| Literature DB >> 29618551 |
Stephen Wroe1, William C H Parr2, Justin A Ledogar3, Jason Bourke4, Samuel P Evans5, Luca Fiorenza6, Stefano Benazzi7,8, Jean-Jacques Hublin8, Chris Stringer9, Ottmar Kullmer10, Michael Curry3, Todd C Rae11, Todd R Yokley12.
Abstract
Three adaptive hypotheses have been forwarded to explain the distinctive Neanderthal face: (i) an improved ability to accommodate high anterior bite forces, (ii) more effective conditioning of cold and/or dry air and, (iii) adaptation to facilitate greater ventilatory demands. We test these hypotheses using three-dimensional models of Neanderthals, modern humans, and a close outgroup (Homo heidelbergensis), applying finite-element analysis (FEA) and computational fluid dynamics (CFD). This is the most comprehensive application of either approach applied to date and the first to include both. FEA reveals few differences between H. heidelbergensis, modern humans, and Neanderthals in their capacities to sustain high anterior tooth loadings. CFD shows that the nasal cavities of Neanderthals and especially modern humans condition air more efficiently than does that of H. heidelbergensis, suggesting that both evolved to better withstand cold and/or dry climates than less derived Homo We further find that Neanderthals could move considerably more air through the nasal pathway than could H. heidelbergensis or modern humans, consistent with the propositions that, relative to our outgroup Homo, Neanderthal facial morphology evolved to reflect improved capacities to better condition cold, dry air, and, to move greater air volumes in response to higher energetic requirements.Entities:
Keywords: Homo heidelbergensis; Homo neanderthalensis; computational fluid dynamics; finite-element analysis
Mesh:
Year: 2018 PMID: 29618551 PMCID: PMC5904316 DOI: 10.1098/rspb.2018.0085
Source DB: PubMed Journal: Proc Biol Sci ISSN: 0962-8452 Impact factor: 5.349