Linked from
The 46 pages that link to Locomotion, each with the reason it gives.
TetrapodRelated: Tetrapod lineages transformed limb-based movement into walking, running, swimming, and flight.
PrecocialityRelated: Mobility is central to precociality, but its timing and effectiveness vary among species.
SarcopterygiiRelated: Lobed fins could provide propulsion and support in water before limbs enabled sustained movement on land.
BilateriaRelated: A front–back axis supports directed movement, a prominent mode of life among bilaterians.
Postcranial skeletonRelated: Limb and trunk anatomy constrains how an animal moves.
ScincidaeRelated: Limbed, limbless, and short-legged skinks use different forms of locomotion.
VaranidaeRelated: Many monitor lizards are active, capable runners that pursue prey or escape threats.
DinocephaliaRelated: Limb and body proportions inform reconstructions of dinocephalian movement on land.
CoryphodonRelated: Its robust limbs suggest a heavy-bodied animal adapted for terrestrial movement.
AmphicyonidaeRelated: Limb proportions and joint surfaces help reconstruct how amphicyonids moved.
Human skeletonRelated: Bones provide levers and joints provide axes for muscle-driven locomotion.
MammalogyRelated: Comparing movement links mammal anatomy to habitat and behavior.
AnthracotheriidaeRelated: Limb proportions help test whether particular anthracotheres were terrestrial, amphibious, or both.
MacraucheniaRelated: Macrauchenia’s limb proportions are used to assess how it moved across open terrain.
NotoungulataRelated: Limb bones reveal how different notoungulates moved across their environments.
PalaeotheriidaeRelated: Limb proportions and toe structure offer evidence about palaeotheriid movement and habitat.
SparassodontaRelated: Limb proportions in sparassodont fossils help reconstruct terrestrial movement and hunting styles.
ArizonasaurusRelated: Arizonasaurus’s limb and hip anatomy informs estimates of how it moved.
ChalicotheriumRelated: Its limb proportions inform hypotheses about how Chalicotherium moved.
DaeodonRelated: Daeodon's long limbs suggest it could travel efficiently across open Miocene landscapes.
On the SoulRelated: The treatise asks how appetite and thought move animals without moving themselves.
PareiasauriaRelated: Their sprawling limbs and heavy bodies constrain reconstructions of how they moved.
ScutosaurusRelated: Its sprawling limbs supported a heavy body close to the ground.
SimosuchusRelated: Postcranial anatomy helps test whether Simosuchus moved mainly on land rather than like a modern crocodile.
Tree frogRelated: Tree frogs combine climbing, walking, and jumping to move through layered vegetation.
AnoplotheriidaeRelated: Limb proportions and foot structure inform reconstructions of how anoplotheriids moved.
CainotheriidaeRelated: Limb proportions and foot bones inform reconstructions of cainotheriid movement.
Energy utilizationRelated: Muscle contraction and other movement mechanisms consume chemical energy.
EntelodontidaeRelated: Entelodont limb fossils inform estimates of their gait, speed, and terrestrial habits.
MicrosauriaRelated: Differences in limb and trunk anatomy suggest varied microsaur modes of movement.