Intraspecific variation in phenotypic plasticity is a critical determinant of plant species capacity to cope with climate change. A long-standing hypothesis states that greater levels of environmental variability will select for genotypes with greater phenotypic plasticity. However, few studies have examined how genotypes of woody species originating from contrasting environments respond to multiple climate change factors. Here, we investigated the main and interactive effects of elevated [CO2] (CE) and elevated temperature (TE) on growth and physiology of Coastal (warmer, less variable temperature environment) and Upland (cooler, more variable temperature environment) genotypes of an Australian woody species Telopea speciosissima. Both gen...
Our ability to understand the underlying morphological and physiological responses of plants to chan...
Examining intraspecific variation in growth and function in relation to climate may provide insight ...
Local persistence of plant species in the face of climate change is largely mediated by genetic adap...
Intraspecific variation in phenotypic plasticity is a critical determinant of plant species capacity ...
Increases in global carbon dioxide, temperature and, in some latitudes, humidity are characteristic ...
In this chapter we compile data on intraspecifc variation in plant reproductive, growth, and physiol...
Climate warming affects plant physiology through genetic adaptation and phenotypic plasticity, but l...
International audienceElevated atmospheric carbon dioxide (eCO 2) often enhances rates of photosynth...
Widespread species often occur across a range of climatic conditions, through a combination of local...
Climate change scenarios predict increasing atmospheric CO2 concentrations ([CO2]), temperatures and...
Predicting plastic responses is crucial to assess plant species potential to adapt to climate change...
Given ongoing climate changes and their impact on plant growth and development, CO2 effects have bee...
1. Understanding species' abilities to cope with changing climate is a key prerequisite for pred...
The aboveground growth, physiological and biochemical parameters of two clones of the cosmopolitan w...
The concentration of atmospheric carbon dioxide (CO2) in the atmosphere has increased by 35% since p...
Our ability to understand the underlying morphological and physiological responses of plants to chan...
Examining intraspecific variation in growth and function in relation to climate may provide insight ...
Local persistence of plant species in the face of climate change is largely mediated by genetic adap...
Intraspecific variation in phenotypic plasticity is a critical determinant of plant species capacity ...
Increases in global carbon dioxide, temperature and, in some latitudes, humidity are characteristic ...
In this chapter we compile data on intraspecifc variation in plant reproductive, growth, and physiol...
Climate warming affects plant physiology through genetic adaptation and phenotypic plasticity, but l...
International audienceElevated atmospheric carbon dioxide (eCO 2) often enhances rates of photosynth...
Widespread species often occur across a range of climatic conditions, through a combination of local...
Climate change scenarios predict increasing atmospheric CO2 concentrations ([CO2]), temperatures and...
Predicting plastic responses is crucial to assess plant species potential to adapt to climate change...
Given ongoing climate changes and their impact on plant growth and development, CO2 effects have bee...
1. Understanding species' abilities to cope with changing climate is a key prerequisite for pred...
The aboveground growth, physiological and biochemical parameters of two clones of the cosmopolitan w...
The concentration of atmospheric carbon dioxide (CO2) in the atmosphere has increased by 35% since p...
Our ability to understand the underlying morphological and physiological responses of plants to chan...
Examining intraspecific variation in growth and function in relation to climate may provide insight ...
Local persistence of plant species in the face of climate change is largely mediated by genetic adap...