Pular para o conteúdo principal

ETHNOS_APP

Início • Busca • Periódicos • Lista 0

Footloose

Articular surface morphology and joint movement potential in the ankles of lorisids and cheirogaleids

Dados Bibliográficos

ID8317155
AutoresGabriel S Yapuncich (0000-0001-7371-5857, Department of Evolutionary Anthropology Duke University Durham North Carolina USA, autor correspondente), Michael C Granatosky (0000-0002-6465-5386, Department of Anatomy New York Institute of Technology Old Westbury New York USA)
Ano2021
Volume175
Fascículo4
Páginas876-894
Data de publicação2021-08-01
Peer ReviewedSim
Open AccessSim
TipoARTICLE
PeriódicoAmerican Journal of Physical Anthropology (JOURNAL)
Identificadores do periódicoISSN: 0002-9483 • E-ISSN: 1096-8644
EditoraWiley (PUBLISHER • GB)
DOI10.1002/ajpa.24298
PMID33931869
OpenAlexW3159453504
IdiomaEN
Citações recebidas2
Referências citadas70

OBJECTIVES: The competing functional demands of diarthrodial joints, permitting mobility while retaining enough stability to transmit forces across the joint, have been linked with the shape and size of the joint's articular surfaces. A clear understanding of the relationship between joint morphology and joint movement potential is important for reconstructing locomotor behaviors in fossil taxa. METHODS: In a sample of matched tali and calcanei of lorisids (n = 28) and cheirogaleids (n = 38), we quantify the surface areas of the talar and calcaneal ectal (=posterior talocalcaneal) articular surfaces and model the principal curvatures of these surfaces with quadric formulas. These two taxonomic groups have similar body masses, but differ substantially in positional behavior, so that differences in joint surface morphology should reflect adaptive demands of their locomotor behavior. RESULTS: Compared with cheirogaleids, lorisids exhibit: (a) a significantly greater area difference between their paired joint surfaces; and (b) a more pronounced saddle shape for the talar ectal facet. CONCLUSION: The increased subtalar joint mobility observed in lorisids may be achieved by increasing the amount of sliding and rolling that can occur at the subtalar joint. The subtalar joint morphology observed in two fossil euarchontans, the plesiadapiforms Purgatorius sp. and Plesiadapis cookei, compares favorably with the morphology observed among lorisids, potentially suggesting antipronograde postures within these extinct taxa

Ankle · Articular surface · Biology · Geometry · Joint (building) · Morphology (biology) · Structural engineering · Subtalar joint · Surface (topology) · Anatomy · Engineering · Evolution and Paleontology Studies · Geology · Mathematics · Paleontology · Paleontology and Evolutionary Biology · Primate Behavior and Ecology

  • The adaptive function of the human ankle joint complex during walking on uneven terrains with implications for hominin locomotion

    Open Access•Zacchariah M Apolito, Kevin G Palmisano et al.•Journal of Human Evolution•2025

  • Reconstruction of the locomotor repertoire of early primates in the light of astragalar and calcaneal shape

    Open Access•Oriol Monclús-Gonzalo, Oriol Monclús‐gonzalo et al.•Journal of Human Evolution•2025

  • Postcranial adaptation and evolution in lorisidae

    Open Access•Daniel L Gebo•Primates•1989

  • The Mechanical Adaptations of Bones

    John D Currey•Mechanical Adaptations of Bones•1984

  • Rethinking allometry

    Open Access•Richard J Smith•Journal of Theoretical Biology•1980

  • Locomotor Adaptations in Past and Present Prosimian Primates

    Open Access•A Walker•Primate locomotion.•1974

  • Primate Limb Bone Structural Adaptations

    C B Ruff, Jacqueline A Runestad•Annual Review of Anthropology•1992

  • Positional and activity behavior in a captive slow loris

    Open Access•David M Glassman, James P Wells•American Journal of Primatology•1984

  • Locomotor diversity in prosimian primates

    Open Access•Daniel L Gebo•American Journal of Primatology•1987

  • The extinct sloth lemurs of Madagascar

    Open Access•L R Godfrey, William L Jungers•Evolutionary Anthropology Issues…•2003

  • Scaling of postcranial joint size in hominoid primates

    Open Access•William L Jungers•Human Evolution•1991

  • Anatomy of the hominoid wrist joint

    Open Access•Esteban E Sarmiento•International Journal of…•1988

  • Articular structure and function in Hylobates, Colobus , and Papio

    Open Access•Katherine L Rafferty, C B Ruff•American Journal of Physical…•1994

  • Ecological divergence and talar morphology in gorillas

    Open Access•Rachel H Dunn, Rachel Dunn et al.•American Journal of Physical…•2014

  • Comparative 3D quantitative analyses of trapeziometacarpal joint surface curvatures among living catarrhines and fossil hominins

    Open Access•Mary W Marzke, M W Tocheri et al.•American Journal of Physical…•2010

  • Stresses on the limbs of quadrupedal primates

    Open Access•Thomas R Reynolds•American Journal of Physical…•1985

  • Limb joint surface areas and their ratios in Malagasy lemurs and other mammals

    Open Access•L R Godfrey, Michael R Sutherland et al.•American Journal of Physical…•1995

  • Origins of primate locomotion

    Open Access•Daniel Schmitt, Pierre Lemelin•American Journal of Physical…•2002

  • The functional anatomy of the ankle and foot of the slow loris ( Nycticebus coucang )

    Open Access•Theodore I Grand•American Journal of Physical…•1967

  • Evolution of postural diversity in primates as reflected by the size and shape of the medial tibial facet of the talus

    Open Access•Doug M Boyer, Douglas Boyer et al.•American Journal of Physical…•2015

  • Conarticular congruence of the hominoid subtalar joint complex with implications for joint function in Plio‐Pleistocene hominins

    Open Access•T C Prang•American Journal of Physical…•2016

  • Talocrural joint in African hominoids

    Open Access•Bruce Latimer, James C Ohman et al.•American Journal of Physical…•1987

  • Chimpanzee ankle and foot joint kinematics

    Open Access•N B Holowka, M C O''Neill et al.•American Journal of Physical…•2017

  • The calcaneus of Australopithecus afarensis and its implications for the evolution of bipedality

    Open Access•Bruce Latimer, C Owen Lovejoy•American Journal of Physical…•1989

  • New postcranial specimens of catarrhines from the Middle Miocene Chinji Formation, Pakistan

    Open Access•M D Rose•Journal of Human Evolution•1989

  • Takeoff and landing forces of leaping strepsirhine primates

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

  • Hindlimb articular surface allometry in hominoidea and Macaca, with comparisons to diaphyseal scaling

    Open Access•C B Ruff, Christopher Ruff•Journal of Human Evolution•1988

  • Locomotor mechanics of the slender loris (Loris tardigradus)*1

    Open Access•Daniel Schmitt•Journal of Human Evolution•2004

  • Relative joint size and hominoid locomotor adaptations with implications for the evolution of hominid bipedalism

    Open Access•William L Jungers•Journal of Human Evolution•1988

  • Further hominoid postcranial specimens from the Late Miocene Nagri formation of Pakistan

    Open Access•M D Rose•Journal of Human Evolution•1986

  • Body mass in comparative primatology

    Open Access•Richard J Smith, William L Jungers•Journal of Human Evolution•1997

  • The mechanical origins of arm-swinging

    Open Access•Michael C Granatosky, Daniel Schmitt•Journal of Human Evolution•2019

  • Lumbar vertebral morphology of flying, gliding, and suspensory mammals

    Open Access•Michael C Granatosky, Christopher E Miller et al.•Journal of Human Evolution•2014

  • Functional morphology of the lemuriform wrist joints and the relationship between wrist morphology and positional behavior in arboreal primates

    Open Access•Mark W Hamrick•American Journal of Physical…•1996

Obras citantes distintas2
Citações por ano2
Intervalo de citações2025 - 2025 (1)
Velocidade de citaçãorecent
Altamente citadoNão
Tipos de citaçãoNeutras: 2
Ethnos_APP • Projeto Open Source • Licença MIT • Frontend v2.0.0 • Privacidade e Cookies • Documentação da API: api.ethnos.app/docs • Código da API: GitHub • DOI: 10.5281/zenodo.17049435 • Código do Frontend: GitHub • DOI: 10.5281/zenodo.17050053 • cruz.rio.br • Expectantes Misericordiae