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1.
Plant Cell Environ ; 38(9): 1913-30, 2015 Sep.
Artigo em Inglês | MEDLINE | ID: mdl-25393245

RESUMO

The potential impacts of climate change in the Midwest United States present unprecedented challenges to regional agriculture. In response to these challenges, a variety of climate-smart agricultural methodologies have been proposed to retain or improve crop yields, reduce agricultural greenhouse gas emissions, retain soil quality and increase climate resilience of agricultural systems. One component that is commonly neglected when assessing the environmental impacts of climate-smart agriculture is the biophysical impacts, where changes in ecosystem fluxes and storage of moisture and energy lead to perturbations in local climate and water availability. Using a combination of observational data and an agroecosystem model, a series of climate-smart agricultural scenarios were assessed to determine the biophysical impacts these techniques have in the Midwest United States. The first scenario extended the growing season for existing crops using future temperature and CO2 concentrations. The second scenario examined the biophysical impacts of no-till agriculture and the impacts of annually retaining crop debris. Finally, the third scenario evaluated the potential impacts that the adoption of perennial cultivars had on biophysical quantities. Each of these scenarios was found to have significant biophysical impacts. However, the timing and magnitude of the biophysical impacts differed between scenarios.


Assuntos
Agricultura/métodos , Clima , Produtos Agrícolas , Modelos Teóricos , Biofísica , Dióxido de Carbono , Produtos Agrícolas/crescimento & desenvolvimento , Ecossistema , Meio Ambiente , Meio-Oeste dos Estados Unidos , Estações do Ano , Glycine max/crescimento & desenvolvimento , Temperatura , Zea mays/crescimento & desenvolvimento
2.
Plant Cell Environ ; 36(9): 1641-57, 2013 Sep.
Artigo em Inglês | MEDLINE | ID: mdl-23590343

RESUMO

Globally, photosynthesis accounts for the largest flux of CO2 from the atmosphere into ecosystems and is the driving process for terrestrial ecosystem function. The importance of accurate predictions of photosynthesis over a range of plant growth conditions led to the development of a C3 photosynthesis model by Farquhar, von Caemmerer & Berry that has become increasingly important as society places greater pressures on vegetation. The photosynthesis model has played a major role in defining the path towards scientific understanding of photosynthetic carbon uptake and the role of photosynthesis on regulating the earth's climate and biogeochemical systems. In this review, we summarize the photosynthesis model, including its continued development and applications. We also review the implications these developments have on quantifying photosynthesis at a wide range of spatial and temporal scales, and discuss the model's role in determining photosynthetic responses to changes in environmental conditions. Finally, the review includes a discussion of the larger-scale modelling and remote-sensing applications that rely on the leaf photosynthesis model and are likely to open new scientific avenues to address the increasing challenges to plant productivity over the next century.


Assuntos
Carbono/metabolismo , Cloroplastos/metabolismo , Ecossistema , Modelos Biológicos , Fotossíntese , Ribulose-Bifosfato Carboxilase/metabolismo
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