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1.
New Phytol ; 236(3): 958-973, 2022 Nov.
Article in English | MEDLINE | ID: mdl-35872572

ABSTRACT

Suberin in roots acts as a physical barrier preventing water/mineral losses. In Arabidopsis, root suberization is regulated by abscisic acid (ABA) and ethylene in response to nutrient stresses. ABA also mediates coordination between microbiota and root endodermis in mineral nutrient homeostasis. However, it is not known whether this regulatory system is common to plants in general, and whether there are other key molecule(s) involved. We show that serotonin acts downstream of ABA in regulating suberization in rice and Arabidopsis and negatively regulates suberization in rice roots in response to salinity. We show that ABA represses transcription of the key gene (OsT5H) in serotonin biosynthesis, thus promoting root suberization in rice. Conversely, overexpression of OsT5H or supplementation with exogenous serotonin represses suberization and reduces tolerance to salt stress. These results identify an ABA-serotonin regulatory module controlling root suberization in rice and Arabidopsis, which is likely to represent a general mechanism as ABA and serotonin are ubiquitous in plants. These findings are of significant importance to breeding novel crop varieties that are resilient to abiotic stresses and developing strategies for production of suberin-rich roots to sequestrate more CO2 , helping to mitigate the effects of climate change.


Subject(s)
Arabidopsis , Oryza , Abscisic Acid/pharmacology , Arabidopsis/physiology , Carbon Dioxide/pharmacology , Ethylenes/pharmacology , Gene Expression Regulation, Plant , Oryza/physiology , Plant Breeding , Plant Roots/physiology , Plants, Genetically Modified , Salinity , Salt Tolerance , Serotonin/pharmacology , Stress, Physiological , Water/pharmacology
2.
New Phytol ; 213(4): 1604-1610, 2017 Mar.
Article in English | MEDLINE | ID: mdl-27551946

ABSTRACT

Contents 1604 I. 1604 II. 1604 III. 1605 IV. 1608 V. 1609 1609 References 1609 SUMMARY: Plant roots forage the soil for nutrients and transport them upwards to the aerial parts. Nutrients entering the plant are transported through the concentric layers of epidermis, cortex and endodermis before reaching the central vasculature. The endodermis is the innermost cortical cell layer that surrounds the vasculature. The endodermis forms barriers, the Casparian strips and suberin lamellae, which have been assumed to play a major role in controlling nutrient acquisition. However, the molecular network controlling its differentiation has started to be investigated only recently, giving an unprecedented opportunity to address the role of these barriers in plant nutrition. This insight aims to present recent advances regarding endodermis differentiation, its function as a barrier for nutrients and its developmental plasticity, all pointing to a pivotal role of the endodermis as a checkpoint for nutrients.


Subject(s)
Nitrogen/metabolism , Phosphorus/metabolism , Plant Roots/cytology , Cell Differentiation , Models, Biological
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