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090 _aB-21226
245 1 0 _aHow plant roots respond to waterlogging
490 0 _aJournal of Experimental Botany. 75(2), 511-525, 2024, DOI: 10.1093/jxb/erad332
520 3 _aPlant submergence is a major abiotic stress that impairs plant performance. Under water, reduced gas diffusion exposes submerged plant cells to an environment that is enriched in gaseous ethylene and is limited in oxygen (O2) availability (hypoxia). The capacity for plant roots to avoid and/or sustain critical hypoxia damage is essential for plants to survive waterlogging. Plants use spatiotemporal ethylene and O2 dynamics as instrumental flooding signals to modulate potential adaptive root growth and hypoxia stress acclimation responses. However, how non-Adapted plant species modulate root growth behaviour during actual waterlogged conditions to overcome flooding stress has hardly been investigated. Here we discuss how changes in the root growth rate, lateral root formation, density, and growth angle of non-flood adapted plant species (mainly Arabidopsis) could contribute to avoiding and enduring critical hypoxic conditions. In addition, we discuss current molecular understanding of how ethylene and hypoxia signalling control these adaptive root growth responses. We propose that future research would benefit from less artificial experimental designs to better understand how plant roots respond to and survive waterlogging. This acquired knowledge would be instrumental to guide targeted breeding of flood-Tolerant crops with more resilient root systems. © 2023 The Author(s). Published by Oxford University Press on behalf of the Society for Experimental Biology. All rights reserved.
650 1 4 _aABIOTIC STRESS
650 1 4 _aETHYLENE
650 1 4 _aFLOODING
650 1 4 _aHYPOXIA
650 1 4 _aLATERAL ROOT
650 1 4 _aROOT GROWTH ANGLE
650 1 4 _aROOT SYSTEM ARCHITECTURE
650 1 4 _aSIGNALLING
650 1 4 _aSUBMERGENCE
650 1 4 _aWATERLOGGING
700 1 2 _aDaniel K.
700 1 2 _aHartman S.
856 4 0 _uhttps://drive.google.com/file/d/1UT8y2EIj7IxAKf5860YXvfPaXR35juVJ/view?usp=drivesdk
_zPara ver el documento ingresa a Google con tu cuenta @cicy.edu.mx
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