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  5. The evolutionary history of the Central Asian steppe-desert taxon Nitraria (Nitrariaceae) as revealed by integration of fossil pollen morphology and molecular data.

The evolutionary history of the Central Asian steppe-desert taxon Nitraria (Nitrariaceae) as revealed by integration of fossil pollen morphology and molecular data.

Resource type
Journal article
Creator (person)
Woutersen, Amber
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Jardine, Phillip E
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Silvestro, Daniele
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Bogotá-Angel, Raul Giovanni
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Zhang, Hong-Xiang
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Meijer, Niels
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Bouchal, Johannes
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Barbolini, Natasha
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Dupont-Nivet, Guillaume
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Koutsodendris, Andreas
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Antonelli, Alexandre
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Hoorn, Carina
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Date published
March 1, 2023
Abstract
The transition from a greenhouse to an icehouse world at the Eocene-Oligocene Transition (EOT) coincided with a large decrease of pollen from the steppe-adapted genus Nitraria. This genus, now common along the Mediterranean coast, Asia and Australia, has a proposed coastal origin and a geographically widespread fossil record. Here we investigated the evolution, taxonomic diversity and morphological disparity of Nitraria throughout the Cenozoic by integrating extant taxa and fossil palynological morphotypes into a unified phylogenetic framework based on both DNA sequences and pollen morphological data. We present the oldest fossil pollen grain of Nitraria, at least 53 Myr old. This fossil was found in Central Asian deposits, providing new evidence for its origin in this area. We found that the EOT is an evolutionary bottleneck for Nitraria, coinciding with retreat of the proto-Paratethys Sea, a major global cooling event and a turnover in Central Asian steppe vegetation. We infer the crown age of modern Nitraria spp. to be significantly younger (Miocene) than previously estimated (Palaeocene). The diversity trajectory of Nitraria inferred from extant-only taxa differs markedly from one that also considers extinct taxa. Our study demonstrates it is therefore critical to apply an integrative approach to fully understand the plant evolutionary history of Nitrariaceae.
Project(s)
Priority 2: Trait Diversity and Function
Funder
Funder nameAwards
European Research Council, European Union
Monsoons in Asia caused Greenhouse to Icehouse Cooling (MAGIC) 649081
Chinese Academy of Sciences, China
President’s International Fellowship Initiative, grant no. 2018VBA0038
Schweizerischer Nationalfonds zur Förderung der Wissenschaftlichen Forschung, Switzerland
PCEFP3_187012; FN-1749
Vetenskapsrådet, Sweden
VR: 2019-04739
Royal Botanic Gardens, Kew, United Kingdom
Deutsche Forschungsgemeinschaft, GErmany
DFG grant 443701866 - DFG grant KO4960/4
Stiftelsen för Strategisk Forskning, Sweden
Journal title
Botanical Journal of the Linnean Society
Article number
boac050
Publisher
Oxford University Press (OUP)
Place of publication
Oxford, UK
ISSN
0024-4074
eISSN
1095-8339
Date accepted
October 11, 2022
Official URL
https://doi.org/10.1093/botlinnean/boac050
Rights statement
In Copyright
DOI
10.1093/botlinnean/boac050
Keywords
Pollen morphology
SEM
Evolutionary history
Fossil pollen
Nitraria
Desert
Light microscopy
Phylogeny
Eurasian steppe
Tibetan Plateau
Additional information
IF = 2.911 (2022-2023)
Managed by the British Library and supported by the AHRC

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