The homogenous alternative to biomineralization: Zn- and Mn-rich materials enable sharp organismal “tools” that reduce force requirements

Abstract We measured hardness, modulus of elasticity, and, for the first time, loss tangent, energy of fracture, abrasion resistance, and impact resistance of zinc- and manganese-enriched materials from fangs, stings and other “tools” of an ant, spider, scorpion and nereid worm. The mechanical prope...

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Autores principales: R. M. S. Schofield, J. Bailey, J. J. Coon, A. Devaraj, R. W. Garrett, M. S. Goggans, M. G. Hebner, B. S. Lee, D. Lee, N. Lovern, S. Ober-Singleton, N. Saephan, V. R. Seagal, D. M. Silver, H. E. Som, J. Twitchell, X. Wang, J. S. Zima, M. H. Nesson
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Publicado: Nature Portfolio 2021
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spelling oai:doaj.org-article:afc60c977a4d4067a63b4947cfde81c52021-12-02T19:10:21ZThe homogenous alternative to biomineralization: Zn- and Mn-rich materials enable sharp organismal “tools” that reduce force requirements10.1038/s41598-021-91795-y2045-2322https://doaj.org/article/afc60c977a4d4067a63b4947cfde81c52021-09-01T00:00:00Zhttps://doi.org/10.1038/s41598-021-91795-yhttps://doaj.org/toc/2045-2322Abstract We measured hardness, modulus of elasticity, and, for the first time, loss tangent, energy of fracture, abrasion resistance, and impact resistance of zinc- and manganese-enriched materials from fangs, stings and other “tools” of an ant, spider, scorpion and nereid worm. The mechanical properties of the Zn- and Mn-materials tended to cluster together between plain and biomineralized “tool” materials, with the hardness reaching, and most abrasion resistance values exceeding, those of calcified salmon teeth and crab claws. Atom probe tomography indicated that Zn was distributed homogeneously on a nanometer scale and likely bound as individual atoms to more than ¼ of the protein residues in ant mandibular teeth. This homogeneity appears to enable sharper, more precisely sculpted “tools” than materials with biomineral inclusions do, and also eliminates interfaces with the inclusions that could be susceptible to fracture. Based on contact mechanics and simplified models, we hypothesize that, relative to plain materials, the higher elastic modulus, hardness and abrasion resistance minimize temporary or permanent tool blunting, resulting in a roughly 2/3 reduction in the force, energy, and muscle mass required to initiate puncture of stiff materials, and even greater force reductions when the cumulative effects of abrasion are considered. We suggest that the sharpness-related force reductions lead to significant energy savings, and can also enable organisms, especially smaller ones, to puncture, cut, and grasp objects that would not be accessible with plain or biomineralized “tools”.R. M. S. SchofieldJ. BaileyJ. J. CoonA. DevarajR. W. GarrettM. S. GoggansM. G. HebnerB. S. LeeD. LeeN. LovernS. Ober-SingletonN. SaephanV. R. SeagalD. M. SilverH. E. SomJ. TwitchellX. WangJ. S. ZimaM. H. NessonNature PortfolioarticleMedicineRScienceQENScientific Reports, Vol 11, Iss 1, Pp 1-23 (2021)
institution DOAJ
collection DOAJ
language EN
topic Medicine
R
Science
Q
spellingShingle Medicine
R
Science
Q
R. M. S. Schofield
J. Bailey
J. J. Coon
A. Devaraj
R. W. Garrett
M. S. Goggans
M. G. Hebner
B. S. Lee
D. Lee
N. Lovern
S. Ober-Singleton
N. Saephan
V. R. Seagal
D. M. Silver
H. E. Som
J. Twitchell
X. Wang
J. S. Zima
M. H. Nesson
The homogenous alternative to biomineralization: Zn- and Mn-rich materials enable sharp organismal “tools” that reduce force requirements
description Abstract We measured hardness, modulus of elasticity, and, for the first time, loss tangent, energy of fracture, abrasion resistance, and impact resistance of zinc- and manganese-enriched materials from fangs, stings and other “tools” of an ant, spider, scorpion and nereid worm. The mechanical properties of the Zn- and Mn-materials tended to cluster together between plain and biomineralized “tool” materials, with the hardness reaching, and most abrasion resistance values exceeding, those of calcified salmon teeth and crab claws. Atom probe tomography indicated that Zn was distributed homogeneously on a nanometer scale and likely bound as individual atoms to more than ¼ of the protein residues in ant mandibular teeth. This homogeneity appears to enable sharper, more precisely sculpted “tools” than materials with biomineral inclusions do, and also eliminates interfaces with the inclusions that could be susceptible to fracture. Based on contact mechanics and simplified models, we hypothesize that, relative to plain materials, the higher elastic modulus, hardness and abrasion resistance minimize temporary or permanent tool blunting, resulting in a roughly 2/3 reduction in the force, energy, and muscle mass required to initiate puncture of stiff materials, and even greater force reductions when the cumulative effects of abrasion are considered. We suggest that the sharpness-related force reductions lead to significant energy savings, and can also enable organisms, especially smaller ones, to puncture, cut, and grasp objects that would not be accessible with plain or biomineralized “tools”.
format article
author R. M. S. Schofield
J. Bailey
J. J. Coon
A. Devaraj
R. W. Garrett
M. S. Goggans
M. G. Hebner
B. S. Lee
D. Lee
N. Lovern
S. Ober-Singleton
N. Saephan
V. R. Seagal
D. M. Silver
H. E. Som
J. Twitchell
X. Wang
J. S. Zima
M. H. Nesson
author_facet R. M. S. Schofield
J. Bailey
J. J. Coon
A. Devaraj
R. W. Garrett
M. S. Goggans
M. G. Hebner
B. S. Lee
D. Lee
N. Lovern
S. Ober-Singleton
N. Saephan
V. R. Seagal
D. M. Silver
H. E. Som
J. Twitchell
X. Wang
J. S. Zima
M. H. Nesson
author_sort R. M. S. Schofield
title The homogenous alternative to biomineralization: Zn- and Mn-rich materials enable sharp organismal “tools” that reduce force requirements
title_short The homogenous alternative to biomineralization: Zn- and Mn-rich materials enable sharp organismal “tools” that reduce force requirements
title_full The homogenous alternative to biomineralization: Zn- and Mn-rich materials enable sharp organismal “tools” that reduce force requirements
title_fullStr The homogenous alternative to biomineralization: Zn- and Mn-rich materials enable sharp organismal “tools” that reduce force requirements
title_full_unstemmed The homogenous alternative to biomineralization: Zn- and Mn-rich materials enable sharp organismal “tools” that reduce force requirements
title_sort homogenous alternative to biomineralization: zn- and mn-rich materials enable sharp organismal “tools” that reduce force requirements
publisher Nature Portfolio
publishDate 2021
url https://doaj.org/article/afc60c977a4d4067a63b4947cfde81c5
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