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Micro- and nano-structural details of a spider's filter for substrate vibrations: relevance for low-frequency signal transmission

The metatarsal lyriform organ of the Central American wandering spider Cupiennius salei is its most sensitive vibration detector. It is able to sense a wide range of vibration stimuli over four orders of magnitude in frequency between at least as low as 0.1 Hz and several kilohertz. Transmission of...

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Detalles Bibliográficos
Autores principales: Erko, Maxim, Younes-Metzler, Osnat, Rack, Alexander, Zaslansky, Paul, Young, Seth L., Milliron, Garrett, Chyasnavichyus, Marius, Barth, Friedrich G., Fratzl, Peter, Tsukruk, Vladimir, Zlotnikov, Igor, Politi, Yael
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4345480/
https://www.ncbi.nlm.nih.gov/pubmed/25631567
http://dx.doi.org/10.1098/rsif.2014.1111
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author Erko, Maxim
Younes-Metzler, Osnat
Rack, Alexander
Zaslansky, Paul
Young, Seth L.
Milliron, Garrett
Chyasnavichyus, Marius
Barth, Friedrich G.
Fratzl, Peter
Tsukruk, Vladimir
Zlotnikov, Igor
Politi, Yael
author_facet Erko, Maxim
Younes-Metzler, Osnat
Rack, Alexander
Zaslansky, Paul
Young, Seth L.
Milliron, Garrett
Chyasnavichyus, Marius
Barth, Friedrich G.
Fratzl, Peter
Tsukruk, Vladimir
Zlotnikov, Igor
Politi, Yael
author_sort Erko, Maxim
collection PubMed
description The metatarsal lyriform organ of the Central American wandering spider Cupiennius salei is its most sensitive vibration detector. It is able to sense a wide range of vibration stimuli over four orders of magnitude in frequency between at least as low as 0.1 Hz and several kilohertz. Transmission of the vibrations to the slit organ is controlled by a cuticular pad in front of it. While the mechanism of high-frequency stimulus transfer (above ca 40 Hz) is well understood and related to the viscoelastic properties of the pad's epicuticle, it is not yet clear how low-frequency stimuli (less than 40 Hz) are transmitted. Here, we study how the pad material affects the pad's mechanical properties and thus its role in the transfer of the stimulus, using a variety of experimental techniques, such as X-ray micro-computed tomography for three-dimensional imaging, X-ray scattering for structural analysis, and atomic force microscopy and scanning electron microscopy for surface imaging. The mechanical properties were investigated using scanning acoustic microscopy and nanoindentation. We show that large tarsal deflections cause large deformation in the distal highly hydrated part of the pad. Beyond this region, a sclerotized region serves as a supporting frame which resists the deformation and is displaced to push against the slits, with displacement values considerably scaled down to only a few micrometres. Unravelling the structural arrangement in such specialized structures may provide conceptual ideas for the design of new materials capable of controlling a technical sensor's specificity and selectivity, which is so typical of biological sensors.
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spelling pubmed-43454802015-03-11 Micro- and nano-structural details of a spider's filter for substrate vibrations: relevance for low-frequency signal transmission Erko, Maxim Younes-Metzler, Osnat Rack, Alexander Zaslansky, Paul Young, Seth L. Milliron, Garrett Chyasnavichyus, Marius Barth, Friedrich G. Fratzl, Peter Tsukruk, Vladimir Zlotnikov, Igor Politi, Yael J R Soc Interface Research Articles The metatarsal lyriform organ of the Central American wandering spider Cupiennius salei is its most sensitive vibration detector. It is able to sense a wide range of vibration stimuli over four orders of magnitude in frequency between at least as low as 0.1 Hz and several kilohertz. Transmission of the vibrations to the slit organ is controlled by a cuticular pad in front of it. While the mechanism of high-frequency stimulus transfer (above ca 40 Hz) is well understood and related to the viscoelastic properties of the pad's epicuticle, it is not yet clear how low-frequency stimuli (less than 40 Hz) are transmitted. Here, we study how the pad material affects the pad's mechanical properties and thus its role in the transfer of the stimulus, using a variety of experimental techniques, such as X-ray micro-computed tomography for three-dimensional imaging, X-ray scattering for structural analysis, and atomic force microscopy and scanning electron microscopy for surface imaging. The mechanical properties were investigated using scanning acoustic microscopy and nanoindentation. We show that large tarsal deflections cause large deformation in the distal highly hydrated part of the pad. Beyond this region, a sclerotized region serves as a supporting frame which resists the deformation and is displaced to push against the slits, with displacement values considerably scaled down to only a few micrometres. Unravelling the structural arrangement in such specialized structures may provide conceptual ideas for the design of new materials capable of controlling a technical sensor's specificity and selectivity, which is so typical of biological sensors. The Royal Society 2015-03-06 /pmc/articles/PMC4345480/ /pubmed/25631567 http://dx.doi.org/10.1098/rsif.2014.1111 Text en http://creativecommons.org/licenses/by/4.0/ © 2015 The Authors. Published by the Royal Society under the terms of the Creative Commons Attribution License http://creativecommons.org/licenses/by/4.0/, which permits unrestricted use, provided the original author and source are credited.
spellingShingle Research Articles
Erko, Maxim
Younes-Metzler, Osnat
Rack, Alexander
Zaslansky, Paul
Young, Seth L.
Milliron, Garrett
Chyasnavichyus, Marius
Barth, Friedrich G.
Fratzl, Peter
Tsukruk, Vladimir
Zlotnikov, Igor
Politi, Yael
Micro- and nano-structural details of a spider's filter for substrate vibrations: relevance for low-frequency signal transmission
title Micro- and nano-structural details of a spider's filter for substrate vibrations: relevance for low-frequency signal transmission
title_full Micro- and nano-structural details of a spider's filter for substrate vibrations: relevance for low-frequency signal transmission
title_fullStr Micro- and nano-structural details of a spider's filter for substrate vibrations: relevance for low-frequency signal transmission
title_full_unstemmed Micro- and nano-structural details of a spider's filter for substrate vibrations: relevance for low-frequency signal transmission
title_short Micro- and nano-structural details of a spider's filter for substrate vibrations: relevance for low-frequency signal transmission
title_sort micro- and nano-structural details of a spider's filter for substrate vibrations: relevance for low-frequency signal transmission
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4345480/
https://www.ncbi.nlm.nih.gov/pubmed/25631567
http://dx.doi.org/10.1098/rsif.2014.1111
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