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Slender but strong: Substrate-driven adaptations in parasitic wasp ovipositors

2026/07/23 by Uroš Cerkvenik, Robin Heinen, Johan L van Leeuwen +1

paper · doi:10.1093/icb/icag129

Abstract

Abstract The hymenopteran ovipositor is a sophisticated probing organ composed of three sliding elements, interconnected with two tongue-and-groove (olistheter) mechanisms. The slender ovipositor must accommodate at least two mechanical requirements: the strength to puncture a substrate and the flexibility to navigate through it. During puncturing, the ovipositor is often mechanically stabilized with external supports, while coordinated pushing and pulling of the three ovipositor elements generate motions through the substrate. Both mechanisms reduce bending moments along the ovipositor thereby preventing failure-prone buckling deformations. Despite the efficacy of these mechanisms, it is anticipated that drilling into stiff and tough media requires reinforced structures, creating a potential trade-off with maneuverability. Here, we investigated whether ovipositor morphology reflects substrate-specific adaptations across the two largest hymenopteran families: Ichneumonidae and Braconidae. We compared 22 morphometrics measured from the ovipositor cross-sections of 86 species reported in the literature. Our results indicate that while the gross cross-sectional anatomy remains conserved across all species spanning across a wide size range, specific structural adaptations emerge at ecological extremes. We observed significant negative allometry in internal channel size, suggesting that larger ovipositors exhibit relatively thicker outer walls thereby enhancing mechanical reinforcement. Additionally, species probing tougher substrates—such as wood or (chitinous) pupae—exhibited more robust and outwardly oriented olistheters, adaptations that likely prevent valve separation under high axial loads. These findings suggest a fundamental trade-off, namely, that the reinforced dorsal valve and olistheters increase flexural rigidity but limit steering capabilities. For instance, wood-boring species possess less-rigid structures than pupal parasitoids, likely to facilitate the maneuverability required to navigate complex substrates. Our results suggest that ovipositor anatomy is a finely tuned result of trade-offs between penetration force, steerability, and metabolic resource allocation. This research helps to understand hymenopteran life history and may facilitate bio-inspired design of steerable surgical needles.

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