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Biology subjects

Püffel, F.

Publications and source records attributed to Püffel, F..

2 recordsLinked to original sources

The form and function of a multi-functional weapon system in male and female burying beetles (Nicrophorus vespilloides)

Animal weapon systems are used for attack and defence during competition for resources including, though not confined to, competition for mates. They comprise the weapon itself and associated morphological structures - or weapon-supportive traits - that are essential for the deployment of the weapon in combat. We investigate the form and function of a weapon system in burying beetles Nicrophorus vespilloides, to better understand why it differs between the sexes. Both males and females engage in contests with members of their own sex to monopolise a scarce carrion breeding resource. We show that mandibles (weapon during biting) and head width (weapon-supportive trait) are larger in males, and that males exhibit a disproportionately larger increase in bite force with head width than females. However, in staged contests with size-matched rivals of the same sex, the weapon system functioned in the same way for males and females: for each sex, the combined effects of head width and maximum bite force best predicted contest outcome. We suggest that the component parts of the weapon system each serve multiple additional functions, including tasks associated with parental care, which contribute differently to fitness in each sex. The resulting divergent selection pressures may explain why sexual dimorphism persists.

evolutionary biology↗

3D kinematics of leaf-cutter ant mandibles: not all dicondylic joints are simple hinges

Insects use their mandibles for a variety of tasks, including cutting and material transport, defence, building nests, caring for brood, and competing for mates. Despite this functional diversity, mandible motion is thought to be constrained to rotation about a single fixed axis in the majority of extant species. Here, we conduct a direct quantitative test of this hinge joint hypothesis in a species that uses its mandibles for a wide range of tasks: Atta vollenweideri leaf-cutter ants. Mandible movements from live restrained ants were reconstructed in 3D using a multi-camera rig. Rigid body kinematic analyses revealed strong evidence that mandible movement occupies a kinematic space which requires more than one rotational degree of freedom: at large opening angles, mandible motion is dominated by yaw. But at small opening angles, mandibles yaw and pitch. The combination of yaw and pitch allows mandibles to criss-cross: either mandible can be on top when mandibles are closed. We observed criss-crossing in freely cutting ants, suggesting that it is functionally important. Combined with recent reports on diversity of joint articulations in other insects, our results show that insect mandible kinematics are more diverse than traditionally assumed, and thus worthy of further detailed investigation.

evolutionary biology↗