Skip to main content

ETHNOS_APP

Home • Search • Journals • List 0

In vivo bone strain and bone functional adaptation

Bibliographic Data

ID8318541
AuthorsBrigitte Demes (Stony Brook University, corresponding author)
Year2007
Volume133
Issue1
Pages717-722
Publication date2007-05-01
Peer ReviewedYes
Open AccessYes
TypeARTICLE
VenueAmerican Journal of Physical Anthropology (JOURNAL)
Journal identifiersISSN: 0002-9483 • E-ISSN: 1096-8644
PublisherWiley (PUBLISHER • GB)
DOI10.1002/ajpa.20584
PMID17330893
OpenAlexW1972905027
LanguageEN
Citations received16
References cited33

Mechanistic interpretations of bone cross‐sectional shapes are based on the paradigm of shape optimization such that bone offers maximum mechanical resistance with a minimum of material. Recent in vivo strain studies (Demes et al., Am J Phys Anthropol 106 (1998) 87–100, Am J Phys Anthropol 116 (2001) 257–265; Lieberman et al., Am J Phys Anthropol 123 (2004) 156–171) have questioned these interpretations by demonstrating that long bones diaphyses are not necessarily bent in planes in which they offer maximum resistance to bending. Potential limitations of these in vivo studies have been pointed out by Ruff et al. (Am J Phys Anthropol 129 (2006) 484–498). It is demonstrated here that two loading scenarios, asymmetric bending and buckling, would indeed not lead to correct predictions of loads from strain. It is also shown that buckling is of limited relevance for many primate long bones. This challenges a widely held view that circular bone cross sections make loading directions unpredictable for bones which is based on a buckling load model. Asymmetric bending is a potentially confounding factor for bones with directional differences in principal area moments ( I max > I min ). Mathematical corrections are available and should be applied to determine the bending axis in such cases. It is concluded that loads can be reliably extrapolated from strains. More strain studies are needed to improve our understanding of the relationships between activities, bone loading regimes associated with them, and the cross‐sectional geometry of bones. Am J Phys Anthropol, 2007. © 2007 Wiley‐Liss, Inc

Bending · Bent molecular geometry · Biology · Composite material · Strain (injury) · Anatomy · Bone health and osteoporosis research · Materials Science · Morphological variations and asymmetry · Primate Behavior and Ecology

  • Early urbanization and mobility at Tell Brak, NE Syria

    Open Access•A Sołtysiak•HOMO•2015

  • Habitual Activity in Pre-industrial Rural and Urban Dutch Populations

    Jaap Saers, Jaap P P Saers et al.•Bioarchaeology International•2017

  • Can hominin ‘handedness’ be accurately assessed

    Open Access•Lisa Cashmore•Annals of Human Biology•2009

  • A comparative analysis of fetal to subadult femoral midshaft bone distribution of prehistoric Jomon hunter-gatherers and modern Japanese

    Open Access•Soichiro Mizushima, Gen Suwa et al.•Anthropological Science•2016

  • Levels of Intraspecific Variation Within the Catarrhine Skeleton

    Open Access•L T Buck, Jay T Stock et al.•International Journal of…•2010

  • Masticatory stress and the mechanics of “wishboning” in colobine jaws

    Open Access•David J Daegling, W S Mcgraw•American Journal of Physical…•2009

  • Functional morphology in the pages of the Ajpa

    Open Access•C B Ruff•American Journal of Physical…•2018

  • Birth is but our death begun

    Open Access•Gwen Robbins Schug, Haviva M Goldman•American Journal of Physical…•2014

  • Utility of osteon circularity for determining species and interpreting load history in primates and nonprimates

    Open Access•Kendra E Keenan, Chad S Mears et al.•American Journal of Physical…•2017

  • Genetic variations and physical activity as determinants of limb bone morphology

    Open Access•Ian J Wallace, Steven M Tommasini et al.•American Journal of Physical…•2012

  • From the ground up

    Open Access•T K Nalley, K L Lewton•American Journal of Physical…•2015

  • Articular constraint, handedness, and directional asymmetry in the human second metacarpal

    Open Access•Richard A Lazenby, David M L Cooper et al.•Journal of Human Evolution•2008

  • Cross-sectional properties of the humeral diaphysis of Paranthropus boisei

    Open Access•Michael R Lague, Habiba Chirchir et al.•Journal of Human Evolution•2019

  • Relative leg-to-arm skeletal strength proportions in orangutans by species and sex

    Open Access•Alexandra E Kralick, Babette S Zemel et al.•Journal of Human Evolution•2024

  • In vivo bone strain in the mandibular corpus of Sapajus during a range of oral food processing behaviors

    Open Access•Callum F Ro, Jose Iriarte-Diaz et al.•Journal of Human Evolution•2016

  • Comparison between the Midshaft Cross-sectional Geometry of the Prehistoric Jomon and Modern Japanese Limb Bones in Fetal-infant Developmental Period

    Open Access•Souichiro Mizushima, Gen Suwa et al.•Anthropological Science•2010

  • Bones

    John D Currey•Bones•2002

  • The jump as a fast mode of locomotion in arboreal and terrestrial biotopes

    M M Gunther, Michael Günther et al.•Zeitschrift für Morphologie und…•1991

  • Patterns of strain in the macaque tibia during functional activity

    Open Access•Brigitte Demes, Yi‐Xian Qin et al.•American Journal of Physical…•2001

  • Diaphyseal Cross-sectional Geometry of Near Eastern Middle Palaeolithic Humans

    Open Access•E Trinkaus, C B Ruff•Journal of Archaeological Science•1999

  • Who's afraid of the big bad Wolff

    Open Access•C B Ruff, Christopher Ruff et al.•American Journal of Physical…•2006

  • Predicting long bone loading from cross‐sectional geometry

    Open Access•D E Lieberman, John D Polk et al.•American Journal of Physical…•2004

  • Cross‐sectional geometry of Pecos Pueblo femora and tibiae—A biomechanical investigation

    Open Access•C B Ruff, Wilson C Hayes•American Journal of Physical…•1983

  • Primate cortical bone microstructure

    Open Access•Mitchell B Schaffler, D B Burr•American Journal of Physical…•1984

  • Body size, locomotion, and long bone cross‐sectional geometry in indriid primates

    Open Access•Brigitte Demes, William L Jungers et al.•American Journal of Physical…•1991

  • Investigating the form-function interface in African apes

    Open Access•Kristian J Carlson•American Journal of Physical…•2005

  • Fossil Homo femur from Berg Aukas, northern Namibia

    Open Access•Frederick E Grine, William L Jungers et al.•American Journal of Physical…•1995

  • Estimation of torsional rigidity in primate long bones

    Open Access•David J Daegling•Journal of Human Evolution•2002

  • Takeoff and landing forces of leaping strepsirhine primates

    Open Access•Brigitte Demes, J G Fleagle et al.•Journal of Human Evolution•1999

  • A comparison of primate, carnivoran and rodent limb bone cross-sectional properties

    Open Access•John D Polk, Brigitte Demes et al.•Journal of Human Evolution•2000

  • Long bone cross-sectional dimensions, locomotor adaptations and body size in prosimian primates

    Open Access•Brigitte Demes, William L Jungers•Journal of Human Evolution•1993

  • Sexual dimorphism in human lower limb bone structure

    Open Access•C B Ruff, Christopher Ruff•Journal of Human Evolution•1987

  • Patterns of strain in the macaque ulna during functional activity

    Open Access•Brigitte Demes, Jack T Stern et al.•American Journal of Physical…•1998

Unique citing works16
Citations per year0,89
Citation span2008 - 2024 (17)
Citation velocityrecent
Highly citedNo
Citation typesNeutral: 15

Tools

Open DOISci-Hub
Ethnos_APP • Open Source Project • MIT License • Frontend v2.0.0 • Privacy and Cookies • API Documentation: api.ethnos.app/docs • API Source Code: GitHub • DOI: 10.5281/zenodo.17049435 • Frontend Source Code: GitHub • DOI: 10.5281/zenodo.17050053 • cruz.rio.br • Expectantes Misericordiae