Fibular reduction and the evolution of theropod locomotion.

Manafzadeh, Armita R; Gatesy, Stephen M; Nyakatura, John A; Bhullar, Bhart-Anjan S · Nature · 2025

basic_science · Level V

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Abstract

Since Hampé's classic developmental experiments in the mid-twentieth century<sup>1,2</sup>, the reduced avian fibula has sparked sustained curiosity<sup>3-6</sup>. The fibula transformed throughout dinosaur evolution from a columnar structure into its splint-like avian form, a change long thought to be of little biomechanical consequence<sup>3,6</sup>. Here we integrated comparative three-dimensional kinematic analyses with transitional morphologies from the fossil record to refute this assumption and show that the reduced fibula serves a crucial function in enabling extreme knee long-axis rotation (LAR). Extreme LAR is fundamental to avian locomotion and is regularly exploited by living birds to execute complex terrestrial manoeuvres<sup>7</sup>. We infer that the evolution of this capacity was preceded by restriction of the knee to hinge-like motion in early theropod dinosaurs, driven by the origin of a mid-shank articulation<sup>8</sup> that precluded ancestral patterns of tibiofibular motion. Freeing of the fibula from the ankle joint later enabled mobilization of this initially static articulation and, in doing so, established a novel pattern of tibiofibular kinematics essential to the extreme levels of LAR retained by modern birds. Fibular reduction thus ushered in a transition to LAR-dominated three-dimensional limb control, profoundly altering the course of theropod locomotor evolution.

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