globalchange  > 全球变化的国际研究计划
DOI: 10.1111/1365-2745.13259
WOS记录号: WOS:000481117600001
论文题名:
Altered leaf elemental composition with climate change is linked to reductions in photosynthesis, growth and survival in a semi-arid shrubland
作者: Leon-Sanchez, Lupe1,2; Nicolas, Emilio1; Prieto, Ivan1; Nortes, Pedro1; Maestre, Fernando T.3; Ignacio Querejeta, Jose1
通讯作者: Ignacio Querejeta, Jose
刊名: JOURNAL OF ECOLOGY
ISSN: 0022-0477
EISSN: 1365-2745
出版年: 2019
语种: 英语
英文关键词: climate aridification ; drought stress ; drylands ; non-stomatal limitation of photosynthesis ; stoichiometric constraints ; warming ; water use efficiency
WOS关键词: INDUCED TREE MORTALITY ; GLOBAL-CHANGE ; NONSTOMATAL LIMITATIONS ; NUTRIENT AVAILABILITY ; EXPERIMENTAL DROUGHT ; NITROGEN-CONTENT ; WATER-STRESS ; RESPONSES ; PLANTS ; TEMPERATURE
WOS学科分类: Plant Sciences ; Ecology
WOS研究方向: Plant Sciences ; Environmental Sciences & Ecology
英文摘要:

Climate change will increase heat and drought stress in many dryland areas, which could reduce soil nutrient availability for plants and aggravate nutrient limitation of primary productivity. Any negative impacts of climate change on foliar nutrient contents would be expected to negatively affect the photosynthetic capacity, water use efficiency and overall fitness of dryland vegetation. We conducted a 4-year manipulative experiment using open top chambers and rainout shelters to assess the impacts of warming (similar to 2 degrees C, W), rainfall reduction (similar to 30%, RR) and their combination (W + RR) on the nutrient status and ecophysiological performance of six native shrub species of contrasting phylogeny in a semi-arid ecosystem. Leaf nutrient status and gas exchange were assessed yearly, whereas biomass production and survival were measured at the end of the study. Warming (W and W + RR) advanced shoot growth phenology and reduced foliar macro- (N, P, K) and micronutrient (Cu, Fe, Zn) concentrations (by 8%-18% and 14%-56% respectively), net photosynthetic rate (32%), above-ground biomass production (28%-39%) and survival (23%-46%). Decreased photosynthesis and growth in W and W + RR plants were primarily linked to enhanced nutritional constraints on carbon fixation. Poor leaf nutrient status in W and W + RR plants partly decoupled carbon assimilation from water flux and led to drastic reductions in water use efficiency (WUEi; similar to 41%) across species. The RR treatment moderately decreased foliar macro- and micronutrients (6%-17%, except for Zn) and biomass production (22%). The interactive impacts of warming and rainfall reduction (W + RR treatment) on plant performance were generally smaller than expected from additive single-factor effects. Synthesis. Large decreases in plant nutrient pool size and productivity combined with increased mortality during hotter droughts will reduce vegetation cover and nutrient retention capacity, thereby disrupting biogeochemical processes and accelerating dryland degradation with impending climate change. Increased macro- and micronutrient co-limitation of photosynthesis with forecasted climate change conditions may offset any gains in WUEi and productivity derived from anthropogenic CO2 elevation, thereby increasing dryland vegetation vulnerability to drought stress in a warmer and drier climate. The generalized reduction in leaf nutrient contents with warming compromises plant nutritional quality for herbivores, with potential cascading negative effects across trophic levels.


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资源类型: 期刊论文
标识符: http://119.78.100.158/handle/2HF3EXSE/145442
Appears in Collections:全球变化的国际研究计划

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作者单位: 1.CSIC, CEBAS, Murcia, Spain
2.Queens Univ Belfast, Sch Biol Sci, Belfast, Antrim, North Ireland
3.Univ Rey Juan Carlos, Dept Biol & Geol, Fis & Quim Inorgan, Escuela Super Ciencias Expt & Tecnol, Mostoles, Spain

Recommended Citation:
Leon-Sanchez, Lupe,Nicolas, Emilio,Prieto, Ivan,et al. Altered leaf elemental composition with climate change is linked to reductions in photosynthesis, growth and survival in a semi-arid shrubland[J]. JOURNAL OF ECOLOGY,2019-01-01
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