Analysis of limb movement synchronization in primates locomotion

Authors

  • Zofia Sikorska-Piwowska Department of Descriptive and Clinical Anatomy, Centre of Biostructure Research, Medical University of Warsaw, Poland
  • Piotr Śliwka Department of Mathematics and Natural Sciences, Cardinal Stefan Wyszyński University, Warsaw, Poland
  • Bogdan Ciszek Department of Descriptive and Clinical Anatomy, Centre of Biostructure Research, Medical University of Warsaw, Poland

DOI:

https://doi.org/10.2478/anre-2018-0036

Keywords:

evolution process of primates bipedality, vector analysis, hierarchical cluster analysis, pattern of movements, treatment of human paraplegia and paraparesis

Abstract

The authors present an original mathematical model based on features identified with discrete variables using vector and hierarchical cluster analysis in primates locomotion. Proposed model allows to formalize and analyze the synchronization variability of movements in given locomotion types of adaptation and specialization in monkeys, apes and humans. The material covers observations of 102 forms including 9 species of primates: the chimpanzee, bonobo, orangutan, gibbon, gelada, mandrill, brown capuchin and ring–tailed lemur. The studies included also the synchronization of locomotory movements in man. The sequences of moves of pectoral and pelvic limbs, right and left, were studied in four categories: walking, running, jumping and brachiation. The locomotion movements depend on the brain centers and allow to find phylogenetic relations between examined forms in the evolution process.

The knowledge of the pattern of movements is used in the treatment of paraplegia and paraparesis in humans.

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References

van den Brand R, Mignardot JB, von Zitzewitz, J, Le Goff C, Fumeaux N, Wagner F, et all. 2015. Neuroprosthetic technologies to augment the impact of neurorehabilitation after spinal cord injury. Ann Phys Rehabil Med 58(4):232-7.
View in Google Scholar

Carvalho S, Biro D, Cunha E, Hockings K, McGrew WC, Richmond B et all. 2012. Chimpanzee carrying behaviour and the origins of human bipedality. Curr Biol 22(6):R180–81.
View in Google Scholar

Collins J, Steward I. 1991. Couplet nonlinear oscillator and the symmetries of animal gaits. J Non Sci 3(1):349-92.
View in Google Scholar

Cooper P. 1999. Swinging gibbons. Nature, 29 September doi:10.1038/news990930-6.
View in Google Scholar

Crompton RH, Vereecke EE, Thorpe SK. 2008. Locomotion and posture from the common hominoid ancestor to fully modern hominins, with special reference to the last common panin/hominin ancestor. J of Anat 212(4):501-43.
View in Google Scholar

Dietz V. 2002. Do human bipeds use quadrupedal coordination? Trends Neurosci. 25(9):462-67.
View in Google Scholar

Fleagle JG. 2013. Primate adaptation and evolution. 3rd edition. San Diego: CA Academic Press.
View in Google Scholar

Hildebrand M. 1967. Symmetrical gaits of primates. Am J Phys Anthropol 26:119-30.
View in Google Scholar

Hofstetter A. 2002. Comparative motion analyses of the locomotion of different primate species. Scientific Assistant 5-20.
View in Google Scholar

Kay RF, Ross CF, Williams BA. 1997. Anthropoid origins. Science 275:797–04.
View in Google Scholar

Murtagh F, Legendre P. 2014. Ward’s hierarchical agglomerative clustering method: which algorithms implement Ward’s criterion? J Class 31:274–95.
View in Google Scholar

Osborn ML, Homberger DG. 2015. The Human Shoulder Suspension Apparatus: A Causal Explanation for Bilateral Asymmetry and a Fresh Look at the Evolution of Human Bipedality. Anatomical record (Hoboken). 298(9):1572-88.
View in Google Scholar

Richmond BG, Begun DR, Strait DS. 2001. Origin of human bipedalism: The knuckle-walking hypothesis revisited. Am J Phys Anthropol Suppl 33:70-05.
View in Google Scholar

Ross C, Williams B, Kay RF. 1998. Phylogenetic analysis of anthropoid relationships. J Hum Evol. 35:221–06 [doi:101006/jhev19980254].
View in Google Scholar

Schmitt D. 2003. Insights into the evolution of human bipedalism from experimental studies of humans and other primates. J Exp Biol. 206:1437-48.
View in Google Scholar

Sikorska-Piwowska Z. 1984. Modèle biologique de l’evolution de l’appareil locomoteur des tetrapodes Zool Pol 31(1-4):65-25.
View in Google Scholar

Sikorska-Piwowska Z, Kukwa A. 1974. Conditiormements ontogenetiques des processus de specialisation des membres superieurs chez les primates et chez d’autres mammiferes a partir des etapes d’ossification. Zool Pol. 24(1).
View in Google Scholar

Sikorska-Piwowska Z, Zalewska M, Tomczyk J, Dawidowicz AL, Mańkowska-Pliszka H. 2015. Hominization tendencies in the evolution of primates in multidimensional modeling. Math Applic 43(1):77-93 [doi:1014708/mav43i1632].
View in Google Scholar

Thorndike R. 1953. Who belongs in the family? Psychometrica 18(4):267-276.
View in Google Scholar

Vallois H. 1956. Ordre des primates. Traite de zoologie. Masson et Cie Editeurs Paris. 17(2).
View in Google Scholar

Videan EN, McGrew WC. 2002. Bipedality in chimpanzee (Pan troglodytes) and bonobo (Pan paniscus): testing hypotheses on the evolution of bipedalism. Am J Phys Anthropol 118(2):184-90.
View in Google Scholar

Williams BA, Kay RF, Kirk EC. 2010. New perspectives on anthropoid origins. Proc Nat Acad Sci USA 107(11):4797-04.
View in Google Scholar

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Published

2018-12-30

How to Cite

Sikorska-Piwowska, Z., Śliwka, P., & Ciszek, B. (2018). Analysis of limb movement synchronization in primates locomotion. Anthropological Review, 81(4), 414–422. https://doi.org/10.2478/anre-2018-0036

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