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Kelly SD, Opell BD, Correa-Garwhal SM. Correlated evolution between orb weaver glue droplets and supporting fibres maintains their distinct biomechanical roles in adhesion. J Evol Biol 2022; 35:879-890. [PMID: 35694995 PMCID: PMC9327512 DOI: 10.1111/jeb.14025] [Citation(s) in RCA: 1] [Impact Index Per Article: 0.5] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 10/01/2021] [Revised: 03/31/2022] [Accepted: 05/04/2022] [Indexed: 12/01/2022]
Abstract
Orb weaving spiders employ a 'silken toolkit' to accomplish a range of tasks, including retaining prey that strike their webs. This is accomplished by a viscous capture spiral thread that features tiny glue droplets, supported by a pair of elastic flagelliform fibres. Each droplet contains a glycoprotein core responsible for adhesion. However, prey retention relies on the integrated performance of multiple glue droplets and their supporting fibres, with previous studies demonstrating that a suspension bridge forms, whose biomechanics sum the adhesive forces of multiple droplets while dissipating the energy of the struggling insect. While the interdependence of the droplet's glycoprotein and flagelliform fibres for functional adhesion is acknowledged, there has been no direct test of this hypothesized linkage between the material properties of each component. Spider mass, which differs greatly across orb weaving species, also has the potential to affect flagelliform fibre and glycoprotein material properties. Previous studies have linked spider mass to capture thread performance but have not examined the relationship between spider mass and thread material properties. We extend earlier studies to examine these relationships in 16 orb weaving species using phylogenetic generalized least squares. This analysis revealed that glycoprotein stiffness (elastic modulus) was correlated with flagelliform fibre stiffness, and that spider mass was related to the glycoprotein volume, flagelliform fibre cross-sectional area and droplets per unit thread length. By shaping the elastic moduli of glycoprotein adhesive and flagelliform fibres, natural selection has maintained the biomechanical integration of this adhesive system.
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Affiliation(s)
- Sean D Kelly
- Department of Biology, San Diego State University, San Diego, California, USA.,Evolution, Ecology, and Organismal Biology Department, University of California Riverside, Riverside, California, USA
| | - Brent D Opell
- Department of Biological Sciences, Virginia Tech, Blacksburg, Virginia, USA
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Nanoscale Material Heterogeneity of Glowworm Capture Threads Revealed by AFM. Molecules 2021; 26:molecules26123500. [PMID: 34201363 PMCID: PMC8226719 DOI: 10.3390/molecules26123500] [Citation(s) in RCA: 2] [Impact Index Per Article: 0.7] [Reference Citation Analysis] [Abstract] [Key Words] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 04/28/2021] [Revised: 05/29/2021] [Accepted: 06/04/2021] [Indexed: 11/17/2022] Open
Abstract
Adhesive materials used by many arthropods for biological functions incorporate sticky substances and a supporting material that operate synergistically by exploiting substrate attachment and energy dissipation. While there has been much focus on the composition and properties of the sticky glues of these bio-composites, less attention has been given to the materials that support them. In particular, as these materials are primarily responsible for dissipation during adhesive pull-off, little is known of the structures that give rise to functionality, especially at the nano-scale. In this study we used tapping mode atomic force microscopy (TM-AFM) to analyze unstretched and stretched glowworm (Arachnocampa tasmaniensis) capture threads and revealed nano-scale features corresponding to variation in surface structure and elastic modulus near the surface of the silk. Phase images demonstrated a high resolution of viscoelastic variation and revealed mostly globular and elongated features in the material. Increased vertical orientation of 11–15 nm wide fibrillar features was observed in stretched threads. Fast Fourier transform analysis of phase images confirmed these results. Relative viscoelastic properties were also highly variable at inter- and intra-individual levels. Results of this study demonstrate the practical usefulness of TM-AFM, especially phase angle imaging, in investigating the nano-scale structures that give rise to macro-scale function of soft and highly heterogeneous materials of both natural and synthetic origins.
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Piorkowski D, Liao CP, Joel AC, Wu CL, Doran N, Blamires SJ, Pugno NM, Tso IM. Adhesion of spider cribellate silk enhanced in high humidity by mechanical plasticization of the underlying fiber. J Mech Behav Biomed Mater 2020; 114:104200. [PMID: 33214109 DOI: 10.1016/j.jmbbm.2020.104200] [Citation(s) in RCA: 5] [Impact Index Per Article: 1.3] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 05/22/2020] [Revised: 10/31/2020] [Accepted: 11/04/2020] [Indexed: 12/20/2022]
Abstract
The disruptive nature of water presents a significant challenge when designing synthetic adhesives that maintain functionality in wet conditions. However, many animal adhesives can withstand high humidity or underwater conditions, and some are even enhanced by them. An understudied mechanism in such systems is the influence of material plasticization by water to induce adhesive work through deformation. Cribellate silk is a dry adhesive used by particular spiders to capture moving prey. It presents as a candidate for testing the water plasticization model as it can remain functional at high humidity despite lacking an aqueous component. We performed herein tensile and adhesion tests on cribellate threads from the spider, Hickmania troglodytes; a spider that lives within wet cave environments. We found that the work of adhesion of its cribellate threads increased as the axial fibre deformed during pull-off experiments. This effect was enhanced when the silk was wetted and as spider body size increased. Dry threads on the other hand were stiff with low adhesion. We rationalized our experiments by a series of scaling law models. We concluded that these cribellate threads operate best when the nanofibrils and axial fibers both contribute to adhesion. Design of future synthetic materials could draw inspiration from how water facilitates, rather than diminishes, cribellate silk adhesion.
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Affiliation(s)
- Dakota Piorkowski
- Department of Life Science, Tunghai University, Taichung, 40704, Taiwan
| | - Chen-Pan Liao
- Department of Life Science, Tunghai University, Taichung, 40704, Taiwan; Department of Biology, National Museum of Natural Science, Taichung, Taiwan
| | - Anna-Christin Joel
- Department of Biological Sciences, Macquarie University, Sydney, Australia; Institute of Biology II, RWTH Aachen University, Aachen, Germany
| | - Chung-Lin Wu
- Center for Measurement Standards, Industrial Technology Research Institute, Hsinchu, Taiwan
| | | | - Sean J Blamires
- Evolution and Ecology Research Centre, University of New South Wales, Sydney, NSW, Australia
| | - Nicola M Pugno
- Laboratory of Bio-Inspired Bionic, Nano Meta Materials & Mechanics, Department of Civil, Environmental and Mechanical Engineering, University of Trento, Via Mesiano 77, I-38123, Trento, Italy; School of Engineering and Materials Science, Queen Mary University, Mile End Rd, London, E1 4NS, UK
| | - I-Min Tso
- Department of Life Science, Tunghai University, Taichung, 40704, Taiwan; Center for Tropical Ecology and Biodiversity, Tunghai University, Taichung, Taiwan.
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Diaz C, Maksuta D, Amarpuri G, Tanikawa A, Miyashita T, Dhinojwala A, Blackledge TA. The moth specialist spider Cyrtarachne akirai uses prey scales to increase adhesion. J R Soc Interface 2020; 17:20190792. [PMID: 31992163 PMCID: PMC7014792 DOI: 10.1098/rsif.2019.0792] [Citation(s) in RCA: 8] [Impact Index Per Article: 2.0] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Grants] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 11/24/2019] [Accepted: 01/06/2020] [Indexed: 11/12/2022] Open
Abstract
Contaminants decrease adhesive strength by interfering with substrate contact. Spider webs adhering to moths present an ideal model to investigate how natural adhesives overcome contamination because moths' sacrificial layer of scales rubs off on sticky silk, facilitating escape. However, Cyrtarachninae spiders have evolved gluey capture threads that adhere well to moths. Cyrtarachne capture threads contain large glue droplets oversaturated with water, readily flowing but also prone to drying out. Here, we compare the spreading and adhesion of Cyrtarachne akirai glue on intact mothwings, denuded cuticle and glass to the glue of a common orb-weaving spider, Larinioides cornutus, to understand how C. akirai glue overcomes dirty surfaces. Videos show that C. akirai's glue spreading accelerates along the underlying moth cuticle after the glue seeps beneath the moth scales-not seen on denuded cuticle or hydrophilic glass. Larinioides cornutus glue droplets failed to penetrate the moth scales, their force of adhesion thus limited by the strength of attachment of scales to the cuticle. The large size and low viscosity of C. akirai glue droplets function together to use the three-dimensional topography of the moth's scales against itself via capillary forces. Infrared spectroscopy shows C. akirai glue droplets readily lose free-flowing water. We hypothesize that this loss of water leads to increased viscosity during spreading, increasing cohesive forces during pull-off. This glue's two-phase behaviour shows how natural selection can leverage a defensive specialization of prey against themselves and highlights a new design principle for synthetic adhesives for adhering to troublesome surfaces.
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Affiliation(s)
- Candido Diaz
- Department of Biology and Integrated Bioscience Program, The University of Akron, OH 44325, USA
| | - Daniel Maksuta
- Department of Biology and Integrated Bioscience Program, The University of Akron, OH 44325, USA
| | - Gaurav Amarpuri
- Department of Polymer Science, The University of Akron, OH 44325, USA
| | - Akio Tanikawa
- Faculty of Agriculture, The University of Tokyo, Bunkyo-ku, Tokyo, Japan
| | - Tadashi Miyashita
- Faculty of Agriculture, The University of Tokyo, Bunkyo-ku, Tokyo, Japan
| | - Ali Dhinojwala
- Department of Polymer Science, The University of Akron, OH 44325, USA
| | - Todd A. Blackledge
- Department of Biology and Integrated Bioscience Program, The University of Akron, OH 44325, USA
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Blamires SJ, Sellers WI. Modelling temperature and humidity effects on web performance: implications for predicting orb-web spider ( Argiope spp.) foraging under Australian climate change scenarios. CONSERVATION PHYSIOLOGY 2019; 7:coz083. [PMID: 31832193 PMCID: PMC6899225 DOI: 10.1093/conphys/coz083] [Citation(s) in RCA: 4] [Impact Index Per Article: 0.8] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Subscribe] [Scholar Register] [Received: 03/25/2019] [Revised: 09/17/2019] [Accepted: 10/01/2019] [Indexed: 05/11/2023]
Abstract
Phenotypic features extending beyond the body, or EPs, may vary plastically across environments. EP constructs, such as spider webs, vary in property across environments as a result of changes to the physiology of the animal or interactions between the environment and the integrity of the material from which the EP is manufactured. Due to the complexity of the interactions between EP constructs and the environment, the impact of climate change on EP functional integrity is poorly understood. Here we used a dynamic model to assess how temperature and humidity influence spider web major ampullate (MA) silk properties. MA silk is the silk that absorbs the impact of prey striking the web, hence our model provides a useful interpretation of web performance over the temperature (i.e. 20-55°C) and humidity (i.e. 15-100%) ranges assessed. Our results showed that extremely high or low humidity had direct negative effects on web capture performance, with changes in temperature likely having indirect effects. Undeniably, the effect of temperature on web architecture and its interactive effect with humidity on web tension and capture thread stickiness need to be factored into any further predictions of plausible climate change impacts. Since our study is the first to model plasticity in an EP construct's functionality and to extrapolate the results to predict climate change impacts, it stands as a template for future studies that endeavour to make predictions about the influence of climate change on animal EPs.
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Affiliation(s)
- S J Blamires
- Evolution & Ecology Research Centre, School of Biological, Earth and Environmental Sciences, The University of New South Wales, Sydney, New South Wales 2052, Australia
- Corresponding author: School of Biological, Earth & Environmental Sciences, The University of New South Wales, Sydney, New South Wales NSW 2052 Australia.
| | - W I Sellers
- School of Earth and Environmental Sciences, The University of Manchester, Williamson Building, Manchester M13 9PL, UK
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