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Biology subjects

Bicknell, R. D. C.

Publications and source records attributed to Bicknell, R. D. C..

3 recordsLinked to original sources

Unique pattern of injuries in Olenoides serratus from the Burgess Shale elucidate moulting process in trilobites

Ecdysozoans is one of the most abundant and diverse groups of metazoans and grow through moulting the rigid exoskeleton that provided protection. But the moulting process is often dangerous, resulting in malformations or death. Injuries have been well documented in the calcitic exoskeleton of trilobites, some of which have been attributed to moulting complications when long spines are deformed. Injuries in trilobites are often found in the trunk rather than the cephalon, and abnormal genal spines are rarely documented. Here we examine injuries in eleven specimens of Olenoides serratus from the Burgess Shale (Cambrian, Wuluian) and demonstrate an increased frequency of genal spine malformations compared to other trilobites. The unusual pattern of malformations may be attributed to moulting injuries of the long and delicate genal spines in O. serratus. To moult, trilobites curved ventrally to press the anterior margin of their cephalon into the substrate and open the facial sutures. This process exerted force on the librigenae. To exit the exuvia, the genal spines were forced to bend as the old librigenae dipped ventrally along the anterior edge, resulting in the injured genal spines in O. serratus. A similar process of moulting resulting in injuries may be seen in other early Euarthropods.

paleontology↗

Complex interplay of biomechanics and ecology influenced crab claw morphology evolution

True crabs (Brachyura) are among the most iconic marine arthropods, representing noteworthy examples of morphological and ecological disparity. A striking feature of brachyurans are their anterior pincer-like appendages: chelipeds. These structures showcase a large diversity of morphologies that reflect ecology and overall multifunctionality. Yet, a comprehensive assessment of appendage functional morphology within phylogenetic and ecological trait contexts has never been attempted. By combining 3D geometric morphometrics, finite element analyses, multilocus molecular phylogeny, and ecological trait data for 80 crab species, including three fossil forms, we unveil a complex evolutionary history for crab chelipeds. Despite extreme shape diversity amongst chelipeds, stress distributions are very similar across taxa and hint a many-to-one pattern. High concentrations of chelipeds within constrained morphospace regions associated with peak pinch forces illustrates that brachyuran morphologies optimised for shell crushing may have arisen in the Cretaceous. Deviations from this morphospace highlight the diversification of non-shell-crushing life modes and the influence of sexual selection on appendages. Neither cheliped shape nor pinch force show phylogenetic signal. Together these results indicate that the evolution of cheliped shape is closely associated with, and inferred to have been strongly influenced by, crab ecology, biomechanical needs and sexual selection. SIGNIFICANCE STATEMENTChelipeds, the pincer-like claws of crabs, are among the most morphologically diverse appendages within Arthropoda, yet the evolutionary forces driving this diversity remain poorly understood. By integrating 3D geometric morphometrics, biomechanical modelling, molecular phylogeny, and ecological data across 80 crab species including fossil forms, we demonstrate that cheliped morphology is driven by ecology, biomechanical demands, and sexual selection rather than phylogenetic relatedness. The multifunctionality of these structures produces strong evidence for many-to-one mapping of form to function. Morphologies optimised for durophagy appear to have originated in the Cretaceous, with subsequent diversification into manipulative and sexually selected forms from a morphologically flexible foundation. These findings demonstrate that cheliped diversity reflects a complex interplay between ecological specialisation, biomechanical optimisation, and sexual selection across Brachyura.

ecology↗

On the recovery of malformed horseshoe crabs across multiple moulting stages

Malformed horseshoe crabs have been documented for over a century. However, most of these records are anecdotal observations of often striking morphologies recorded in isolation. There is therefore little understanding of how malformations are manifested and how they can develop in the group. Here we consider the moult sequences of three extant Limulus polyphemus individuals to explore different patterns of malformation development. One specimen with an injured telson demonstrates a gradual recovery of the telson section over three moulting events. The second individual demonstrates a fused thoracetron-telson articulation with a hole for the telson. This individual shows consistent growth of a reduced telson across moults. The third individual shows a thoracetronic injury incurred during at least moult-stage 7 that shows no evidence of recovery over five moulting stages. These records illustrate that horseshoe crab malformation recovery is far more complicated than previously thought. This also suggests that unless an exoskeletal section has functional morphological importance (i.e., the telson), the region is unlikely to recover from an older malformation. From a conservation standpoint, the ability or inability to fully recover from injury affects a horseshoe crabs ability to survive and/or reproduce in the wild particularly if the injury affects the telson. Given the global decline in horseshoe crab populations and conservation efforts underway, the extent of injuries in extant populations of horseshoe crabs may affect population recovery and should be considered.

ecology↗