Literature DB >> 31674155

Humerus osteology, myology, and finite element structure analysis of Cheloniidae.

Anna Krahl1, Andreas Lipphaus1, Martin P Sander2, Fulvio Maffucci3, Sandra Hochscheid4, Ulrich Witzel1.   

Abstract

Adaptation of osteology and myology lead to the formation of hydrofoil foreflippers in Cheloniidae (all recent sea turtles except Dermochelys coriacea) which are used mainly for underwater flight. Recent research shows the biomechanical advantages of a complex system of agonistic and antagonistic tension chords that reduce bending stress in bones. Finite element structure analysis (FESA) of a cheloniid humerus is used to provide a better understanding of morphology and microanatomy and to link these with the main flipper function, underwater flight. Dissection of a Caretta caretta gave insights into lines of action, that is, the course that a muscle takes between its origin and insertion, of foreflipper musculature. Lines of action were determined by spanning physical threads on a skeleton of Chelonia mydas. The right humerus of this skeleton was micro-CT scanned. Based on the scans, a finite element (FE) model was built and muscle force vectors were entered. Muscle forces were iteratively approximated until a uniform compressive stress distribution was attained. Two load cases, downstroke and upstroke, were computed. We found that muscle wrappings (m. coracobrachialis magnus and brevis, several extensors, humeral head of m. triceps) are crucial in addition to axial loading to obtain homogenous compressive loading in all bone cross-sections. Detailed knowledge on muscle disposition leads to compressive stress distribution in the FE model which corresponds with the bone microstructure. The FE analysis of the cheloniid humerus shows that bone may be loaded mainly by compression if the bending moments are minimized.
© 2019 The Authors. The Anatomical Record published by Wiley Periodicals, Inc. on behalf of American Association of Anatomists.

Entities:  

Keywords:  Cheloniidae; FESA; dissection; humerus; lines of action; micro-CT; muscle forces

Year:  2019        PMID: 31674155     DOI: 10.1002/ar.24311

Source DB:  PubMed          Journal:  Anat Rec (Hoboken)        ISSN: 1932-8486            Impact factor:   2.064


  3 in total

1.  Foreflipper and hindflipper muscle reconstructions of Cryptoclidus eurymerus in comparison to functional analogues: introduction of a myological mechanism for flipper twisting.

Authors:  Anna Krahl; Ulrich Witzel
Journal:  PeerJ       Date:  2021-12-15       Impact factor: 2.984

2.  Determination of muscle strength and function in plesiosaur limbs: finite element structural analyses of Cryptoclidus eurymerus humerus and femur.

Authors:  Anna Krahl; Andreas Lipphaus; P Martin Sander; Ulrich Witzel
Journal:  PeerJ       Date:  2022-06-03       Impact factor: 3.061

3.  Cetaceans Humerus Radiodensity by CT: A Useful Technique Differentiating between Species, Ecophysiology, and Age.

Authors:  Francesco Maria Achille Consoli; Yara Bernaldo de Quirós; Manuel Arbelo; Stefania Fulle; Marco Marchisio; Mario Encinoso; Antonio Fernandez; Miguel A Rivero
Journal:  Animals (Basel)       Date:  2022-07-13       Impact factor: 3.231

  3 in total

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