[EN] The transition from etiolated to green seedlings involves a shift from hypocotyl growth-promoting conditions to growth restraint. These changes occur through a complex light-driven process involving multiple and tightly coordinated hormonal signaling pathways. Nitric oxide (NO) has been lately characterized as a regulator of plant development interacting with hormone signaling. Here, we show that Arabidopsis (Arabidopsis thaliana) NO-deficient mutant hypocotyls are longer than those from wild-type seedlings under red light but not under blue or far-red light. Accordingly, exogenous treatment with the NO donor sodium nitroprusside and mutant plants with increased endogenous NO levels resulted in reduced hypocotyl length. In addition to ...
Background and Aims: Auxin is the main phytohormone controlling root development in plants. This stu...
Nitric oxide (NO) is emerging as an important signalling molecule in plants. A major source of NO in...
Nitric oxide (NO) has been known to preserve the level of chlorophyll (Chl) during leaf senescence. ...
[EN] The transition from etiolated to green seedlings involves a shift from hypocotyl growth-promoti...
Plant morphogenesis is profoundly influenced by light (a phenomenon known as photomorphogenesis). Fo...
As a gaseous biological signaling molecule, nitric oxide (NO) regulates many physiological processes...
International audienceIn plants, light represents an important environmental signal that triggers th...
Arabidopsis De-etiolated 1 (DET1) is one of the key repressors that maintain the etiolated state of ...
In plants, light represents an important environmental signal that triggers the production of photos...
[EN] Plants are often exposed to high levels of nitric oxide (NO) that affects development and stres...
Cell elongation during seedling development is antagonistically regulated by light and gibberellins ...
Photosynthetic pigments in higher plants, including chlorophyll and carotenoid, are crucial for phot...
Hormone patterns tailor cell fate decisions during plant organ formation. Among them, auxins and cyt...
Light and gibberellins ( GAs) mediate many essential and partially overlapping plant developmental p...
Nitric oxide (NO) regulates a wide range of plant processes from development to environmental adapta...
Background and Aims: Auxin is the main phytohormone controlling root development in plants. This stu...
Nitric oxide (NO) is emerging as an important signalling molecule in plants. A major source of NO in...
Nitric oxide (NO) has been known to preserve the level of chlorophyll (Chl) during leaf senescence. ...
[EN] The transition from etiolated to green seedlings involves a shift from hypocotyl growth-promoti...
Plant morphogenesis is profoundly influenced by light (a phenomenon known as photomorphogenesis). Fo...
As a gaseous biological signaling molecule, nitric oxide (NO) regulates many physiological processes...
International audienceIn plants, light represents an important environmental signal that triggers th...
Arabidopsis De-etiolated 1 (DET1) is one of the key repressors that maintain the etiolated state of ...
In plants, light represents an important environmental signal that triggers the production of photos...
[EN] Plants are often exposed to high levels of nitric oxide (NO) that affects development and stres...
Cell elongation during seedling development is antagonistically regulated by light and gibberellins ...
Photosynthetic pigments in higher plants, including chlorophyll and carotenoid, are crucial for phot...
Hormone patterns tailor cell fate decisions during plant organ formation. Among them, auxins and cyt...
Light and gibberellins ( GAs) mediate many essential and partially overlapping plant developmental p...
Nitric oxide (NO) regulates a wide range of plant processes from development to environmental adapta...
Background and Aims: Auxin is the main phytohormone controlling root development in plants. This stu...
Nitric oxide (NO) is emerging as an important signalling molecule in plants. A major source of NO in...
Nitric oxide (NO) has been known to preserve the level of chlorophyll (Chl) during leaf senescence. ...