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Overproduction of the Membrane-bound Receptor-like Protein Kinase 1, RPK1, Enhances Abiotic Stress Tolerance in Arabidopsis
Authors:Yuriko Osakabe  Shinji Mizuno  Hidenori Tanaka  Kyonoshin Maruyama  Keishi Osakabe  Daisuke Todaka  Yasunari Fujita  Masatomo Kobayashi  Kazuo Shinozaki  and Kazuko Yamaguchi-Shinozaki
Abstract:RPK1 (receptor-like protein kinase 1) localizes to the plasma membrane and functions as a regulator of abscisic acid (ABA) signaling in Arabidopsis. In our current study, we investigated the effect of RPK1 disruption and overproduction upon plant responses to drought stress. Transgenic Arabidopsis overexpressing the RPK1 protein showed increased ABA sensitivity in their root growth and stomatal closure and also displayed less transpirational water loss. In contrast, a mutant lacking RPK1 function, rpk1-1, was found to be resistant to ABA during these processes and showed increased water loss. RPK1 overproduction in these transgenic plants thus increased their tolerance to drought stress. We performed microarray analysis of RPK1 transgenic plants and observed enhanced expression of several stress-responsive genes, such as Cor15a, Cor15b, and rd29A, in addition to H2O2-responsive genes. Consistently, the expression levels of ABA/stress-responsive genes in rpk1-1 had decreased compared with wild type. The results suggest that the overproduction of RPK1 enhances both the ABA and drought stress signaling pathways. Furthermore, the leaves of the rpk1-1 plants exhibit higher sensitivity to oxidative stress upon ABA-pretreatment, whereas transgenic plants overproducing RPK1 manifest increased tolerance to this stress. Our current data suggest therefore that RPK1 overproduction controls reactive oxygen species homeostasis and enhances both water and oxidative stress tolerance in Arabidopsis.
Keywords:Arabidopsis  Membrane/Proteins  Oxygen/Reactive  Phosphorylation/Kinases/Serine-Threonine  Receptors/Threonine-Serine Kinases  Signal Transduction/Protein Kinases/Serine/Threonine  Abscisic Acid (ABA)  Reactive Oxygen Species (ROS)  Receptor-like Kinase  Drought Stress
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