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J. Murillo (1997)
TEMPORAL VARIATIONS IN THE CARBON BUDGET OF FOREST ECOSYSTEMS IN SPAINEcological Applications, 7
M. Luis, J. Raventós, J. González‐Hidalgo, J. Sánchez, J. Cortina (2000)
Spatial analysis of rainfall trends in the region of Valencia (east Spain).International Journal of Climatology, 20
Sandrine Chauchard, C. Carcaillet, F. Guibal (2007)
Patterns of Land-use Abandonment Control Tree-recruitment and Forest Dynamics in Mediterranean MountainsEcosystems, 10
Jianguo Huang, Y. Bergeron, B. Denneler, F. Berninger, J. Tardif (2007)
Response of Forest Trees to Increased Atmospheric CO 2Critical Reviews in Plant Sciences, 26
S. Wullschleger, T. Tschaplinski, R. Norby (2002)
Plant water relations at elevated CO2 -- implications for water-limited environments.Plant, cell & environment, 25 2
Camarero Camarero, Wright Wright, Catalan Catalan, Ventura Ventura (2004)
Application of MAGIC to Lake Redó (Central Pyrenees)Journal of Limnology, 63
C. Bigler, O. Bräker, H. Bugmann, M. Dobbertin, A. Rigling (2006)
Drought as an Inciting Mortality Factor in Scots Pine Stands of the Valais, SwitzerlandEcosystems, 9
P. Soulé, P. Knapp
Archived Version from Ncdocks Institutional Repository Radial Growth Rate Increases in Naturally Occurring Ponderosa Pine Trees: a Late-20th Century Co2 Fertilization Effect?
L. Magee (1990)
R 2 Measures Based on Wald and Likelihood Ratio Joint Significance TestsThe American Statistician, 44
M. Ninyerola, X. Pons, J. Roure (2007)
Monthly precipitation mapping of the Iberian Peninsula using spatial interpolation tools implemented in a Geographic Information SystemTheoretical and Applied Climatology, 89
L. Camarero, R. Wright, J. Catalán, M. Ventura (2004)
Application of MAGIC to Lake Redó (Central Pyrenees): an assessment of the effects of possible climate driven changes in atmospheric precipitation, base cation deposition, and weathering rates on lake water chemistryJournal of Limnology, 63
Bréda (2006)
Temperate forest trees and stands under severe droughtAnnals of Forest Science, 63
J. Weltzin, M. Loik, S. Schwinning, David Williams, P. Fay, B. Haddad, J. Harte, T. Huxman, A. Knapp, G. Lin, W. Pockman, Rebecca Shaw, E. Small, Melinda Smith, Stanley Smith, D. Tissue, J. Zak (2003)
Assessing the Response of Terrestrial Ecosystems to Potential Changes in Precipitation, 53
Saxe Saxe, Cannell Cannell, Johnsen Johnsen, Ryan Ryan, Vourlitis Vourlitis (2001)
Tansley review no. 123. Tree and forest functioning in response to global warmingNew Phytologist, 149
M. Carrer, P. Nola, JEAN Eduard, R. Motta, C. Urbinati (2007)
Regional variability of climate–growth relationships in Pinus cembra high elevation forests in the AlpsJournal of Ecology, 95
R. Ceulemans, M. Jach, R. Velde, J. Lin, M. Stevens (2002)
Elevated atmospheric CO2 alters wood production, wood quality and wood strength of Scots pine (Pinus sylvestris L) after three years of enrichmentGlobal Change Biology, 8
J. Irvine, M. Perks, Federico Magnani, John Grace (1998)
The response of Pinus sylvestris to drought: stomatal control of transpiration and hydraulic conductance.Tree physiology, 18 6
T. Mitchell, P. Jones (2005)
An improved method of constructing a database of monthly climate observations and associated high‐resolution gridsInternational Journal of Climatology, 25
S. Voelker, R. Muzika, R. Guyette, M. Stambaugh (2006)
HISTORICAL CO2 GROWTH ENHANCEMENT DECLINES WITH AGE IN QUERCUS AND PINUSEcological Monographs, 76
C. Parmesan, G. Yohe (2003)
A globally coherent fingerprint of climate change impacts across natural systemsNature, 421
V. Barber, G. Juday, B. Finney (2000)
Reduced growth of Alaskan white spruce in the twentieth century from temperature-induced drought stressNature, 405
K. Nadelhoffer, B. Emmett, P. Gundersen, O. Kjønaas, C. Koopmans, P. Schleppi, A. Tietema, R. Wright (1999)
Nitrogen deposition makes a minor contribution to carbon sequestration in temperate forestsNature, 398
M. Rebetez, M. Dobbertin (2004)
Climate change may already threaten Scots pine stands in the Swiss AlpsTheoretical and Applied Climatology, 79
Ceulemans Ceulemans, Mousseau Mousseau (1994)
Tansley Review no. 71New Phytologist, 127
A. Jump, J. Hunt, J. Peñuelas (2006)
Rapid climate change‐related growth decline at the southern range edge of Fagus sylvaticaGlobal Change Biology, 12
G. Piovesan, F. Biondi, M. Bernabei, A. Filippo, B. Schirone (2005)
Spatial and altitudinal bioclimatic zones of the Italian peninsula identified from a beech (Fagus sylvatica L.) tree-ring networkActa Oecologica-international Journal of Ecology, 27
Grissino‐Mayer Grissino‐Mayer (2001)
Evaluating crossdating accuracyTree-Ring Research, 57
L. Andreu, E. Gutiérrez, M. Macías, Montse Ribas, O. Bosch, J. Camarero (2007)
Climate increases regional tree‐growth variability in Iberian pine forestsGlobal Change Biology, 13
A. Nissinen, P. Hari (1998)
Effects of nitrogen deposition on tree growth and soil nutrients in boreal Scots pine standsEnvironmental Pollution, 102
Aber (2001)
Forest processes and global environmental changeBioScience, 51
Maurizio Mencuccini, J. Martínez‐Vilalta, D. Vanderklein, H. Hamid, E. Korakaki, S. Lee, B. Michiels (2005)
Size-mediated ageing reduces vigour in trees.Ecology letters, 8 11
N. Breda, R. Huc, A. Granier, E. Dreyer (2006)
Temperate forest trees and stands under severe drought: a review of ecophysiological responses, adaptation processes and long-term consequencesAnnals of Forest Science, 63
D. Sarris, D. Christodoulakis, C. Körner (2007)
Recent decline in precipitation and tree growth in the eastern MediterraneanGlobal Change Biology, 13
G. Hargreaves, Z. Samani (1982)
Estimating Potential EvapotranspirationJournal of the Irrigation and Drainage Division, 108
R. Poyatos, J. Martínez‐Vilalta, J. Cermak, R. Ceulemans, A. Granier, J. Irvine, B. Köstner, F. Lagergren, L. Meiresonne, N. Nadezhdina, R. Zimmermann, P. Llorens, Maurizio Mencuccini (2007)
Plasticity in hydraulic architecture of Scots pine across EurasiaOecologia, 153
Irvine Irvine, Perks Perks, Magnani Magnani, Grace Grace (1998)
The response of Pinus sylvestris to droughtTree Physiology, 18
Mencuccini Mencuccini, Martínez‐Vilalta Martínez‐Vilalta, Vanderklein Vanderklein, Hamid Hamid, Korakaki Korakaki, Lee Lee, Michiels Michiels (2005)
Size‐mediated ageing reduces vigour in tall treesEcology Letters, 8
H. Spiecker, K. Mielikäinen, M. Köhl, J. Skovsgaard (1996)
Growth Trends in European Forests
F. Magnani, Maurizio Mencuccini, M. Borghetti, P. Berbigier, F. Berninger, S. Delzon, A. Grelle, P. Hari, P. Jarvis, P. Kolari, A. Kowalski, H. Lankreijer, B. Law, A. Lindroth, D. Loustau, G. Manca, J. Moncrieff, M. Rayment, V. Tedeschi, R. Valentini, J. Grace (2007)
The human footprint in the carbon cycle of temperate and boreal forestsNature, 447
Hyvönen Hyvönen, Ågren Ågren, Linder Linder (2007)
The likely impact of elevated (CO 2 ), nitrogen deposition, increased temperature and management on carbon sequestration in temperate and boreal forest ecosystemsNew Phytologist, 173
J. Cristóbal, M. Ninyerola, X. Pons (2008)
Modeling air temperature through a combination of remote sensing and GIS dataJournal of Geophysical Research, 113
Marc Macias, Marc Macias, L. Andreu, O. Bosch, J. Camarero, E. Gutiérrez (2006)
Increasing Aridity is Enhancing Silver Fir Abies Alba Mill.) Water Stress in its South-Western Distribution LimitClimatic Change, 79
H. Linderholm (2001)
Climatic Infl uence on Scots Pine Growth on Dry and Wet Soils in the Central Scandinavian Mountains, Interpreted from Tree-Ring WidthsSilva Fennica, 35
M. Carrer, C. Urbinati (2006)
Long-term change in the sensitivity of tree-ring growth to climate forcing in Larix decidua.The New phytologist, 170 4
Aniol (1983)
Tree-ring analysis using CATRASDendrochronologia, 1
Weltzin Weltzin, Loik Loik, Schwinning Schwinning (2003)
Assessing the response of ecological systems to potential changes in precipitationBioScience, 53
R. Hyvönen, G. Ågren, S. Linder, T. Persson, M. Cotrufo, A. Ekblad, Michael Freeman, A. Grelle, Ivan Janssens, Paul Jarvis, S. Kellomäki, A. Lindroth, D. Loustau, T. Lundmark, R. Norby, Ram Oren, K. Pilegaard, Michael Ryan, B. Sigurdsson, M. Strömgren, Marcel Oijen, G. Wallin (2007)
The likely impact of elevated [CO2], nitrogen deposition, increased temperature and management on carbon sequestration in temperate and boreal forest ecosystems: a literature review.The New phytologist, 173 3
S. Hättenschwiler, F. Schweingruber, C. Körner (1996)
Tree ring responses to elevated CO2 and increased N deposition in Picea abiesPlant Cell and Environment, 19
P. Reich, J. Oleksyn (2008)
Climate warming will reduce growth and survival of Scots pine except in the far north.Ecology letters, 11 6
E. Gutiérrez (1989)
Dendroclimatological Study of Pinus Sylvestris L. in Southern Catalonia (Spain)Tree-ring Bulletin
R. Ceulemans, M. Mousseau (1994)
Tansley Review No. 71 Effects of elevated atmospheric CO2on woody plantsNew Phytologist, 127
J. Martínez‐Vilalta, J. Piñol (2002)
Drought-induced mortality and hydraulic architecture in pine populations of the NE Iberian PeninsulaForest Ecology and Management, 161
A. Arneth, Jon Lloyd, Hana Šantrůčková, Michael Bird, S. Grigoryev, Y. Kalaschnikov, Gerd Gleixner, E. Schulze (2002)
Response of central Siberian Scots pine to soil water deficit and long‐term trends in atmospheric CO2 concentrationGlobal Biogeochemical Cycles, 16
J. Aber, R. Neilson, S. McNulty, J. Lenihan, D. Bachelet, R. Drapek (2001)
Forest Processes and Global Environmental Change: Predicting the Effects of Individual and Multiple Stressors, 51
M. Ninyerola, X. Pons, J. Roure (2007)
Objective air temperature mapping for the Iberian Peninsula using spatial interpolation and GISInternational Journal of Climatology, 27
G. Sumner, R. Romero, V. Homar, C. Ramis, S. Alonso, E. Zorita (2003)
An estimate of the effects of climate change on the rainfall of Mediterranean Spain by the late twenty first centuryClimate Dynamics, 20
C. Boisvenue, S. Running (2006)
Impacts of climate change on natural forest productivity – evidence since the middle of the 20th centuryGlobal Change Biology, 12
Körner Körner (2006)
Plant CO 2 responsesNew Phytologist, 172
J. Hódar, J. Castro, R. Zamora (2003)
Pine processionary caterpillar Thaumetopoea pityocampa as a new threat for relict Mediterranean Scots pine forests under climatic warmingBiological Conservation, 110
J. Waddington, K. Warner, G. Kennedy (2002)
Cutover peatlands: A persistent source of atmospheric CO2Global Biogeochemical Cycles, 16
C. Budhathoki, T. Lynch, J. Guldin (2008)
Nonlinear mixed modeling of basal area growth for shortleaf pineForest Ecology and Management, 255
C. Körner (2006)
Plant CO2 responses: an issue of definition, time and resource supply.The New phytologist, 172 3
Soulé Soulé, Knapp Knapp (2006)
Radial growth rate increases in naturally occurring ponderosa pine treesNew Phytologist, 171
H. Saxe, M. Cannell, Ø. Johnsen, M. Ryan, G. Vourlitis (2001)
Tree and forest functioning in response to global warming.The New phytologist, 149 3
Stem radial growth responds to environmental conditions, and has been widely used as a proxy to study long‐term patterns of tree growth and to assess the impact of environmental changes on growth patterns. In this study, we use a tree ring dataset from the Catalan Ecological and Forest Inventory to study the temporal variability of Scots pine (Pinus sylvestris L.) stem growth during the 20th century across a relatively large region (Catalonia, NE Spain) close to the southern limit of the distribution of the species. Basal area increment (BAI) was modelled as a function of tree size and environmental variables by means of mixed effects models. Our results showed an overall increase of 84% in Scots pine BAI during the 20th century, consistent with most previous studies for temperate forests. This trend was associated with increased atmospheric CO2 concentrations and, possibly, with a general increase in nutrient availability, and we interpreted it as a fertilization effect. Over the same time period, there was also a marked increase in temperature across the study region (0.19 °C per decade on average). This warming had a negative impact on radial growth, particularly at the drier sites, but its magnitude was not enough to counteract the fertilization effect. In fact, the substantial warming observed during the 20th century in the study area did not result in a clear pattern of increased summer drought stress because of the large variability in precipitation, which did not show any clear time trend. But the situation may change in the future if temperatures continue to rise and/or precipitation becomes scarcer. Such a change could potentially reverse the temporal trend in growth, particularly at the driest sites, and is suggested in our data by the relative constancy of radial growth after ca. 1975, coinciding with the warmer period. If this situation is representative of other relatively dry, temperate forests, the implications for the regional carbon balance would be substantial.
Global Change Biology – Wiley
Published: Dec 1, 2008
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