Interdependent nutrient availability and steroid hormone signals facilitate root growth plasticity
Date
2018
Journal Title
Journal ISSN
Volume Title
Publisher
Cell Press
Abstract
Plants acquire essential elements from inherently
heterogeneous soils, in which phosphate and iron
availabilities vary. Consequently, plants have developed
adaptive strategies to cope with low iron or
phosphate levels, including alternation between
root growth enhancement and attenuation. How
this adaptive response is achieved remains unclear.
Here, we found that low iron accelerates root growth
in Arabidopsis thaliana by activating brassinosteroid
signaling, whereas low-phosphate-induced high iron
accumulation inhibits it. Altered hormone signaling
intensity also modulated iron accumulation in the
root elongation and differentiation zones, constituting
a feedback response between brassinosteroid
and iron. Surprisingly, the early effect of low iron
levels on root growth depended on the brassinosteroid
receptor but was apparently hormone ligandindependent.
The brassinosteroid receptor inhibitor
BKI1, the transcription factors BES1/BZR1, and
the ferroxidase LPR1 operate at the base of this
feedback loop. Hence, shared brassinosteroid and
iron regulatory components link nutrient status
to root morphology, thereby driving the adaptive
response.
Description
Accepted date: 4 June 2018
Keywords
low phosphate, low iron, nutrient availability, root growth, cell elongation, brassinosteroids, BRI1
Citation
Developmental Cell, 46(1): 59-72.e1-e4
