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Baumgart L, Schlüter S, Moog M, Schönfeld A, Heß A, Menzel F, Joel AC. The sticky truth: how spider predation success depends on their prey's body surface. J Exp Biol 2025; 228:jeb249347. [PMID: 40302554 DOI: 10.1242/jeb.249347] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Grants] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 07/29/2024] [Accepted: 04/04/2025] [Indexed: 05/02/2025]
Abstract
Spiders are prominent predators for insects, with which they have a close co-evolutionary history. Manifold capture techniques have evolved, with spider webs being one of most well-known traps in the world. Many webs include specialised threads, bearing either glue or cribellate nanofibres as adhesive to capture prey. Some webs, such as the sheet webs of Tarantulae, have no such intricate threads. The adhesion of gluey threads has been extensively studied already, but often on artificial surfaces. However, recent studies discovered that adhesion of cribellate nanofibres increases massively after contact with insect cuticular hydrocarbons (CHCs). This raises the question whether insect CHCs generally influence prey capture. We compared the adhesion of cribellate, ecribellate gluey and ecribellate non-specialised threads to either uncoated or CHC-coated foil, or native prey body surfaces. We found an influence of CHCs on all silken threads, but with different outcomes. CHC presence, its composition as well as the surface structure can impact the final adhesion force positively or negatively, depending on the thread type. In extreme cases, the adhesion was reduced to nearly zero (e.g. for gluey capture threads in contact with real prey). Thus, prey influence on adhesion is not limited to cribellate capture threads, but is a universal influence on adhesion of spider silken capture threads. Future studies should consider both insect surface chemistry and surface structure when assessing the effectiveness of capture thread types in an ecological and evolutionary context.
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Affiliation(s)
- Lucas Baumgart
- RWTH Aachen University, Institute of Zoology, 52074 Aachen, Germany
| | - Sascha Schlüter
- RWTH Aachen University, Institute of Zoology, 52074 Aachen, Germany
- Johannes Gutenberg-University, Institute of Organismic and Molecular Evolution, 55128 Mainz, Germany
| | - Marieke Moog
- RWTH Aachen University, Institute of Zoology, 52074 Aachen, Germany
| | - Annika Schönfeld
- RWTH Aachen University, Institute of Zoology, 52074 Aachen, Germany
| | - Adrian Heß
- Johannes Gutenberg-University, Institute of Organismic and Molecular Evolution, 55128 Mainz, Germany
| | - Florian Menzel
- Johannes Gutenberg-University, Institute of Organismic and Molecular Evolution, 55128 Mainz, Germany
| | - Anna-Christin Joel
- RWTH Aachen University, Institute of Zoology, 52074 Aachen, Germany
- Johannes Gutenberg-University, Institute of Organismic and Molecular Evolution, 55128 Mainz, Germany
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Kreuz J, Michalik P, Wolff JO. Comparative anatomy of the spinneret musculature in cribellate and ecribellate spiders (Araneae). J Morphol 2024; 285:e21670. [PMID: 38361256 DOI: 10.1002/jmor.21670] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Grants] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 09/15/2023] [Revised: 12/07/2023] [Accepted: 12/11/2023] [Indexed: 02/17/2024]
Abstract
Silk production is a prominent characteristic of spiders. The silk is extruded through spigots located on the spinnerets, which are single- to multimembered paired appendages at the end of the abdomen. Most extant spiders have three pairs of spinnerets, and in between either a cribellum (spinning plate) or a colulus (defunct vestigial organ), dividing these spiders into cribellate and ecribellate species. Previous research has shown that cribellate and ecribellate spiders differ not only in the composition of their spinning apparatus but also in the movements of their spinnerets during silk spinning. The objective of this study was to determine whether the differences in spinneret movements are solely due to variations in spinneret shape or whether they are based on differences in muscular anatomy. This was accomplished by analyzing microcomputed tomography scans of the posterior abdomen of each three cribellate and ecribellate species. It was found that the number of muscles did not generally differ between cribellate and ecribellate species, but varied considerably between the species within each of these two groups. Muscle thickness, particularly of the posterior median spinneret, varied slightly between groups, with cribellate spiders exhibiting more robust muscles, possibly to aid in the combing process during cribellar thread production. Interestingly, the vestigial colulus still possesses muscles, that can be homologized with those of the cribellum. This exploration into spinneret anatomy using microcomputed tomography data reveals that despite being small appendages, the spider spinnerets are equipped with a complex musculature that enables them to perform fine-scaled maneuvers to construct different fiber-based materials.
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Affiliation(s)
- Josefine Kreuz
- Evolutionary Biomechanics, Zoological Institute and Museum, University of Greifswald, Greifswald, Germany
| | - Peter Michalik
- Zoological Museum, Zoological Institute and Museum, University of Greifswald, Greifswald, Germany
| | - Jonas O Wolff
- Evolutionary Biomechanics, Zoological Institute and Museum, University of Greifswald, Greifswald, Germany
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Joel AC, Rawal A, Yao Y, Jenner A, Ariotti N, Weissbach M, Adler L, Stafstrom J, Blamires SJ. Physico-chemical properties of functionally adhesive spider silk nanofibres. Biomater Sci 2023; 11:2139-2150. [PMID: 36727424 DOI: 10.1039/d2bm01599d] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 02/03/2023]
Abstract
Currently, synthetic fibre production focuses primarily on high performance materials. For high performance fibrous materials, such as silks, this involves interpreting the structure-function relationship and downsizing to a smaller scale to then harness those properties within synthetic products. Spiders create an array of fibres that range in size from the micrometre to nanometre scale. At about 20 nm diameter spider cribellate silk, the smallest of these silks, is too small to contain any of the typical secondary protein structures of other spider silks, let alone a hierarchical skin-core-type structure. Here, we performed a multitude of investigations to elucidate the structure of cribellate spider silk. These confirmed our hypothesis that, unlike all other types of spider silk, it has a disordered molecular structure. Alanine and glycine, the two amino acids predominantly found in other spider silks, were much less abundant and did not form the usual α-helices and β-sheet secondary structural arrangements. Correspondingly, we characterized the cribellate silk nanofibre to be very compliant. This characterization matches its function as a dry adhesive within the capture threads of cribellate spiders. Our results imply that at extremely small scales there may be a limit reached below which a silk will lose its structural, but not functional, integrity. Nano-sized fibres, such as cribellate silk, thus offer a new opportunity for inspiring the creation of novel scaled-down functional adhesives and nano meta-materials.
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Affiliation(s)
- Anna-Christin Joel
- Department of Biological Sciences, Macquarie University, Sydney, Australia. .,School of Biological, Earth and Environmental Sciences, The University of New South Wales, Sydney, Australia.,Institute of Zoology, RWTH Aachen University, Aachen, Germany
| | - Aditya Rawal
- Mark Wainwright Analytical Centre, University of New South Wales, Sydney, Australia
| | - Yin Yao
- Mark Wainwright Analytical Centre, University of New South Wales, Sydney, Australia
| | - Andrew Jenner
- Mark Wainwright Analytical Centre, University of New South Wales, Sydney, Australia
| | - Nicholas Ariotti
- Mark Wainwright Analytical Centre, University of New South Wales, Sydney, Australia.,Institute for Molecular Bioscience, The University of Queensland, Brisbane, Australia
| | | | - Lewis Adler
- Mark Wainwright Analytical Centre, University of New South Wales, Sydney, Australia
| | - Jay Stafstrom
- School of Biological, Earth and Environmental Sciences, The University of New South Wales, Sydney, Australia.,Department of Neurobiology and Behavior, Cornell University, Ithaca, New York, USA
| | - Sean J Blamires
- School of Biological, Earth and Environmental Sciences, The University of New South Wales, Sydney, Australia.,Mark Wainwright Analytical Centre, University of New South Wales, Sydney, Australia.,School of Mechanical and Mechatronic Engineering, University of Technology Sydney, Sydney, Australia
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Wolff JO. Locomotion and kinematics of arachnids. J Comp Physiol A Neuroethol Sens Neural Behav Physiol 2021; 207:99-103. [PMID: 33738532 PMCID: PMC8046687 DOI: 10.1007/s00359-021-01478-2] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Track Full Text] [Download PDF] [Journal Information] [Subscribe] [Scholar Register] [Received: 02/17/2021] [Revised: 02/19/2021] [Accepted: 02/20/2021] [Indexed: 11/19/2022]
Abstract
A basic feature of animals is the capability to move and disperse. Arachnids are one of the oldest lineages of terrestrial animals and characterized by an octopodal locomotor apparatus with hydraulic limb extension. Their locomotion repertoire includes running, climbing, jumping, but also swimming, diving, abseiling, rolling, gliding and -passively- even flying. Studying the unique locomotor functions and movement ecology of arachnids is important for an integrative understanding of the ecology and evolution of this diverse and ubiquitous animal group. Beyond biology, arachnid locomotion is inspiring robotic engineers. The aim of this special issue is to display the state of the interdisciplinary research on arachnid locomotion, linking physiology and biomechanics with ecology, ethology and evolutionary biology. It comprises five reviews and ten original research reports covering diverse topics, ranging from the neurophysiology of arachnid movement, the allometry and sexual dimorphism of running kinematics, the effect of autotomy or heavy body parts on locomotor efficiency, and the evolution of silk-spinning choreography, to the biophysics of ballooning and ballistic webs. This closes a significant gap in the literature on animal biomechanics.
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Affiliation(s)
- Jonas O Wolff
- Zoological Institute and Museum, University of Greifswald, Loitzer Str. 26, 17489, Greifswald, Germany.
- Department of Biological Sciences, Macquarie University, Sydney, NSW, 2109, Australia.
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