TY - JOUR A1 - Tian, Fang A1 - Cao, Xianyong A1 - Dallmeyer, Anne A1 - Lohmann, Gerrit A1 - Zhang, Xu A1 - Ni, Jian A1 - Andreev, Andrei A1 - Anderson, Patricia M. A1 - Lozhkin, Anatoly V. A1 - Bezrukova, Elena A1 - Rudaya, Natalia A1 - Xu, Qinghai A1 - Herzschuh, Ulrike T1 - Biome changes and their inferred climatic drivers in northern and eastern continental Asia at selected times since 40 cal ka BP JF - Vegetation History and Archaeobotany N2 - Recent global warming is pronounced in high-latitude regions (e.g. northern Asia), and will cause the vegetation to change. Future vegetation trends (e.g. the "arctic greening") will feed back into atmospheric circulation and the global climate system. Understanding the nature and causes of past vegetation changes is important for predicting the composition and distribution of future vegetation communities. Fossil pollen records from 468 sites in northern and eastern Asia were biomised at selected times between 40 cal ka bp and today. Biomes were also simulated using a climate-driven biome model and results from the two approaches compared in order to help understand the mechanisms behind the observed vegetation changes. The consistent biome results inferred by both approaches reveal that long-term and broad-scale vegetation patterns reflect global- to hemispheric-scale climate changes. Forest biomes increase around the beginning of the late deglaciation, become more widespread during the early and middle Holocene, and decrease in the late Holocene in fringe areas of the Asian Summer Monsoon. At the southern and southwestern margins of the taiga, forest increases in the early Holocene and shows notable species succession, which may have been caused by winter warming at ca. 7 cal ka bp. At the northeastern taiga margin (central Yakutia and northeastern Siberia), shrub expansion during the last deglaciation appears to prevent the permafrost from thawing and hinders the northward expansion of evergreen needle-leaved species until ca. 7 cal ka bp. The vegetation-climate disequilibrium during the early Holocene in the taiga-tundra transition zone suggests that projected climate warming will not cause a northward expansion of evergreen needle-leaved species. KW - Siberia KW - China KW - Northern Asia KW - Model-data comparison KW - Pollen KW - Permafrost KW - Vegetation-climate disequilibrium Y1 - 2018 U6 - https://doi.org/10.1007/s00334-017-0653-8 SN - 0939-6314 SN - 1617-6278 VL - 27 IS - 2 SP - 365 EP - 379 PB - Springer CY - New York ER - TY - JOUR A1 - Ashastina, Kseniia A1 - Kuzmina, Svetlana A1 - Rudaya, Natalia A1 - Troeva, Elena A1 - Schoch, Werner H. A1 - Roemermann, Christine A1 - Reinecke, Jennifer A1 - Otte, Volker A1 - Savvinov, Grigoriy A1 - Wesche, Karsten A1 - Kienast, Frank T1 - Woodlands and steppes BT - Pleistocene vegetation in Yakutia's most continental part recorded in the Batagay permafrost sequence JF - Quaternary science reviews : the international multidisciplinary research and review journal N2 - Based on fossil organism remains including plant macrofossils, charcoal, pollen, and invertebrates preserved in syngenetic deposits of the Batagay permafrost sequence in the Siberian Yana Highlands, we reconstructed the environmental history during marine isotope stages (MIS) 6 to 2. Two fossil assemblages, exceptionally rich in plant remains, allowed for a detailed description of the palaeo-vegetation during two climate extremes of the Late Pleistocene, the onset of the last glacial maximum (LGM) and the last interglacial. In addition, altogether 41 assemblages were used to outline the vegetation history since the penultimate cold stage of MIS 6. Accordingly, meadow steppes analogue to modern communities of the phytosociological order Festucetalia lenensis formed the primary vegetation during the Saalian and Weichselian cold stages. Cold-resistant tundra-steppe communities (Carici rupestris-Kobresietea bellardii) as they occur above the treeline today were, in contrast to more northern locations, mostly lacking. During the last interglacial, open coniferous woodland similar to modern larch taiga was the primary vegetation at the site. Abundant charcoal indicates wildfire events during the last interglacial. Zoogenic disturbances of the local vegetation were indicated by the presence of ruderal plants, especially by abundant Urtica dioica, suggesting that the area was an interglacial refugium for large herbivores. Meadow steppes, which formed the primary vegetation during cold stages and provided potentially suitable pastures for herbivores, were a significant constituent of the plant cover in the Yana Highlands also under the full warm stage conditions of the last interglacial. Consequently, meadow steppes occurred in the Yana Highlands during the entire investigated timespan from MIS 6 to MIS 2 documenting a remarkable environmental stability. Thus, the proportion of meadow steppe vegetation merely shifted in response to the respectively prevailing climatic conditions. Their persistence indicates low precipitation and a relatively warm growing season throughout and beyond the late Pleistocene. The studied fossil record also proves that modern steppe occurrences in the Yana Highlands did not establish as late as in the Holocene but instead are relicts of a formerly continuous steppe belt extending from Central Siberia to Northeast Yakutia during the Pleistocene. The persistence of plants and invertebrates characteristic of meadow steppe vegetation in interior Yakutia throughout the late Quaternary indicates climatic continuity and documents the suitability of this region as a refugium also for other organisms of the Pleistocene mammoth steppe including the iconic large herbivores. (C)2018 Elsevier Ltd. All rights reserved. KW - Palaeo-vegetation KW - Plant macrofossils KW - Invertebrates KW - Modern analogues KW - Pollen KW - Ground squirrel nest KW - Last cold stage KW - Eemian KW - Beringia Y1 - 2018 U6 - https://doi.org/10.1016/j.quascirev.2018.07.032 SN - 0277-3791 VL - 196 SP - 38 EP - 61 PB - Elsevier CY - Oxford ER - TY - JOUR A1 - Brügger, Sandra Olivia A1 - Gobet, Erika A1 - Sigl, Michael A1 - Osmont, Dimitri A1 - Papina, Tatyana A1 - Rudaya, Natalia A1 - Schwikowski-Gigar, Margit A1 - Tinner, Willy T1 - Ice records provide new insights into climatic vulnerability of Central Asian forest and steppe communities JF - Global and planetary change N2 - Forest and steppe communities in the Altai region of Central Asia are threatened by changing climate and anthropogenic pressure. Specifically, increasing drought and grazing pressure may cause collapses of moisture-demanding plant communities, particularly forests. Knowledge about past vegetation and fire responses to climate and land use changes may help anticipating future ecosystem risks, given that it has the potential to disclose mechanisms and processes that govern ecosystem vulnerability. We present a unique paleoecological record from the high-alpine Tsambagarav glacier in the Mongolian Altai that provides novel large-scale information on vegetation, fire and pollution with an exceptional temporal resolution and precision. Our palynological record identifies several late-Holocene boreal forest expansions, contractions and subsequent recoveries. Maximum forest expansions occurred at 3000-2800 BC, 2400-2100 BC, and 1900-1800 BC. After 1800 BC mixed boreal forest communities irrecoverably declined. Fires reached a maximum at 1600 BC, 200 years after the final forest collapse. Our multiproxy data suggest that burning peaked in response to dead biomass accumulation resulting from forest diebacks. Vegetation and fire regimes partly decoupled from climate after 1700 AD, when atmospheric industrial pollution began, and land use intensified. We conclude that moisture availability was more important than temperature for past vegetation dynamics, in particular for forest loss and steppe expansion. The past Mongolian Altai evidence implies that in the future forests of the Russian Altai may collapse in response to reduced moisture availability. KW - Boreal forest diebacks KW - Climatic tipping points KW - Diversity KW - Ice core KW - Moisture change KW - Pollen KW - Microscopic charcoal KW - SCP Y1 - 2018 U6 - https://doi.org/10.1016/j.gloplacha.2018.07.010 SN - 0921-8181 SN - 1872-6364 VL - 169 SP - 188 EP - 201 PB - Elsevier CY - Amsterdam ER - TY - JOUR A1 - Li, Huashu A1 - Liu, Xingqi A1 - Herzschuh, Ulrike A1 - Cao, Xianyong A1 - Yu, Zhitong A1 - Wang, Yong T1 - Vegetation and climate changes since the middle MIS 3 inferred from a Wulagai Lake pollen record, Inner Mongolia, Northeastern China JF - Review of palaeobotany and palynology : an international journal N2 - The climate conditions during Marine Isotope Stage (MIS) 3 were similar to present-day conditions, but whether humidity then exceeded present levels is debated, and the driving mechanisms of palaeoclimate evolution since MIS 3 remain unclear. Here, we use pollen data from Wulagai Lake, Inner Mongolia, to reconstruct vegetation and climate changes since the middle MIS 3. The steppe biome is reconstructed as the first dominant biome and the desert biome as the second, and the results show that the vegetation was steppe over the last 43,800 years. Poaceae, Artemisia, Caryophyllaceae and Humulus were abundant from middle to late MIS 3, indicating humid climate conditions. As drought-tolerant species such as Hippophae, Nitraria and Chenopodiaceae spread during MIS 2, the climate became arid. The Holocene is characterized by the dominance of steppe with mixed coniferous-broadleaved forests in the Greater Hinggan Range, and the desert biome retains high affinity scores, indicating that the climate was semi-arid. The climate from middle to late MIS 3 was wetter than in the Holocene; this shift was related to changes in the Northern Hemisphere's solar insolation and ice volume. The humid conditions during MIS 3 were attributed to strong ice–albedo feedback, which led to evaporation that was less than the precipitation. The enhanced evaporation caused by increased solar insolation and decreased ice volume might have exceeded the precipitation during the Holocene and resulted in low effective humidity in the Wulagai Lake basin. KW - Pollen KW - Biome KW - Ice volume KW - Solar insolation Y1 - 2018 U6 - https://doi.org/10.1016/j.revpalbo.2018.12.006 SN - 0034-6667 SN - 1879-0615 VL - 262 SP - 44 EP - 51 PB - Elsevier CY - Amsterdam ER - TY - THES A1 - Tabares Jimenez, Ximena del Carmen T1 - A palaeoecological approach to savanna dynamics and shrub encroachment in Namibia N2 - The spread of shrubs in Namibian savannas raises questions about the resilience of these ecosystems to global change. This makes it necessary to understand the past dynamics of the vegetation, since there is no consensus on whether shrub encroachment is a new phenomenon, nor on its main drivers. However, a lack of long-term vegetation datasets for the region and the scarcity of suitable palaeoecological archives, makes reconstructing past vegetation and land cover of the savannas a challenge. To help meet this challenge, this study addresses three main research questions: 1) is pollen analysis a suitable tool to reflect the vegetation change associated with shrub encroachment in savanna environments? 2) Does the current encroached landscape correspond to an alternative stable state of savanna vegetation? 3) To what extent do pollen-based quantitative vegetation reconstructions reflect changes in past land cover? The research focuses on north-central Namibia, where despite being the region most affected by shrub invasion, particularly since the 21st century, little is known about the dynamics of this phenomenon. Field-based vegetation data were compared with modern pollen data to assess their correspondence in terms of composition and diversity along precipitation and grazing intensity gradients. In addition, two sediment cores from Lake Otjikoto were analysed to reveal changes in vegetation composition that have occurred in the region over the past 170 years and their possible drivers. For this, a multiproxy approach (fossil pollen, sedimentary ancient DNA (sedaDNA), biomarkers, compound specific carbon (δ13C) and deuterium (δD) isotopes, bulk carbon isotopes (δ13Corg), grain size, geochemical properties) was applied at high taxonomic and temporal resolution. REVEALS modelling of the fossil pollen record from Lake Otjikoto was run to quantitatively reconstruct past vegetation cover. For this, we first made pollen productivity estimates (PPE) of the most relevant savanna taxa in the region using the extended R-value model and two pollen dispersal options (Gaussian plume model and Lagrangian stochastic model). The REVEALS-based vegetation reconstruction was then validated using remote sensing-based regional vegetation data. The results show that modern pollen reflects the composition of the vegetation well, but diversity less well. Interestingly, precipitation and grazing explain a significant amount of the compositional change in the pollen and vegetation spectra. The multiproxy record shows that a state change from open Combretum woodland to encroached Terminalia shrubland can occur over a century, and that the transition between states spans around 80 years and is characterized by a unique vegetation composition. This transition is supported by gradual environmental changes induced by management (i.e. broad-scale logging for the mining industry, selective grazing and reduced fire activity associated with intensified farming) and related land-use change. Derived environmental changes (i.e. reduced soil moisture, reduced grass cover, changes in species composition and competitiveness, reduced fire intensity) may have affected the resilience of Combretum open woodlands, making them more susceptible to change to an encroached state by stochastic events such as consecutive years of precipitation and drought, and by high concentrations of pCO2. We assume that the resulting encroached state was further stabilized by feedback mechanisms that favour the establishment and competitiveness of woody vegetation. The REVEALS-based quantitative estimates of plant taxa indicate the predominance of a semi-open landscape throughout the 20th century and a reduction in grass cover below 50% since the 21st century associated with the spread of encroacher woody taxa. Cover estimates show a close match with regional vegetation data, providing support for the vegetation dynamics inferred from multiproxy analyses. Reasonable PPEs were made for all woody taxa, but not for Poaceae. In conclusion, pollen analysis is a suitable tool to reconstruct past vegetation dynamics in savannas. However, because pollen cannot identify grasses beyond family level, a multiproxy approach, particularly the use of sedaDNA, is required. I was able to separate stable encroached states from mere woodland phases, and could identify drivers and speculate about related feedbacks. In addition, the REVEALS-based quantitative vegetation reconstruction clearly reflects the magnitude of the changes in the vegetation cover that occurred during the last 130 years, despite the limitations of some PPEs. This research provides new insights into pollen-vegetation relationships in savannas and highlights the importance of multiproxy approaches when reconstructing past vegetation dynamics in semi-arid environments. It also provides the first time series with sufficient taxonomic resolution to show changes in vegetation composition during shrub encroachment, as well as the first quantitative reconstruction of past land cover in the region. These results help to identify the different stages in savanna dynamics and can be used to calibrate predictive models of vegetation change, which are highly relevant to land management. N2 - Die Ausbreitung von Sträuchern in der namibischen Savanne wirft Fragen nach der Resilienz dieser Ökosysteme gegenüber globalen Veränderungen auf. Dies macht es notwendig, die Vegetationsdynamik in der Vergangenheit zu verstehen, da kein Konsens darüber besteht, ob die Verbuschung ein neues Phänomen ist oder über ihre Haupttreiber. Aufgrund des Mangels an Langzeitvegetationsdatensätzen für die Region und des Mangels an geeigneten paläoökologischen Archiven bleibt die Rekonstruktion der früheren Vegetation und der früheren Landbedeckung der Savannen eine Herausforderung. In diesem Zusammenhang befasst sich diese Studie mit drei Hauptforschungsfragen: 1) Ist Pollenanalyse ein geeignetes Instrument, um die Veränderung der Vegetation widerzuspiegeln, die mit der Verbuschung von Savannen verbunden ist? 2) Entspricht die derzeitige verbuschte Landschaft einem stabilen Zustand der Savannenvegetation? 3) Inwieweit entspricht die quantitative Rekonstruktion der Vegetation auf der Grundlage fossiler Pollendaten der früheren Vegetationsbedeckung der Savanne? Um diese Fragen zu beantworten, konzentrierte sich diese Forschung auf Nord-Zentral-Namibia, da diese Region insbesondere seit dem 21. Jahrhundert am stärksten von Verbuschung betroffen ist, über die Dynamik dieses Phänomens in der Region ist jedoch wenig bekannt. Im Rahmen dieser Studie wurden feldbasierte Vegetationsdaten mit modernen Pollendaten verglichen, um das Potenzial moderner Pollen zu bewerten, die Vegetationszusammensetzung und -vielfalt entlang von Niederschlags- und Weideintensitätsgradienten widerzuspiegeln. Zusätzlich wurden zwei Sedimentkerne aus dem Otjikoto-See analysiert, um die Veränderungen der Vegetationszusammensetzung in der Region in den letzten 170 Jahren und ihre möglichen Treiber zu dokumentieren. Hierzu wurde ein Multiproxy-Ansatz (fossiler Pollen, sedimentäre alte DNA, Biomarker, verbindungsspezifische Kohlenstoff- (δ13C) und Deuterium- (δD) Isotope, Kohlenstoff-Isotope (δ13Corg), Korngröße, geochemische Eigenschaften) mit hoher taxonomischer und zeitlicher Auflösung angewendet. Schließlich wurde der REVEALS-Ansatz auf den fossilen Pollendata des Otjikoto-Sees angewendet, um die Vegetationsbedeckung der Vergangenheit quantitativ zu rekonstruieren. Dazu wurden zunächst die Pollenproduktivitätsschätzungen (PPE) der relevantesten Savannentaxa in der Region unter Verwendung des erweiterten R-Wert-Modells und zweier Pollenausbreitungsmodelle (Gaußsches Federmodell und Lagrange-Stochastikmodell) berechnet. Die auf REVEALS basierende Vegetationsrekonstruktion wurde dann unter Verwendung von auf Fernerkundung basierenden regionalen Vegetationsdaten validiert. Die Ergebnisse zeigen, dass moderner Pollen die Zusammensetzung der Vegetation gut widerspiegelt, jedoch weniger die Diversität. Interessanterweise machen Niederschlag und Beweidung einen signifikanten, aber geringen Anteil der Änderung der Zusammensetzung in den Pollen- und Vegetationsspektren aus. Die Multiproxy-Analyse zeigt, dass ein Zustandswechsel von der offenen Combretum Baumsavanne zum Terminalia Buschland über ein Jahrhundert stattfinden kann und dass der Übergang zwischen den beiden Zuständen etwa 80 Jahre dauert und durch eine einzigartige Vegetationszusammensetzung gekennzeichnet ist. Dieser Übergang wird durch allmähliche Umweltveränderungen unterstützt, die durch das Management (z.B. großflächige Abholzung für den Bergbau sowie selektive Beweidung und verringerte Feueraktivität verbunden mit intensivierter Landwirtschaft) und damit verbundene Landnutzungsänderungen hervorgerufen werden. Abgeleitete Umweltveränderungen (z.B. verringerte Bodenfeuchtigkeit, verringerte Grasbedeckung, Änderungen der Artenzusammensetzung und Konkurrenzfähigkeit, verringerte Feuerintensität) können die Resilienz der offenen Combretum Baumsavanne beeinträchtigt haben und sie anfälliger machen, durch stochastische Ereignisse wie aufeinanderfolgende niederschlagsreiche Jahre, Dürre, und durch hohe Konzentrationen von pCO2, in einen verbuschten Zustand zu wechseln. Der daraus resultierende verbuschte Zustand wird durch Rückkopplungsmechanismen aufrechterhalten, welche die Etablierung und Konkurrenzfähigkeit der Holzvegetation begünstigen. Schließlich deuten die auf REVEALS basierenden Deckungsschätzungen auf das Vorherrschen einer halboffenen Landschaft während des gesamten 20. Jahrhunderts und eine Verringerung der Grasbedeckung unter 50% seit dem 21. Jahrhundert hin, die mit der Verbreitung von Verbuschungstaxa verbunden ist. Deckungsschätzungen zeigen eine enge Übereinstimmung mit regionalen Vegetationsdaten, wodurch die aus der Multi-Proxy-Analyse abgeleitete Vegetationsdynamik bestätigt werden kann. Die PPE-Berechnung war für alle holzigen Taxa erfolgreich, für Poaceae jedoch fehlgeschlagen. Zusammenfassend ist die Pollenanalyse ein geeignetes Instrument zur Rekonstruktion der Vegetationsdynamik in Savannen. Aufgrund der geringen taxonomischen Auflösung von Pollen zur Identifizierung von Gräsern ermöglicht ein Multiproxy-Ansatz, insbesondere die Verwendung von sedaDNA, die Unterscheidung stabiler verbuschte Zustände von bloßen Waldphasen sowie die Identifizierung von Auslösern und Treibern von Zustandsänderungen. Darüber hinaus spiegelt die auf REVEALS basierende quantitative Vegetationsrekonstruktion trotz der Einschränkungen bei der Berechnung von PPEs deutlich das Ausmaß der Veränderungen in der Vegetationsbedeckung wider, die in den letzten 130 Jahren aufgetreten sind. Diese Forschung liefert neue Einblicke in die Pollen-Vegetations-Beziehungen in Savannen und unterstreicht die Bedeutung von Multiproxy-Ansätzen zur Rekonstruktion der Vegetationsdynamik in semi-ariden Landschaften. Es bietet auch die erste Zeitreihe mit ausreichender taxonomischer Auflösung, um die Veränderungen der Vegetationszusammensetzung im Verlauf der Verbuschung sowie die erste quantitative Rekonstruktion der früheren Landbedeckung in der Region aufzuzeigen. Diese Ergebnisse können dazu beitragen, die verschiedenen Stadien der Savannendynamik besser zu identifizieren, und können auch zur Kalibrierung von Vorhersagemodellen für Vegetationsänderungen verwendet werden, die für die Landbewirtschaftung von großem Wert sind. T2 - Ein paläoökologischer Ansatz zur Savannendynamik und Verbuschung in Namibia KW - savanna ecology KW - pollen KW - sedaDNA KW - REVEALS KW - state-transition models KW - Savannen-Ökologie KW - REVEALS KW - sedimentäre alte DNA KW - Pollen KW - Pollenproduktivitätsschätzungen KW - Zustands-Übergangs-Modelle Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-492815 ER - TY - JOUR A1 - Wetterich, Sebastian A1 - Rudaya, Natalia A1 - Kuznetsov, Vladislav A1 - Maksimov, Fedor A1 - Opel, Thomas A1 - Meyer, Hanno A1 - Günther, Frank A1 - Bobrov, Anatoly A1 - Raschke, Elena A1 - Zimmermann, Heike Hildegard A1 - Strauss, Jens A1 - Starikova, Anna A1 - Fuchs, Margret A1 - Schirrmeister, Lutz T1 - Ice Complex formation on Bol'shoy Lyakhovsky Island (New Siberian Archipelago, East Siberian Arctic) since about 200 ka JF - Quaternary research : an interdisciplinary journal N2 - Late Quaternary landscapes of unglaciated Beringia were largely shaped by ice-wedge polygon tundra. Ice Complex (IC) strata preserve such ancient polygon formations. Here we report on the Yukagir IC from Bol'shoy Lyakhovsky Island in northeastern Siberia and suggest that new radioisotope disequilibria (230Th/U) dates of the Yukagir IC peat confirm its formation during the Marine Oxygen Isotope Stage (MIS) 7a–c interglacial period. The preservation of the ice-rich Yukagir IC proves its resilience to last interglacial and late glacial–Holocene warming. This study compares the Yukagir IC to IC strata of MIS 5, MIS 3, and MIS 2 ages exposed on Bol'shoy Lyakhovsky Island. Besides high intrasedimental ice content and syngenetic ice wedges intersecting silts, sandy silts, the Yukagir IC is characterized by high organic matter (OM) accumulation and low OM decomposition of a distinctive Drepanocladus moss-peat. The Yukagir IC pollen data reveal grass-shrub-moss tundra indicating rather wet summer conditions similar to modern ones. The stable isotope composition of Yukagir IC wedge ice is similar to those of the MIS 5 and MIS 3 ICs pointing to similar atmospheric moisture generation and transport patterns in winter. IC data from glacial and interglacial periods provide insights into permafrost and climate dynamics since about 200 ka. KW - Cryostratigraphy KW - Ice wedges KW - Stable isotopes KW - Pollen KW - Radioisotope disequilibria dating KW - Beringia Y1 - 2019 U6 - https://doi.org/10.1017/qua.2019.6 SN - 0033-5894 SN - 1096-0287 VL - 92 IS - 2 SP - 530 EP - 548 PB - Cambridge Univ. Press CY - New York ER - TY - JOUR A1 - Cao, Xianyong A1 - Tian, Fang A1 - Dallmeyer, Anne A1 - Herzschuh, Ulrike T1 - Northern Hemisphere biome changes (> 30 degrees N) since 40 cal ka BP and their driving factors inferred from model-data comparisons JF - Quaternary science reviews : the international multidisciplinary research and review journal N2 - Ongoing and past biome transitions are generally assigned to climate and atmospheric changes (e.g. temperature, precipitation, CO2), but the major regional factors or factor combinations that drive vegetation change often remain unknown. Modelling studies applying ensemble runs can help to partition the effects of the different drivers. Such studies require careful validation with observational data. In this study, fossil pollen records from 741 sites in Europe, 728 sites in North America, and 418 sites in Asia (extracted from terrestrial archives including lake sediments) are used to reconstruct biomes at selected time slices between 40 cal ka BP (calibrated thousand years before present) and today. These results are used to validate Northern Hemisphere biome distributions (>30 degrees N) simulated by the biome model BIOME4 that has been forced with climate data simulated by a General Circulation model. Quantitative comparisons between pollen- and model-based results show a generally good fit at a broad spatial scale. Mismatches occur in central-arid Asia with a broader extent of grassland throughout the last 40 ka (likely due to the over-representation of Artemisia and Chenopodiaceae pollen) and in Europe with over-estimation of tundra at 0 cal ka BP (likely due to human impacts to some extent). Sensitivity analysis reveals that broad-scale biome changes follow the global signal of major postglacial temperature change, although the climatic variables vary in their regional and temporal importance. Temperature is the dominant variable in Europe and other rather maritime areas for biome changes between 21 and 14 ka, while precipitation is highly important in the arid inland regions of Asia and North America. The ecophysiological effect of changes in the atmospheric CO2-concentration has the highest impact during this transition than in other intervals. With respect to modern vegetation in the course of global warming, our findings imply that vegetation change in the Northern Hemisphere may be strongly limited by effective moisture changes, i.e. the combined effect of temperature and precipitation, particularly in inland areas. (C) 2019 Elsevier Ltd. All rights reserved. KW - Biomisation KW - Climate warming KW - Europe KW - Holocene KW - Model-data comparison KW - Northern Asia KW - North America KW - Pollen KW - Siberia KW - Vegetation driver Y1 - 2019 U6 - https://doi.org/10.1016/j.quascirev.2019.07.034 SN - 0277-3791 VL - 220 SP - 291 EP - 309 PB - Elsevier CY - Oxford ER - TY - JOUR A1 - Marquer, Laurent A1 - Gaillard, Marie-Jose A1 - Sugita, Shinya A1 - Poska, Anneli A1 - Trondman, Anna-Kari A1 - Mazier, Florence A1 - Nielsen, Anne Birgitte A1 - Fyfe, Ralph M. A1 - Jonsson, Anna Maria A1 - Smith, Benjamin A1 - Kaplan, Jed O. A1 - Alenius, Teija A1 - Birks, H. John B. A1 - Bjune, Anne E. A1 - Christiansen, Jorg A1 - Dodson, John A1 - Edwards, Kevin J. A1 - Giesecke, Thomas A1 - Herzschuh, Ulrike A1 - Kangur, Mihkel A1 - Koff, Tiiu A1 - Latalowa, Maligorzata A1 - Lechterbeck, Jutta A1 - Olofsson, Jorgen A1 - Seppa, Heikki T1 - Quantifying the effects of land use and climate on Holocene vegetation in Europe JF - Quaternary science reviews : the international multidisciplinary research and review journal N2 - Early agriculture can be detected in palaeovegetation records, but quantification of the relative importance of climate and land use in influencing regional vegetation composition since the onset of agriculture is a topic that is rarely addressed. We present a novel approach that combines pollen-based REVEALS estimates of plant cover with climate, anthropogenic land-cover and dynamic vegetation modelling results. This is used to quantify the relative impacts of land use and climate on Holocene vegetation at a sub-continental scale, i.e. northern and western Europe north of the Alps. We use redundancy analysis and variation partitioning to quantify the percentage of variation in vegetation composition explained by the climate and land-use variables, and Monte Carlo permutation tests to assess the statistical significance of each variable. We further use a similarity index to combine pollen based REVEALS estimates with climate-driven dynamic vegetation modelling results. The overall results indicate that climate is the major driver of vegetation when the Holocene is considered as a whole and at the sub-continental scale, although land use is important regionally. Four critical phases of land-use effects on vegetation are identified. The first phase (from 7000 to 6500 BP) corresponds to the early impacts on vegetation of farming and Neolithic forest clearance and to the dominance of climate as a driver of vegetation change. During the second phase (from 4500 to 4000 BP), land use becomes a major control of vegetation. Climate is still the principal driver, although its influence decreases gradually. The third phase (from 2000 to 1500 BP) is characterised by the continued role of climate on vegetation as a consequence of late-Holocene climate shifts and specific climate events that influence vegetation as well as land use. The last phase (from 500 to 350 BP) shows an acceleration of vegetation changes, in particular during the last century, caused by new farming practices and forestry in response to population growth and industrialization. This is a unique signature of anthropogenic impact within the Holocene but European vegetation remains climatically sensitive and thus may continue to respond to ongoing climate change. (C) 2017 Elsevier Ltd. All rights reserved. KW - Climate KW - Holocene KW - Human impact KW - Land use KW - LPJ-GUESS KW - Europe KW - Pollen KW - REVEALS KW - Vegetation composition Y1 - 2017 U6 - https://doi.org/10.1016/j.quascirev.2017.07.001 SN - 0277-3791 VL - 171 SP - 20 EP - 37 PB - Elsevier CY - Oxford ER - TY - JOUR A1 - Nazarova, Larisa B. A1 - Grebennikova, Tatiana A. A1 - Razjigaeva, Nadezhda G. A1 - Ganzey, Larisa A. A1 - Belyanina, Nina I. A1 - Arslanov, Khikmat A. A1 - Kaistrenko, Victor M. A1 - Gorbunov, Aleksey O. A1 - Kharlamov, Andrey A. A1 - Rudaya, Natalia A1 - Palagushkina, Olga A1 - Biskaborn, Boris A1 - Diekmann, Bernhard T1 - Reconstruction of Holocene environmental changes in Southern Kurils (North-Western Pacific) based on palaeolake sediment proxies from Shikotan Island JF - Global and planetary change N2 - We investigated a well-dated sediment section of a palaeolake situated in the coastal zone of Shikotan Island (Lesser Kurils) for organic sediment-geochemistry and biotic components (diatoms, chironomids, pollen) in order to provide a reconstruction of the palaeoenvironmental changes and palaeo-events (tsunamis, sea-level fluctuations and landslides) in Holocene. During the ca 8000 years of sedimentation the changes in organic sediment-geochemistry and in composition of the diatoms and chironomids as well as the shifts in composition of terrestrial vegetation suggest that the period until ca 5800 cal yr BP was characterized by a warm and humid climate (corresponds to middle Holocene optimum) with climate cooling thereafter. A warm period reconstructed from ca 900 to at least ca 580 cal yr BP corresponds to a transition to a Nara-Heian-Kamakura warm stage and can be correlated to a Medieval Warm Period. After 580 cal yr PB, the lake gradually dried out and climatic signals could not be obtained from the declining lacustrine biological communities, but the increasing role of spruce and disappearance of the oak from the vegetation give evidences of the climate cooling that can be correlated with the LIA. The marine regression stages at the investigated site are identified for ca 6200-5900 (at the end of the middle Holocene transgression), ca 5500-5100 (Middle Jomon regression or Kemigawa regression), and ca 1070-360 cal yr BP (at the end of Heian transgression). The lithological structure of sediments and the diatom compositions give evidences for the multiple tsunami events of different strengths in the Island. Most remarkable of them can be dated at around ca 7000, 6460, 5750, 4800, 950 cal yr BP. The new results help to understand the Holocene environmental history of the Southern Kurils as a part of the Kuril-Kamchatka and Aleutian Marginal Sea-Island Arc Systems in the North-Western Pacific region. KW - Kurils KW - North-Western Pacific KW - Palaeoclimate KW - Sea level KW - Diatoms KW - Chironomids KW - Pollen Y1 - 2017 U6 - https://doi.org/10.1016/j.gloplacha.2017.10.005 SN - 0921-8181 SN - 1872-6364 VL - 159 SP - 25 EP - 36 PB - Elsevier CY - Amsterdam ER - TY - JOUR A1 - Tian, Fang A1 - Cao, Xianyong A1 - Dallmeyer, Anne A1 - Ni, Jian A1 - Zhao, Yan A1 - Wang, Yongbo A1 - Herzschuh, Ulrike T1 - Quantitative woody cover reconstructions from eastern continental Asia of the last 22 kyr reveal strong regional peculiarities JF - Quaternary science reviews : the international multidisciplinary research and review journal N2 - We present a calibration-set based on modern pollen and satellite-based Advanced Very High Resolution Radiometer (AVHRR) observations of woody cover (including needleleaved, broadleaved and total tree cover) in eastern continental Asia, which shows good performance under cross-validation with the modern analogue technique (all the coefficients of determination between observed and predicted values are greater than 0.65). The calibration-set is used to reconstruct woody cover from a taxonomically harmonized and temporally standardized fossil pollen dataset (including 274 cores) with 500-year resolution over the last 22 kyr. The spatial range of forest has not noticeably changed in eastern continental Asia during the last 22 kyr, although woody cover has, especially at the margin of the eastern Tibetan Plateau and in the forest-steppe transition area of north-central China. Vegetation was sparse during the LGM in the present forested regions, but woody cover increased markedly at the beginning of the Bolling/Allerod period (B/A; ca. 14.5 ka BP) and again at the beginning of the Holocene (ca. 11.5 ka BP), and is related to the enhanced strength of the East Asian Summer Monsoon. Forest flourished in the mid Holocene (ca. 8 ka BP) possibly due to favourable climatic conditions. In contrast, cover was stable in southern China (high cover) and arid central Asia (very low cover) throughout the investigated period. Forest cover increased in the north-eastern part of China during the Holocene. Comparisons of these regional pollen-based results with simulated forest cover from runs of a global climate model (for 9, 6 and 0 ka BP (ECHAM5/JSBACH similar to 1.125 degrees spatial resolution)) reveal many similarities in temporal change. The Holocene woody cover history of eastern continental Asia is different from that of other regions, likely controlled by different climatic variables, i.e. moisture in eastern continental Asia; temperature in northern Eurasia and North America. (C) 2016 Elsevier Ltd. All rights reserved. KW - Pollen KW - AVHRR KW - Modern analogue technique KW - Quantitative reconstruction KW - East Asian summer monsoon Y1 - 2016 U6 - https://doi.org/10.1016/j.quascirev.2016.02.001 SN - 0277-3791 VL - 137 SP - 33 EP - 44 PB - Elsevier CY - Oxford ER -