support locomotor adaptation. Integrating whole-epiphysis analyses with novel topological indices enhances detection of subtle functional signals and complements VOI-based and traditional frameworks in comparative trabecular bone studies.

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