Skip to main content

ETHNOS_APP

Home • Search • Journals • List 0

Nicole L Griffin

Biographic Data

ID3072596
NAMENicole L Griffin
GIVEN NAMESNicole L
FAMILY NAMEGriffin
SIGNATUREGRIFFIN N L
AFFILIATIONSTemple University
VERIFIEDNo
TOTAL WORKS11
TOTAL CITATIONS106
AUTHOR COUNT11
EDITOR COUNT0
FIRST PUBLICATION YEAR2008
LATEST PUBLICATION YEAR2020
H-INDEX7
  • The upper limb of Paranthropus boisei from Ileret, Kenya

    Open Access•Brian G Richmond, David J Green et al.•ARTICLE•Journal of Human Evolution•2020•Cited by: 16•References: 58

  • Cross-sectional properties of the humeral diaphysis of Paranthropus boisei: Implications for upper limb function

    Open Access•Michael R Lague, Habiba Chirchir et al.•ARTICLE•Journal of Human Evolution•2019•Cited by: 7•References: 109

  • Humeral anatomy of the KNM-ER 47000 upper limb skeleton from Ileret, Kenya: Implications for taxonomic identification

    Open Access•Michael R Lague, Habiba Chirchir et al.•ARTICLE•Journal of Human Evolution•2019•Cited by: 8•References: 57

  • Inter-ray variation in metatarsal strength properties in humans and African apes: Implications for inferring bipedal biomechanics in the Olduvai Hominid 8 foot

    Open Access•B A Patel, Tea Jashashvili et al.•ARTICLE•Journal of Human Evolution•2018•Cited by: 7•References: 65

  • Scapular anatomy of Paranthropus boisei from Ileret, Kenya

    Open Access•David J Green, Habiba Chirchir et al.•ARTICLE•Journal of Human Evolution•2018•Cited by: 9•References: 37

  • Understanding the evolution of the windlass mechanism of the human foot from comparative anatomy: Insights, obstacles, and future directions

    Open Access•Nicole L Griffin, Christopher E Miller et al.•ARTICLE•American Journal of Physical…•2015•Cited by: 14•References: 78

    Humans stand alone from other primates in that we propel our bodies forward on a relatively stiff and arched foot and do so by employing an anatomical arrangement of bones and ligaments in the foot that can operate like a “windlass.” This is a significant evolutionary innovation, but it is currently unknown when during hominin evolution this mechanism developed and within what genera or species it originated. The presence of recently discovered f…

  • Joint orientation and function in great ape and human proximal pedal phalanges

    Open Access•Nicole L Griffin, Brian G Richmond•ARTICLE•American Journal of Physical…•2010•Cited by: 9•References: 31

    Previous studies have referred to the degree of dorsal canting of the base of the proximal phalanx as an indicator of human‐like metatarsophalangeal joint function and thus a diagnostic trait of habitual bipedality in the fossil record. Here, we used a simple method to investigate differences in forefoot function on a finer scale. Building on Duncan et al.'s (Am J Phys Anthropol 93 [1994] 67–81) research, we tested whether dorsal canting reflects…

  • Comparative forefoot trabecular bone architecture in extant hominids

    Open Access•Nicole L Griffin, Kristiaan D''Août et al.•ARTICLE•Journal of Human Evolution•2010•Cited by: 23•References: 41

  • Comparative in vivo forefoot kinematics of Homo sapiens and Pan paniscus

    Open Access•Nicole L Griffin, Kristiaan D''Août et al.•ARTICLE•Journal of Human Evolution•2010•Cited by: 11•References: 47

  • Cross-sectional geometric analysis of a foot bone assemblage from Mangaia, Cook Islands

    Open Access•Nicole L Griffin, Adam D Gordon et al.•ARTICLE•HOMO•2008

  • Bone architecture of the hominin second proximal pedal phalanx: A Preliminary Investigation

    Open Access•Nicole L Griffin•ARTICLE•Journal of Human Evolution•2008•Cited by: 2•References: 28

  • Comparative forefoot trabecular bone architecture in extant hominids

    Open Access•Nicole L Griffin, Kristiaan D''Août et al.•ARTICLE•Journal of Human Evolution•2010•Cited by: 23•References: 41

  • The upper limb of Paranthropus boisei from Ileret, Kenya

    Open Access•Brian G Richmond, David J Green et al.•ARTICLE•Journal of Human Evolution•2020•Cited by: 16•References: 58

  • Understanding the evolution of the windlass mechanism of the human foot from comparative anatomy: Insights, obstacles, and future directions

    Open Access•Nicole L Griffin, Christopher E Miller et al.•ARTICLE•American Journal of Physical…•2015•Cited by: 14•References: 78

    Humans stand alone from other primates in that we propel our bodies forward on a relatively stiff and arched foot and do so by employing an anatomical arrangement of bones and ligaments in the foot that can operate like a “windlass.” This is a significant evolutionary innovation, but it is currently unknown when during hominin evolution this mechanism developed and within what genera or species it originated. The presence of recently discovered f…

  • Comparative in vivo forefoot kinematics of Homo sapiens and Pan paniscus

    Open Access•Nicole L Griffin, Kristiaan D''Août et al.•ARTICLE•Journal of Human Evolution•2010•Cited by: 11•References: 47

  • Scapular anatomy of Paranthropus boisei from Ileret, Kenya

    Open Access•David J Green, Habiba Chirchir et al.•ARTICLE•Journal of Human Evolution•2018•Cited by: 9•References: 37

  • Joint orientation and function in great ape and human proximal pedal phalanges

    Open Access•Nicole L Griffin, Brian G Richmond•ARTICLE•American Journal of Physical…•2010•Cited by: 9•References: 31

    Previous studies have referred to the degree of dorsal canting of the base of the proximal phalanx as an indicator of human‐like metatarsophalangeal joint function and thus a diagnostic trait of habitual bipedality in the fossil record. Here, we used a simple method to investigate differences in forefoot function on a finer scale. Building on Duncan et al.'s (Am J Phys Anthropol 93 [1994] 67–81) research, we tested whether dorsal canting reflects…

  • Humeral anatomy of the KNM-ER 47000 upper limb skeleton from Ileret, Kenya: Implications for taxonomic identification

    Open Access•Michael R Lague, Habiba Chirchir et al.•ARTICLE•Journal of Human Evolution•2019•Cited by: 8•References: 57

  • Cross-sectional properties of the humeral diaphysis of Paranthropus boisei: Implications for upper limb function

    Open Access•Michael R Lague, Habiba Chirchir et al.•ARTICLE•Journal of Human Evolution•2019•Cited by: 7•References: 109

  • Inter-ray variation in metatarsal strength properties in humans and African apes: Implications for inferring bipedal biomechanics in the Olduvai Hominid 8 foot

    Open Access•B A Patel, Tea Jashashvili et al.•ARTICLE•Journal of Human Evolution•2018•Cited by: 7•References: 65

  • Bone architecture of the hominin second proximal pedal phalanx: A Preliminary Investigation

    Open Access•Nicole L Griffin•ARTICLE•Journal of Human Evolution•2008•Cited by: 2•References: 28

  • Cross-sectional geometric analysis of a foot bone assemblage from Mangaia, Cook Islands

    Open Access•Nicole L Griffin, Adam D Gordon et al.•ARTICLE•HOMO•2008

  • Bone architecture of the hominin second proximal pedal phalanx: A Preliminary Investigation

    Open Access•Nicole L Griffin•ARTICLE•Journal of Human Evolution•2008•Cited by: 2•References: 28

  • Joint orientation and function in great ape and human proximal pedal phalanges

    Open Access•Nicole L Griffin, Brian G Richmond•ARTICLE•American Journal of Physical…•2010•Cited by: 9•References: 31

    Previous studies have referred to the degree of dorsal canting of the base of the proximal phalanx as an indicator of human‐like metatarsophalangeal joint function and thus a diagnostic trait of habitual bipedality in the fossil record. Here, we used a simple method to investigate differences in forefoot function on a finer scale. Building on Duncan et al.'s (Am J Phys Anthropol 93 [1994] 67–81) research, we tested whether dorsal canting reflects…

  • Comparative forefoot trabecular bone architecture in extant hominids

    Open Access•Nicole L Griffin, Kristiaan D''Août et al.•ARTICLE•Journal of Human Evolution•2010•Cited by: 23•References: 41

  • Comparative in vivo forefoot kinematics of Homo sapiens and Pan paniscus

    Open Access•Nicole L Griffin, Kristiaan D''Août et al.•ARTICLE•Journal of Human Evolution•2010•Cited by: 11•References: 47

  • Understanding the evolution of the windlass mechanism of the human foot from comparative anatomy: Insights, obstacles, and future directions

    Open Access•Nicole L Griffin, Christopher E Miller et al.•ARTICLE•American Journal of Physical…•2015•Cited by: 14•References: 78

    Humans stand alone from other primates in that we propel our bodies forward on a relatively stiff and arched foot and do so by employing an anatomical arrangement of bones and ligaments in the foot that can operate like a “windlass.” This is a significant evolutionary innovation, but it is currently unknown when during hominin evolution this mechanism developed and within what genera or species it originated. The presence of recently discovered f…

  • Inter-ray variation in metatarsal strength properties in humans and African apes: Implications for inferring bipedal biomechanics in the Olduvai Hominid 8 foot

    Open Access•B A Patel, Tea Jashashvili et al.•ARTICLE•Journal of Human Evolution•2018•Cited by: 7•References: 65

  • Scapular anatomy of Paranthropus boisei from Ileret, Kenya

    Open Access•David J Green, Habiba Chirchir et al.•ARTICLE•Journal of Human Evolution•2018•Cited by: 9•References: 37

  • Cross-sectional properties of the humeral diaphysis of Paranthropus boisei: Implications for upper limb function

    Open Access•Michael R Lague, Habiba Chirchir et al.•ARTICLE•Journal of Human Evolution•2019•Cited by: 7•References: 109

  • Humeral anatomy of the KNM-ER 47000 upper limb skeleton from Ileret, Kenya: Implications for taxonomic identification

    Open Access•Michael R Lague, Habiba Chirchir et al.•ARTICLE•Journal of Human Evolution•2019•Cited by: 8•References: 57

  • The upper limb of Paranthropus boisei from Ileret, Kenya

    Open Access•Brian G Richmond, David J Green et al.•ARTICLE•Journal of Human Evolution•2020•Cited by: 16•References: 58

Anatomy (11 works) · Biology (11 works) · Anatomy (10 works) · Primate Behavior and Ecology (9 works) · Paleontology (8 works) · Paleontology (7 works) · Pleistocene-Era Hominins and Archaeology (7 works) · Australopithecus (6 works) · Bipedalism (6 works) · Geography (6 works)

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