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Li T, Robinson LF, MacGilchrist GA, Chen T, Stewart JA, Burke A, Wang M, Li G, Chen J, Rae JWB. Enhanced subglacial discharge from Antarctica during meltwater pulse 1A. Nat Commun 2023; 14:7327. [PMID: 37957152 PMCID: PMC10643554 DOI: 10.1038/s41467-023-42974-0] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [Grants] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 06/07/2023] [Accepted: 10/27/2023] [Indexed: 11/15/2023] Open
Abstract
Subglacial discharge from the Antarctic Ice Sheet (AIS) likely played a crucial role in the loss of the ice sheet and the subsequent rise in sea level during the last deglaciation. However, no direct proxy is currently available to document subglacial discharge from the AIS, which leaves significant gaps in our understanding of the complex interactions between subglacial discharge and ice-sheet stability. Here we present deep-sea coral 234U/238U records from the Drake Passage in the Southern Ocean to track subglacial discharge from the AIS. Our findings reveal distinctively higher seawater 234U/238U values from 15,400 to 14,000 years ago, corresponding to the period of the highest iceberg-rafted debris flux and the occurrence of the meltwater pulse 1A event. This correlation suggests a causal link between enhanced subglacial discharge, synchronous retreat of the AIS, and the rapid rise in sea levels. The enhanced subglacial discharge and subsequent AIS retreat appear to have been preconditioned by a stronger and warmer Circumpolar Deep Water, thus underscoring the critical role of oceanic heat in driving major ice-sheet retreat.
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Affiliation(s)
- Tao Li
- State Key Laboratory of Palaeobiology and Stratigraphy, Nanjing Institute of Geology and Palaeontology, Chinese Academy of Sciences, Nanjing, China.
- School of Earth Sciences, University of Bristol, Bristol, UK.
- Department of Earth and Planetary Sciences, Nanjing University, Nanjing, China.
| | - Laura F Robinson
- School of Earth Sciences, University of Bristol, Bristol, UK
- Department of Environment and Geography, University of York, York, UK
| | - Graeme A MacGilchrist
- Program in Atmospheric and Oceanic Science, Princeton University, Princeton, NJ, USA
- School of Earth and Environmental Sciences, University of St Andrews, St Andrews, UK
| | - Tianyu Chen
- Department of Earth and Planetary Sciences, Nanjing University, Nanjing, China
| | | | - Andrea Burke
- School of Earth and Environmental Sciences, University of St Andrews, St Andrews, UK
| | - Maoyu Wang
- Department of Earth and Planetary Sciences, Nanjing University, Nanjing, China
| | - Gaojun Li
- Department of Earth and Planetary Sciences, Nanjing University, Nanjing, China
| | - Jun Chen
- Department of Earth and Planetary Sciences, Nanjing University, Nanjing, China
| | - James W B Rae
- School of Earth and Environmental Sciences, University of St Andrews, St Andrews, UK
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2
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Rapid northern hemisphere ice sheet melting during the penultimate deglaciation. Nat Commun 2022; 13:3819. [PMID: 35780147 PMCID: PMC9250507 DOI: 10.1038/s41467-022-31619-3] [Citation(s) in RCA: 3] [Impact Index Per Article: 1.5] [Reference Citation Analysis] [Abstract] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 03/04/2022] [Accepted: 06/27/2022] [Indexed: 11/17/2022] Open
Abstract
The rate and consequences of future high latitude ice sheet retreat remain a major concern given ongoing anthropogenic warming. Here, new precisely dated stalagmite data from NW Iberia provide the first direct, high-resolution records of periods of rapid melting of Northern Hemisphere ice sheets during the penultimate deglaciation. These records reveal the penultimate deglaciation initiated with rapid century-scale meltwater pulses which subsequently trigger abrupt coolings of air temperature in NW Iberia consistent with freshwater-induced AMOC slowdowns. The first of these AMOC slowdowns, 600-year duration, was shorter than Heinrich 1 of the last deglaciation. Although similar insolation forcing initiated the last two deglaciations, the more rapid and sustained rate of freshening in the eastern North Atlantic penultimate deglaciation likely reflects a larger volume of ice stored in the marine-based Eurasian Ice sheet during the penultimate glacial in contrast to the land-based ice sheet on North America as during the last glacial. Stalagmites from NW Iberia record the rapid demise of large ice sheets during the penultimate deglaciation, and reveal decadal-scale feedbacks between warming and ice melting.
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Lin Y, Hibbert FD, Whitehouse PL, Woodroffe SA, Purcell A, Shennan I, Bradley SL. A reconciled solution of Meltwater Pulse 1A sources using sea-level fingerprinting. Nat Commun 2021; 12:2015. [PMID: 33795667 PMCID: PMC8016857 DOI: 10.1038/s41467-021-21990-y] [Citation(s) in RCA: 21] [Impact Index Per Article: 7.0] [Reference Citation Analysis] [Abstract] [Key Words] [Grants] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 10/02/2020] [Accepted: 02/17/2021] [Indexed: 02/01/2023] Open
Abstract
The most rapid global sea-level rise event of the last deglaciation, Meltwater Pulse 1A (MWP-1A), occurred ∼14,650 years ago. Considerable uncertainty regarding the sources of meltwater limits understanding of the relationship between MWP-1A and the concurrent fast-changing climate. Here we present a data-driven inversion approach, using a glacio-isostatic adjustment model to invert for the sources of MWP-1A via sea-level constraints from six geographically distributed sites. The results suggest contributions from Antarctica, 1.3 m (0-5.9 m; 95% probability), Scandinavia, 4.6 m (3.2-6.4 m) and North America, 12.0 m (5.6-15.4 m), giving a global mean sea-level rise of 17.9 m (15.7-20.2 m) in 500 years. Only a North American dominant scenario successfully predicts the observed sea-level change across our six sites and an Antarctic dominant scenario is firmly refuted by Scottish isolation basin records. Our sea-level based results therefore reconcile with field-based ice-sheet reconstructions.
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Affiliation(s)
- Yucheng Lin
- Department of Geography, Durham University, Durham, UK.
- Research School of Earth Sciences, Australian National University, ACT, Canberra, Australia.
| | - Fiona D Hibbert
- Research School of Earth Sciences, Australian National University, ACT, Canberra, Australia
- Department of Environment and Geography, University of York, York, UK
| | | | | | - Anthony Purcell
- Research School of Earth Sciences, Australian National University, ACT, Canberra, Australia
| | - Ian Shennan
- Department of Geography, Durham University, Durham, UK
| | - Sarah L Bradley
- Department of Geography, The University of Sheffield, Sheffield, UK
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Wickert AD, Anderson RS, Mitrovica JX, Naylor S, Carson EC. The Mississippi River records glacial-isostatic deformation of North America. SCIENCE ADVANCES 2019; 5:eaav2366. [PMID: 30729164 PMCID: PMC6353627 DOI: 10.1126/sciadv.aav2366] [Citation(s) in RCA: 1] [Impact Index Per Article: 0.2] [Reference Citation Analysis] [Abstract] [Grants] [Track Full Text] [Figures] [Subscribe] [Scholar Register] [Received: 08/29/2018] [Accepted: 12/13/2018] [Indexed: 06/09/2023]
Abstract
The imprint of glacial isostatic adjustment has long been recognized in shoreline elevations of oceans and proglacial lakes, but to date, its signature has not been identified in river long profiles. Here, we reveal that the buried bedrock valley floor of the upper Mississippi River exhibits a 110-m-deep, 300-km-long overdeepening that we interpret to be a partial cast of the Laurentide Ice Sheet forebulge, the ring of flexurally raised lithosphere surrounding the ice sheet. Incision through this forebulge occurred during a single glacial cycle at some time between 2.5 and 0.8 million years before present, when ice-sheet advance forced former St. Lawrence River tributaries in Minnesota and Wisconsin to flow southward. This integrated for the first time the modern Mississippi River, permanently changing continental-scale hydrology and carving a bedrock valley through the migrating forebulge with sediment-poor water. The shape of the inferred forebulge is consistent with an ice sheet ~1 km thick near its margins, similar to the Laurentide Ice Sheet at the Last Glacial Maximum, and provides evidence of the impact of geodynamic processes on geomorphology even in the midst of a stable craton.
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Affiliation(s)
- Andrew D. Wickert
- Department of Earth Sciences and Saint Anthony Falls Laboratory, University of Minnesota, 116 Church St. SE, Minneapolis, MN 55455, USA
| | - Robert S. Anderson
- Institute of Arctic and Alpine Research and Department of Geological Sciences, University of Colorado, 4001 Discovery Dr., Boulder, CO 80303, USA
| | - Jerry X. Mitrovica
- Department of Earth and Planetary Sciences, Harvard University, 20 Oxford St., Cambridge, MA 02138, USA
| | - Shawn Naylor
- Center for Geospatial Data Analysis and Indiana Geological Survey, Indiana University, 611 N. Walnut Grove St., Bloomington, IN 47405, USA
| | - Eric C. Carson
- Wisconsin Geological and Natural History Survey, 3817 Mineral Point Rd., Madison, WI 53705, USA
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Fildani A, Hessler AM, Mason CC, McKay MP, Stockli DF. Late Pleistocene glacial transitions in North America altered major river drainages, as revealed by deep-sea sediment. Sci Rep 2018; 8:13839. [PMID: 30218039 PMCID: PMC6138750 DOI: 10.1038/s41598-018-32268-7] [Citation(s) in RCA: 19] [Impact Index Per Article: 3.2] [Reference Citation Analysis] [Abstract] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 06/20/2018] [Accepted: 08/30/2018] [Indexed: 11/09/2022] Open
Abstract
Sediment eroded from continents during ice ages can be rapidly (<104 years) transferred via rivers to the deep-sea and preserved in submarine fans, becoming a viable record of landscape evolution. We applied chemical weathering proxies and zircon geo-thermo-chronometry to late Pleistocene sediment recovered from the deep-sea Mississippi fan, revealing interactions between the Laurentide ice sheet (LIS) and broader Mississippi-Missouri catchment between ca. 70,000 and 10,000 years ago (70 to 10 ka). Sediment contribution from the Missouri catchment to the Mississippi fan was low between 70 and 30 ka but roughly doubled after the Last Glacial Maximum (LGM). Therefore, pre-LGM glacial advance profoundly altered the vast Missouri drainage through ice dams and/or re-routing of the river, thereby controlling the transfer of continental debris and freshwater toward southern outlets.
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Affiliation(s)
| | | | - Cody C Mason
- Department of Geosciences, University of West Georgia, Corrollton, GA, 30118, USA
| | - Matthew P McKay
- Department of Geography, Geology, and Planning, Missouri State University, Springfield, MO, 65897, USA
| | - Daniel F Stockli
- Jackson School of Geosciences, University of Texas at Austin, Austin, TX, 78713, USA
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Affiliation(s)
- Shaun A Marcott
- Department of Geoscience, University of Wisconsin-Madison, Madison, WI, USA.
| | - Jeremy D Shakun
- Department of Earth and Environmental Sciences, Boston College, Boston, MA, USA.
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Mey J, Scherler D, Wickert AD, Egholm DL, Tesauro M, Schildgen TF, Strecker MR. Glacial isostatic uplift of the European Alps. Nat Commun 2016; 7:13382. [PMID: 27830704 PMCID: PMC5109590 DOI: 10.1038/ncomms13382] [Citation(s) in RCA: 50] [Impact Index Per Article: 6.3] [Reference Citation Analysis] [Abstract] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 03/04/2016] [Accepted: 09/28/2016] [Indexed: 11/15/2022] Open
Abstract
Following the last glacial maximum (LGM), the demise of continental ice sheets induced crustal rebound in tectonically stable regions of North America and Scandinavia that is still ongoing. Unlike the ice sheets, the Alpine ice cap developed in an orogen where the measured uplift is potentially attributed to tectonic shortening, lithospheric delamination and unloading due to deglaciation and erosion. Here we show that ∼90% of the geodetically measured rock uplift in the Alps can be explained by the Earth’s viscoelastic response to LGM deglaciation. We modelled rock uplift by reconstructing the Alpine ice cap, while accounting for postglacial erosion, sediment deposition and spatial variations in lithospheric rigidity. Clusters of excessive uplift in the Rhône Valley and in the Eastern Alps delineate regions potentially affected by mantle processes, crustal heterogeneity and active tectonics. Our study shows that even small LGM ice caps can dominate present-day rock uplift in tectonically active regions. For half a century, the cause for recent uplift of the European Alps has been debated. Here, the authors show that ∼90% of the geodetically measured rock uplift in the Alps can be explained by the Earth’s viscoelastic response to ice melting after the Last Glacial Maximum.
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Affiliation(s)
- Jürgen Mey
- Institut für Erd- und Umweltwissenschaften, Universität Potsdam, 14476 Potsdam, Germany
| | - Dirk Scherler
- Helmholtz Centre Potsdam, GFZ German Research Centre for Geosciences, Telegrafenberg, 14473 Potsdam, Germany.,Institute of Geological Sciences, Freie Universität Berlin, 12249 Berlin, Germany
| | - Andrew D Wickert
- Department of Earth Sciences and Saint Anthony Falls Laboratory, University of Minnesota, Minneapolis, 55455 Minnesota, USA
| | - David L Egholm
- Department of Geoscience, Aarhus University, 8000 Aarhus, Denmark
| | - Magdala Tesauro
- Department of Earth Sciences, Utrecht University, 3508 Utrecht, Netherlands
| | - Taylor F Schildgen
- Institut für Erd- und Umweltwissenschaften, Universität Potsdam, 14476 Potsdam, Germany.,Helmholtz Centre Potsdam, GFZ German Research Centre for Geosciences, Telegrafenberg, 14473 Potsdam, Germany
| | - Manfred R Strecker
- Institut für Erd- und Umweltwissenschaften, Universität Potsdam, 14476 Potsdam, Germany
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Matamoros WA, Hoagstrom CW, Schaefer JF, Kreiser BR. Fish faunal provinces of the conterminous United States of America reflect historical geography and familial composition. Biol Rev Camb Philos Soc 2015; 91:813-32. [PMID: 26031190 DOI: 10.1111/brv.12196] [Citation(s) in RCA: 7] [Impact Index Per Article: 0.8] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 08/20/2014] [Revised: 04/18/2015] [Accepted: 04/28/2015] [Indexed: 11/30/2022]
Abstract
Although the conterminous USA has a long history of ichthyological exploration, the description of biogeographical provinces has been ad hoc. In this study we quantitatively determined fish faunal provinces and interpreted them in the context of the geological history of North America. We also evaluated influences of major river basin occupancy and contemporary environmental factors on provincial patterns. Our data set comprised 794 native fishes, which we used to generate a presence and absence matrix for U.S. Geological Survey (USGS) four-digit hydrologic units. Three nested data sets were analysed separately: primary freshwater families, continental freshwater families (including primary and secondary families) and all freshwater families (including primary, secondary and peripheral families). We used clustering analysis to delimit faunal breaks and one-way analysis of similarity (ANOSIM) to determine significance among clusters (i.e. provinces). We used an indicator-species analysis to identify species that contributed most to province delineations and a similarity-percentage (SIMPER) analysis to describe the relative influence of representatives from each category (i.e. primary, secondary, peripheral) on provincial boundaries. Lastly, we used a parsimony redundancy analysis to determine the roles of historical (i.e. major river basin) and contemporary environmental factors in shaping provinces. Analysis of the nested data sets revealed lessening provincial structure with inclusion of more families. There were 10 primary freshwater provinces, 9 continental freshwater provinces and 7 all freshwater provinces. Major basin occupancy, but not contemporary environmental factors, explained substantial variance in faunal similarities among provinces. However, provincial boundaries did not conform strictly to modern river basins, but reflected river-drainage connections of the Quaternary. Provinces represent broad-scale patterns of endemism and provide a starting point for future studies. Relative malleability of province boundaries in the continental interior highlights this region as biogeographically diverse and dynamic. Interior-core provinces of this region (Central Gulf Coastal Plains, Northern Interior) have not been recognized previously and warrant further study.
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Affiliation(s)
- Wilfredo A Matamoros
- Laboratorio de Helmintología, Instituto de Biología, Universidad Nacional Autónoma de México, Apartado Postal 70-153, 04510 México, D. F., México.,Department of Biological Sciences, The University of Southern Mississippi, 118 College Dr., Box 5018, Hattiesburg, MS 39406, U.S.A.,Coleccion de ctiología, Facultad de Ciencias Biológicas, Universidad de Ciencias y Artes de Chiapas, Libramiento Norte Poniente 1150, Col. Lajas Maciel, C.P. 29039, Tuxtla Gutiérrez, Chiapas, México
| | - Christopher W Hoagstrom
- Department of Zoology, Weber State University, 1415 Edvalson Street, Dept. 2505, Ogden, UT 84408-2505, U.S.A
| | - Jacob F Schaefer
- Department of Biological Sciences, The University of Southern Mississippi, 118 College Dr., Box 5018, Hattiesburg, MS 39406, U.S.A
| | - Brian R Kreiser
- Department of Biological Sciences, The University of Southern Mississippi, 118 College Dr., Box 5018, Hattiesburg, MS 39406, U.S.A
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