Asset Details
MbrlCatalogueTitleDetail
Do you wish to reserve the book?
SnRK1 activates autophagy via the TOR signaling pathway in Arabidopsis thaliana
by
Bassham, Diane C.
, Soto-Burgos, Junmarie
in
Abiotic stress
/ Activation
/ Arabidopsis - cytology
/ Arabidopsis - drug effects
/ Arabidopsis - metabolism
/ Arabidopsis - physiology
/ Arabidopsis Proteins - antagonists & inhibitors
/ Arabidopsis Proteins - genetics
/ Arabidopsis Proteins - metabolism
/ Arabidopsis thaliana
/ Autophagic cell death
/ Autophagy
/ Autophagy - drug effects
/ BASIC BIOLOGICAL SCIENCES
/ Biodegradation
/ Biology and Life Sciences
/ Catalysis
/ Cell death
/ Degradation
/ Ecological stress
/ Ecology and Environmental Sciences
/ Embryos
/ Energy
/ Environmental stress
/ Gene Knockout Techniques
/ Genes
/ Homeostasis
/ Inhibition
/ Kinases
/ Liquid chromatography-mass spectrometry
/ Mammals
/ Metabolism
/ Metabolites
/ Mutation
/ Nutrient deficiency
/ Nutrients
/ Osmotic shock
/ Pathogens
/ Phagocytosis
/ Phosphatidylinositol 3-Kinases - metabolism
/ Phosphorylation
/ Physical Sciences
/ Plant resistance to abiotic stress
/ Protein kinase
/ Protein Kinase Inhibitors - pharmacology
/ Protein kinases
/ Proteins
/ Regulator genes
/ Research and Analysis Methods
/ Salts
/ Seedlings
/ Signal transduction
/ Signal Transduction - drug effects
/ Stress, Physiological - genetics
/ Stresses
/ Sucrose
/ Transcription Factors - antagonists & inhibitors
/ Transcription Factors - deficiency
/ Transcription Factors - genetics
/ Transcription Factors - metabolism
/ Upstream
/ Yeast
2017
Hey, we have placed the reservation for you!
By the way, why not check out events that you can attend while you pick your title.
You are currently in the queue to collect this book. You will be notified once it is your turn to collect the book.
Oops! Something went wrong.
Looks like we were not able to place the reservation. Kindly try again later.
Are you sure you want to remove the book from the shelf?
SnRK1 activates autophagy via the TOR signaling pathway in Arabidopsis thaliana
by
Bassham, Diane C.
, Soto-Burgos, Junmarie
in
Abiotic stress
/ Activation
/ Arabidopsis - cytology
/ Arabidopsis - drug effects
/ Arabidopsis - metabolism
/ Arabidopsis - physiology
/ Arabidopsis Proteins - antagonists & inhibitors
/ Arabidopsis Proteins - genetics
/ Arabidopsis Proteins - metabolism
/ Arabidopsis thaliana
/ Autophagic cell death
/ Autophagy
/ Autophagy - drug effects
/ BASIC BIOLOGICAL SCIENCES
/ Biodegradation
/ Biology and Life Sciences
/ Catalysis
/ Cell death
/ Degradation
/ Ecological stress
/ Ecology and Environmental Sciences
/ Embryos
/ Energy
/ Environmental stress
/ Gene Knockout Techniques
/ Genes
/ Homeostasis
/ Inhibition
/ Kinases
/ Liquid chromatography-mass spectrometry
/ Mammals
/ Metabolism
/ Metabolites
/ Mutation
/ Nutrient deficiency
/ Nutrients
/ Osmotic shock
/ Pathogens
/ Phagocytosis
/ Phosphatidylinositol 3-Kinases - metabolism
/ Phosphorylation
/ Physical Sciences
/ Plant resistance to abiotic stress
/ Protein kinase
/ Protein Kinase Inhibitors - pharmacology
/ Protein kinases
/ Proteins
/ Regulator genes
/ Research and Analysis Methods
/ Salts
/ Seedlings
/ Signal transduction
/ Signal Transduction - drug effects
/ Stress, Physiological - genetics
/ Stresses
/ Sucrose
/ Transcription Factors - antagonists & inhibitors
/ Transcription Factors - deficiency
/ Transcription Factors - genetics
/ Transcription Factors - metabolism
/ Upstream
/ Yeast
2017
Oops! Something went wrong.
While trying to remove the title from your shelf something went wrong :( Kindly try again later!
Do you wish to request the book?
SnRK1 activates autophagy via the TOR signaling pathway in Arabidopsis thaliana
by
Bassham, Diane C.
, Soto-Burgos, Junmarie
in
Abiotic stress
/ Activation
/ Arabidopsis - cytology
/ Arabidopsis - drug effects
/ Arabidopsis - metabolism
/ Arabidopsis - physiology
/ Arabidopsis Proteins - antagonists & inhibitors
/ Arabidopsis Proteins - genetics
/ Arabidopsis Proteins - metabolism
/ Arabidopsis thaliana
/ Autophagic cell death
/ Autophagy
/ Autophagy - drug effects
/ BASIC BIOLOGICAL SCIENCES
/ Biodegradation
/ Biology and Life Sciences
/ Catalysis
/ Cell death
/ Degradation
/ Ecological stress
/ Ecology and Environmental Sciences
/ Embryos
/ Energy
/ Environmental stress
/ Gene Knockout Techniques
/ Genes
/ Homeostasis
/ Inhibition
/ Kinases
/ Liquid chromatography-mass spectrometry
/ Mammals
/ Metabolism
/ Metabolites
/ Mutation
/ Nutrient deficiency
/ Nutrients
/ Osmotic shock
/ Pathogens
/ Phagocytosis
/ Phosphatidylinositol 3-Kinases - metabolism
/ Phosphorylation
/ Physical Sciences
/ Plant resistance to abiotic stress
/ Protein kinase
/ Protein Kinase Inhibitors - pharmacology
/ Protein kinases
/ Proteins
/ Regulator genes
/ Research and Analysis Methods
/ Salts
/ Seedlings
/ Signal transduction
/ Signal Transduction - drug effects
/ Stress, Physiological - genetics
/ Stresses
/ Sucrose
/ Transcription Factors - antagonists & inhibitors
/ Transcription Factors - deficiency
/ Transcription Factors - genetics
/ Transcription Factors - metabolism
/ Upstream
/ Yeast
2017
Please be aware that the book you have requested cannot be checked out. If you would like to checkout this book, you can reserve another copy
We have requested the book for you!
Your request is successful and it will be processed during the Library working hours. Please check the status of your request in My Requests.
Oops! Something went wrong.
Looks like we were not able to place your request. Kindly try again later.
SnRK1 activates autophagy via the TOR signaling pathway in Arabidopsis thaliana
Journal Article
SnRK1 activates autophagy via the TOR signaling pathway in Arabidopsis thaliana
2017
Request Book From Autostore
and Choose the Collection Method
Overview
Autophagy is a degradation process in which cells break down and recycle their cytoplasmic contents when subjected to environmental stress or during cellular remodeling. The Arabidopsis thaliana SnRK1 complex is a protein kinase that senses changes in energy levels and triggers downstream responses to enable survival. Its mammalian ortholog, AMPK, and yeast ortholog, Snf-1, activate autophagy in response to low energy conditions. We therefore hypothesized that SnRK1 may play a role in the regulation of autophagy in response to nutrient or energy deficiency in Arabidopsis. To test this hypothesis, we determined the effect of overexpression or knockout of the SnRK1 catalytic subunit KIN10 on autophagy activation by abiotic stresses, including nutrient deficiency, salt, osmotic, oxidative, and ER stress. While wild-type plants had low basal autophagy activity in control conditions, KIN10 overexpression lines had increased autophagy under these conditions, indicating activation of autophagy by SnRK1. A kin10 mutant had a basal level of autophagy under control conditions similar to wild-type plants, but activation of autophagy by most abiotic stresses was blocked, indicating that SnRK1 is required for autophagy induction by a wide variety of stress conditions. In mammals, TOR is a negative regulator of autophagy, and AMPK acts to activate autophagy both upstream of TOR, by inhibiting its activity, and in a parallel pathway. Inhibition of Arabidopsis TOR leads to activation of autophagy; inhibition of SnRK1 did not block this activation. Furthermore, an increase in SnRK1 activity was unable to induce autophagy when TOR was also activated. These results demonstrate that SnRK1 acts upstream of TOR in the activation of autophagy in Arabidopsis.
Publisher
Public Library of Science,Public Library of Science (PLoS)
Subject
/ Arabidopsis Proteins - antagonists & inhibitors
/ Arabidopsis Proteins - genetics
/ Arabidopsis Proteins - metabolism
/ Ecology and Environmental Sciences
/ Embryos
/ Energy
/ Genes
/ Kinases
/ Liquid chromatography-mass spectrometry
/ Mammals
/ Mutation
/ Phosphatidylinositol 3-Kinases - metabolism
/ Plant resistance to abiotic stress
/ Protein Kinase Inhibitors - pharmacology
/ Proteins
/ Research and Analysis Methods
/ Salts
/ Signal Transduction - drug effects
/ Stress, Physiological - genetics
/ Stresses
/ Sucrose
/ Transcription Factors - antagonists & inhibitors
/ Transcription Factors - deficiency
/ Transcription Factors - genetics
/ Transcription Factors - metabolism
/ Upstream
/ Yeast
This website uses cookies to ensure you get the best experience on our website.