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Quaternary Arctic planktonic foraminifera: morphological differentiation and taxonomic reassessment of subpolar spinose taxa

datacite.subject.sdg13:Ação Climática
datacite.subject.sdg14:Proteger a Vida Marinha
datacite.subject.sdg15:Proteger a Vida Terrestre
dc.contributor.authorCoxall, Helen K.
dc.contributor.authorCronin, Thomas M.
dc.contributor.authorDarling, Kate
dc.contributor.authorHusum, Katrine
dc.contributor.authorHandl, Tamara
dc.contributor.authorHuber, Brian T.
dc.contributor.authorKanvinde, Megh M.
dc.contributor.authorRazmjooei, Mohammad
dc.contributor.authorVermassen, Flor
dc.contributor.authorVoelker, Antje
dc.contributor.authorWeitkamp, Tirza M.
dc.contributor.authorO'Regan, Matt
dc.date.accessioned2026-09-04T13:23:42Z
dc.date.available2026-09-04T13:23:42Z
dc.date.issued2026-08-11
dc.description.abstractPlanktonic foraminifera in the modern Arctic Ocean are dominated by the non-spinose polar species Neogloboquadrina pachyderma. Acmes of two spinose, presumed subpolar taxa in Quaternary central Arctic sediment cores are therefore anomalous, implying significantly different past conditions. Currently the names Turborotalita quinqueloba (Natland) and Turborotalita egelida (Cifelli and Smith) are applied to the subpolar morphotypes, which have been associated with marine isotope stages (MISs) 5 and 11, respectively, although the latest age models challenge this. Besides age uncertainties, a major obstacle to fully interpreting these plankton events is unclear taxonomy, which complicates species identification, core correlations, and paleoenvironmental reconstructions. We address this by analyzing Arctic and sub-Arctic planktonic foraminifera using light and SEM imaging and conducting morphometric analysis. Our results reveal consistent morphological and stratigraphic differences between the two Arctic spinose morphotypes, providing a basis for their taxonomic differentiation. We confirm that the younger morphotype corresponds to T. quinqueloba, characterized by tight coiling; an elongate final chamber overhanging the umbilicus; and, on average, a smaller proloculus. However, the central Arctic forms exhibit overall smaller tests than Nordic Sea counterparts and display smooth, non-encrusted wall textures. The older spinose morphotype is distinguished by larger size, a globular final chamber, an open umbilicus, evolute coiling, and a wider range and larger mean proloculus size. Compared to T. quinqueloba, it also has a lower chamber count and a distinctive wall texture that is never encrusted and characterized by sparse, robust spine bases and occasional linear ridges formed by aligned pustules. Our taxonomic investigation shows that the species name egelida is not appropriate for the older morphotype. We therefore reinstate the original species name exumbilicata, established by Herman in 1974. We highlight several morphospecies that may be confused with exumbilicata and that have contributed, or may contribute, to misassignments: Globigerina atlantisae Cifelli and Smith is consistent with the non-spinose Tenuitellita iota, whereas smooth-walled morphotypes of N. pachyderma that have been conflated with exumbilicata (egelida) can be seen under SEM to have a non-spinose wall. While it remains possible that the exumbilicata morphotype is an ecophenotype of T. quinqueloba, the absence of primary turborotalitid features and possession of some other features seen in the Globigerina falconensis lineage are instead suggestive of genus Globigerina. We here adopt a conservative taxonomic approach, referring to the older morphotype as “Globigerina” exumbilicata, pending future investigation. Our conclusions are outlined in a focused taxonomic framework covering relevant Arctic and subpolar planktonic foraminifera. The latest available biostratigraphic age constraints imply that “G.” exumbilicata is older than 0.44 Ma and younger than 1.8 Ma. It is possible that the “G.” exumbilicata acme represents a polar occupation by planktonic foraminifera in the central Arctic Ocean before ecological dominance by N. pachyderma. These new insights provide a foundation for advancing our understanding of Arctic planktonic foraminiferal evolution, the development of polar ecosystems, and Quaternary climate dynamics.por
dc.identifier.doi10.5194/jm-45-581-2026
dc.identifier.issn2041-4978
dc.identifier.urihttp://hdl.handle.net/10400.1/29398
dc.language.isoeng
dc.peerreviewedyes
dc.publisherCopernicus GmbH
dc.relation.ispartofJournal of Micropalaeontology
dc.rights.urihttp://creativecommons.org/licenses/by/4.0/
dc.titleQuaternary Arctic planktonic foraminifera: morphological differentiation and taxonomic reassessment of subpolar spinose taxaeng
dc.typejournal article
dspace.entity.typePublication
oaire.citation.endPage622
oaire.citation.issue2
oaire.citation.startPage581
oaire.citation.titleJournal Micropalaeontology
oaire.citation.volume45
oaire.versionhttp://purl.org/coar/version/c_970fb48d4fbd8a85
person.familyNameVoelker
person.givenNameAntje
person.identifier2315310
person.identifier.ciencia-idC11E-D8E6-CDFA
person.identifier.orcid0000-0001-6465-6023
person.identifier.ridC-5427-2012
person.identifier.scopus-author-id8784446000
relation.isAuthorOfPublicationbca80a86-eb35-4bca-a4ba-85b53831d69e
relation.isAuthorOfPublication.latestForDiscoverybca80a86-eb35-4bca-a4ba-85b53831d69e

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