The objective of this study was to increase our understanding of the relationship between brassinosteroids (BRs) and gibberellins (GAs) by examining the effects of BR deficiency on the GA biosynthesis pathway in several tissue types of pea (Pisum sativum L.). It was suggested recently that, in Arabidopsis, BRs act as positive regulators of GA 20-oxidation, a key step in GA biosynthesis [Bouquin et al. (2001) Plant Physiol 127:450–458]. However, this may not be the case in pea as GA20 levels were consistently higher in all shoot tissues of BR-deficient (lk and lkb) and BR-response (lka) mutants. The application of brassinolide (BL) to lkb plants reduced GA20 levels, and metabolism studies revealed a reduced conversion of GA19 to...
De-etiolation involves a number of phenotypic changes as the plants shift from a dark-grown (etiola...
It is widely accepted that brassinosteroids (BRs) are important regulators of plant growth and devel...
The auxin indole-3-acetic acid (IAA) has been shown to promote the biosynthesis of the active gibber...
The objective of this study was to increase our understanding of the relationship between brassinos...
Brassinosteroids (BRs) are now widely recognised as essential regulators of plant development. Our k...
Recent findings on auxin-gibberellin interactions in pea are reviewed, and related to those from st...
An increased understanding in recent years of the biosynthesis and signal transduction pathways for ...
In shoots of the garden pea (Pisum sativum L.), the main bioactive gibberellin (GA) is GA 1, which i...
To investigate gibberellin (GA) biosynthesis in mature tissue of pea (Pisum sativum L.) in the abse...
Plant growth and development are highly regulated processes that are coordinated by hormones includi...
Physiological changes within a plant during growth and development are under strict regulation, perm...
Auxin promotes GA biosynthesis in the aboveground parts of plants. However, it has not been demonstr...
In shoots of the garden pea, the bioactive gibberellin (GA1) is synthesised from GA20, and the enzym...
De-etiolation involves a number of phenotypic changes as the plants shift from a dark-grown (etiola...
It is widely accepted that brassinosteroids (BRs) are important regulators of plant growth and devel...
The auxin indole-3-acetic acid (IAA) has been shown to promote the biosynthesis of the active gibber...
The objective of this study was to increase our understanding of the relationship between brassinos...
Brassinosteroids (BRs) are now widely recognised as essential regulators of plant development. Our k...
Recent findings on auxin-gibberellin interactions in pea are reviewed, and related to those from st...
An increased understanding in recent years of the biosynthesis and signal transduction pathways for ...
In shoots of the garden pea (Pisum sativum L.), the main bioactive gibberellin (GA) is GA 1, which i...
To investigate gibberellin (GA) biosynthesis in mature tissue of pea (Pisum sativum L.) in the abse...
Plant growth and development are highly regulated processes that are coordinated by hormones includi...
Physiological changes within a plant during growth and development are under strict regulation, perm...
Auxin promotes GA biosynthesis in the aboveground parts of plants. However, it has not been demonstr...
In shoots of the garden pea, the bioactive gibberellin (GA1) is synthesised from GA20, and the enzym...
De-etiolation involves a number of phenotypic changes as the plants shift from a dark-grown (etiola...
It is widely accepted that brassinosteroids (BRs) are important regulators of plant growth and devel...
The auxin indole-3-acetic acid (IAA) has been shown to promote the biosynthesis of the active gibber...