Evaluating the relationship between thoracic form and individual rib cross‐sectional shape

Within the context of human evolution, differences in rib cross‐sectional shape have been explained as a means of preserving equivalent pulmonary function in differently shaped thoraces during respiratory excursions (Jellema et al., 1993.). Relatively flat ribs should then be associated with a narro...

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Published in:The FASEB Journal
Main Author: Eaves‐Johnson, K. Lindsay
Other Authors: Center for Global and Regional Environmental Research, University of Iowa
Format: Article in Journal/Newspaper
Language:English
Published: Wiley 2009
Subjects:
Online Access:http://dx.doi.org/10.1096/fasebj.23.1_supplement.648.3
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spelling crwiley:10.1096/fasebj.23.1_supplement.648.3 2024-06-02T08:09:33+00:00 Evaluating the relationship between thoracic form and individual rib cross‐sectional shape Eaves‐Johnson, K. Lindsay Center for Global and Regional Environmental Research, University of Iowa 2009 http://dx.doi.org/10.1096/fasebj.23.1_supplement.648.3 en eng Wiley http://onlinelibrary.wiley.com/termsAndConditions#vor The FASEB Journal volume 23, issue S1 ISSN 0892-6638 1530-6860 journal-article 2009 crwiley https://doi.org/10.1096/fasebj.23.1_supplement.648.3 2024-05-03T11:29:32Z Within the context of human evolution, differences in rib cross‐sectional shape have been explained as a means of preserving equivalent pulmonary function in differently shaped thoraces during respiratory excursions (Jellema et al., 1993.). Relatively flat ribs should then be associated with a narrower trunk (modern), whereas rounded ribs should accompany a thorax that is transversely broad ("archaic"). This study tests whether the more modest variation in thoracic shape within living humans related to climatic adaptation may also elicit these differences. To test the influence of thoracic form on individual rib cross‐sectional shape, external shape data was collected from the 4th and 8th ribs of males from within two ecogeographically distinct populations: Inuit (n=20) and Zulu (n=20). Overall thoracic shape at each level was characterized using measures modified from Franciscus and Churchill (2002), and external rib shaft molding was used to capture cross‐sectional shape. The 2‐D outline of each cross‐section was acquired using TPS software (Rohlf, 2007). As predicted, the Inuits, with their wider torso, are determined to have statistically significantly rounder ribs, accounted for by greater medio‐lateral dimensions, though not greater cross‐sectional area. Results are presented in the context of climatic adaptation, as well as previous considerations regarding rib shape and resistance to bending. Research funded with generous support from University of Iowa Student Government, UI Graduate Student Senate, Center for Global and Regional Environmental Research, the Stanley ‐UI Foundation Support Organization. Grant Funding Source University of Iowa Student Government, UI Graduate Student Senate, Center for Global and Regional Environmental Research, the Stanley –UI Foundation Support Organization Article in Journal/Newspaper inuit inuits Wiley Online Library The FASEB Journal 23 S1
institution Open Polar
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description Within the context of human evolution, differences in rib cross‐sectional shape have been explained as a means of preserving equivalent pulmonary function in differently shaped thoraces during respiratory excursions (Jellema et al., 1993.). Relatively flat ribs should then be associated with a narrower trunk (modern), whereas rounded ribs should accompany a thorax that is transversely broad ("archaic"). This study tests whether the more modest variation in thoracic shape within living humans related to climatic adaptation may also elicit these differences. To test the influence of thoracic form on individual rib cross‐sectional shape, external shape data was collected from the 4th and 8th ribs of males from within two ecogeographically distinct populations: Inuit (n=20) and Zulu (n=20). Overall thoracic shape at each level was characterized using measures modified from Franciscus and Churchill (2002), and external rib shaft molding was used to capture cross‐sectional shape. The 2‐D outline of each cross‐section was acquired using TPS software (Rohlf, 2007). As predicted, the Inuits, with their wider torso, are determined to have statistically significantly rounder ribs, accounted for by greater medio‐lateral dimensions, though not greater cross‐sectional area. Results are presented in the context of climatic adaptation, as well as previous considerations regarding rib shape and resistance to bending. Research funded with generous support from University of Iowa Student Government, UI Graduate Student Senate, Center for Global and Regional Environmental Research, the Stanley ‐UI Foundation Support Organization. Grant Funding Source University of Iowa Student Government, UI Graduate Student Senate, Center for Global and Regional Environmental Research, the Stanley –UI Foundation Support Organization
author2 Center for Global and Regional Environmental Research, University of Iowa
format Article in Journal/Newspaper
author Eaves‐Johnson, K. Lindsay
spellingShingle Eaves‐Johnson, K. Lindsay
Evaluating the relationship between thoracic form and individual rib cross‐sectional shape
author_facet Eaves‐Johnson, K. Lindsay
author_sort Eaves‐Johnson, K. Lindsay
title Evaluating the relationship between thoracic form and individual rib cross‐sectional shape
title_short Evaluating the relationship between thoracic form and individual rib cross‐sectional shape
title_full Evaluating the relationship between thoracic form and individual rib cross‐sectional shape
title_fullStr Evaluating the relationship between thoracic form and individual rib cross‐sectional shape
title_full_unstemmed Evaluating the relationship between thoracic form and individual rib cross‐sectional shape
title_sort evaluating the relationship between thoracic form and individual rib cross‐sectional shape
publisher Wiley
publishDate 2009
url http://dx.doi.org/10.1096/fasebj.23.1_supplement.648.3
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op_source The FASEB Journal
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ISSN 0892-6638 1530-6860
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op_doi https://doi.org/10.1096/fasebj.23.1_supplement.648.3
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