Enhanced ozone strongly reduces carbon sink strength of adult beech (Fagus sylvatica)--resume from the free-air fumigation study at Kranzberg Forest.

Ground-level ozone (O(3)) has gained awareness as an agent of climate change. In this respect, key results are comprehended from a unique 8-year free-air O(3)-fumigation experiment, conducted on adult beech (Fagus sylvatica) at Kranzberg Forest (Germany). A novel canopy O(3) exposure methodology was employed that allowed whole-tree assessment in situ under twice-ambient O(3) levels. Elevated O(3) significantly weakened the C sink strength of the tree-soil system as evidenced by lowered photosynthesis and 44% reduction in whole-stem growth, but increased soil respiration. Associated effects in leaves and roots at the gene, cell and organ level varied from year to year, with drought being a crucial determinant of O(3) responsiveness. Regarding adult individuals of a late-successional tree species, empirical proof is provided first time in relation to recent modelling predictions that enhanced ground-level O(3) can substantially mitigate the C sequestration of forests in view of climate change.

[1]  M. Leuchner,et al.  Extraordinary drought of 2003 overrules ozone impact on adult beech trees (Fagus sylvatica) , 2006, Trees.

[2]  M R Ashmore,et al.  Critical levels for ozone effects on vegetation in Europe. , 1997, Environmental pollution.

[3]  R. Matyssek,et al.  Flux-based response of sucrose and starch in leaves of adult beech trees (Fagus sylvatica L.) under chronic free-air O3 fumigation. , 2007, Plant biology.

[4]  B. Gimeno,et al.  New critical levels for ozone effects on young trees based on AOT40 and simulated cumulative leaf uptake of ozone , 2004 .

[5]  R. E. Dickson,et al.  Tropospheric O3 moderates responses of temperate hardwood forests to elevated CO2: a synthesis of molecular to ecosystem results from the Aspen FACE project , 2003 .

[6]  H. Rennenberg,et al.  Effects of long-term free-air ozone fumigation on delta15N and total N in Fagus sylvatica and associated mycorrhizal fungi. , 2007, Plant biology.

[7]  D Grill,et al.  Synopsis of the CASIROZ case study: carbon sink strength of Fagus sylvatica L. in a changing environment--experimental risk assessment of mitigation by chronic ozone impact. , 2007, Plant biology.

[8]  H. Sandermann,et al.  The challenge of making ozone risk assessment for forest trees more mechanistic. , 2008, Environmental pollution.

[9]  H. Pretzsch,et al.  Die Fichten-Buchen-Mischbestände des Sonderforschungsbereiches „Wachstum oder Parasitenabwehr?“ im Kranzberger Forst , 1998, Forstwissenschaftliches Centralblatt vereinigt mit Tharandter forstliches Jahrbuch.

[10]  H. Blaschke,et al.  Effects of the extreme drought in 2003 on soil respiration in a mixed forest , 2009, European Journal of Forest Research.

[11]  R. Matyssek,et al.  Role of ethylene in the regulation of cell death and leaf loss in ozone-exposed European beech , 2005 .

[12]  Herbert Werner,et al.  Free-air fumigation of mature trees , 2002, Environmental science and pollution research international.

[13]  P. Reich,et al.  Ambient Levels of Ozone Reduce Net Photosynthesis in Tree and Crop Species , 1985, Science.

[14]  H. Sandermann,et al.  Impact of Ozone on Trees: an Ecophysiological Perspective , 2003 .

[15]  H. Rennenberg,et al.  Effects of drought and canopy ozone exposure on antioxidants in fine roots of mature European beech (Fagus sylvatica). , 2008, Tree physiology.

[16]  H. Pleijel,et al.  Relationships between ozone exposure and yield loss in European wheat and potato—a comparison of concentration- and flux-based exposure indices , 2004 .

[17]  M. Ashmore Assessing the future global impacts of ozone on vegetation , 2005 .

[18]  A. Bytnerowicz,et al.  Ozone air pollution in the Sierra Nevada : distribution and effects on forests , 2003 .

[19]  C. Huntingford,et al.  Indirect radiative forcing of climate change through ozone effects on the land-carbon sink , 2007, Nature.

[20]  A. Price,et al.  Effects of long-term, free-air ozone fumigation on the cytokinin content of mature beech trees. , 2007, Plant biology.

[21]  W. Seiler,et al.  Ozone Formation, Destruction and Exposure in Europe and the United States , 1997 .

[22]  M. Tausz,et al.  Effects of glutathione on thiol redox systems, chromosomal aberrations, and the ultrastructure of meristematic root cells ofPicea abies (L.) Karst. , 2000, Protoplasma.

[23]  P. Ciais,et al.  Europe-wide reduction in primary productivity caused by the heat and drought in 2003 , 2005, Nature.

[24]  T. Seifert,et al.  Growth of adult Norway spruce (Picea abies [L.] Karst.) and European beech (Fagus sylvatica L.) under free-air ozone fumigation. , 2005, Plant biology.

[25]  R. Matyssek,et al.  Ozone‐induced accumulation of carbohydrates changes enzyme activities of carbohydrate metabolism in birch leaves , 1997 .

[26]  H. Kraigher,et al.  Changes in the community of ectomycorrhizal fungi and increased fine root number under adult beech trees chronically fumigated with double ambient ozone concentration. , 2007, Plant biology.

[27]  A. J. Nunn Risiko-Einschätzung der chronisch erhöhten Ozonbelastung mittels Free-Air-Begasung von Buchen (Fagus sylvatica) und Fichten (Picea abies) eines forstlich begründeten Mischbestandes , 2005 .

[28]  G. Wieser,et al.  Advances in understanding ozone impact on forest trees: messages from novel phytotron and free-air fumigation studies. , 2010, Environmental pollution.

[29]  Robert L. Heath,et al.  Forest decline and ozone. A comparison of controlled chamber and field experiments. , 1997 .

[30]  M. Sanz,et al.  Promoting the O3 flux concept for European forest trees. , 2007, Environmental pollution.

[31]  R. Matyssek,et al.  Below-ground carbon allocation in mature beech and spruce trees following long-term, experimentally enhanced O3 exposure in Southern Germany. , 2010, Environmental pollution.

[32]  H. Sandermann,et al.  Response patterns in adult forest trees to chronic ozone stress: identification of variations and consistencies. , 2005, Environmental pollution.

[33]  T. Schmülling,et al.  Arabidopsis Cytokinin Receptor Mutants Reveal Functions in Shoot Growth, Leaf Senescence, Seed Size, Germination, Root Development, and Cytokinin Metabolism[W] , 2005, The Plant Cell Online.

[34]  H. Blaschke,et al.  Belowground effects of enhanced tropospheric ozone and drought in a beech/spruce forest (Fagus sylvatica L./Picea abies [L.] Karst). , 2010, Environmental pollution.

[35]  D. Derwent,et al.  The Global Exposure of Forests to Air Pollutants , 1999 .

[36]  T. Kolb,et al.  Limitations and perspectives about scaling ozone impacts in trees ? ? Talk and paper for: IUFRO 7.04 , 2001 .

[37]  R. Matyssek,et al.  Effects of chronic elevated ozone exposure on gas exchange responses of adult beech trees (Fagus sylvatica) as related to the within-canopy light gradient. , 2009, Environmental pollution.

[38]  H. Pretzsch,et al.  Tree and stand growth of mature Norway spruce and European beech under long-term ozone fumigation. , 2010, Environmental pollution.