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IRE1 signaling exacerbates Alzheimer’s disease pathogenesis
by
Hetz, Claudio
, Medinas, Danilo B.
, Thielen, Peter
, Espinoza, Sandra
, Palacios, Adrian G.
, Salazar, Claudia
, Hoozemans, Jeroen J. M.
, Foley, Andrew
, Iwawaki, Takao
, Cornejo, Victor Hugo
, Duran-Aniotz, Claudia
, Soto, Claudio
, Ardiles, Álvaro O.
, Gajardo, Ivana
, Scheper, Wiep
in
Advertising executives
/ Alzheimer Disease - genetics
/ Alzheimer Disease - metabolism
/ Alzheimer Disease - pathology
/ Alzheimer's disease
/ Amyloid beta-Peptides - metabolism
/ Amyloid beta-protein
/ Amyloid beta-Protein Precursor - metabolism
/ Amyloid precursor protein
/ Animal experimentation
/ Animals
/ Apoptosis
/ Brain
/ Clonal deletion
/ Cortex
/ Development and progression
/ Disease Models, Animal
/ Disease Progression
/ Endoplasmic reticulum
/ Endoplasmic Reticulum Stress - physiology
/ Genetic engineering
/ Hippocampus
/ Hippocampus - metabolism
/ Hippocampus - pathology
/ Humans
/ Kinases
/ Learning
/ Long-term potentiation
/ Long-Term Potentiation - physiology
/ Medicine
/ Medicine & Public Health
/ Membrane Proteins - genetics
/ Membrane Proteins - metabolism
/ Memory
/ Mice
/ Mice, Transgenic
/ Nervous system
/ Neurodegenerative diseases
/ Neurons - metabolism
/ Neurons - pathology
/ Neurosciences
/ Original Paper
/ Pathogenesis
/ Pathology
/ Proteasomes
/ Protein folding
/ Protein interaction
/ Protein-Serine-Threonine Kinases - genetics
/ Protein-Serine-Threonine Kinases - metabolism
/ Proteins
/ Ribonuclease
/ Rodents
/ Signal transduction
/ Signal Transduction - physiology
/ Spatial Memory - physiology
/ Transcription (Genetics)
/ Transgenic mice
/ Unfolded Protein Response - physiology
/ β-Amyloid
2017
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IRE1 signaling exacerbates Alzheimer’s disease pathogenesis
by
Hetz, Claudio
, Medinas, Danilo B.
, Thielen, Peter
, Espinoza, Sandra
, Palacios, Adrian G.
, Salazar, Claudia
, Hoozemans, Jeroen J. M.
, Foley, Andrew
, Iwawaki, Takao
, Cornejo, Victor Hugo
, Duran-Aniotz, Claudia
, Soto, Claudio
, Ardiles, Álvaro O.
, Gajardo, Ivana
, Scheper, Wiep
in
Advertising executives
/ Alzheimer Disease - genetics
/ Alzheimer Disease - metabolism
/ Alzheimer Disease - pathology
/ Alzheimer's disease
/ Amyloid beta-Peptides - metabolism
/ Amyloid beta-protein
/ Amyloid beta-Protein Precursor - metabolism
/ Amyloid precursor protein
/ Animal experimentation
/ Animals
/ Apoptosis
/ Brain
/ Clonal deletion
/ Cortex
/ Development and progression
/ Disease Models, Animal
/ Disease Progression
/ Endoplasmic reticulum
/ Endoplasmic Reticulum Stress - physiology
/ Genetic engineering
/ Hippocampus
/ Hippocampus - metabolism
/ Hippocampus - pathology
/ Humans
/ Kinases
/ Learning
/ Long-term potentiation
/ Long-Term Potentiation - physiology
/ Medicine
/ Medicine & Public Health
/ Membrane Proteins - genetics
/ Membrane Proteins - metabolism
/ Memory
/ Mice
/ Mice, Transgenic
/ Nervous system
/ Neurodegenerative diseases
/ Neurons - metabolism
/ Neurons - pathology
/ Neurosciences
/ Original Paper
/ Pathogenesis
/ Pathology
/ Proteasomes
/ Protein folding
/ Protein interaction
/ Protein-Serine-Threonine Kinases - genetics
/ Protein-Serine-Threonine Kinases - metabolism
/ Proteins
/ Ribonuclease
/ Rodents
/ Signal transduction
/ Signal Transduction - physiology
/ Spatial Memory - physiology
/ Transcription (Genetics)
/ Transgenic mice
/ Unfolded Protein Response - physiology
/ β-Amyloid
2017
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IRE1 signaling exacerbates Alzheimer’s disease pathogenesis
by
Hetz, Claudio
, Medinas, Danilo B.
, Thielen, Peter
, Espinoza, Sandra
, Palacios, Adrian G.
, Salazar, Claudia
, Hoozemans, Jeroen J. M.
, Foley, Andrew
, Iwawaki, Takao
, Cornejo, Victor Hugo
, Duran-Aniotz, Claudia
, Soto, Claudio
, Ardiles, Álvaro O.
, Gajardo, Ivana
, Scheper, Wiep
in
Advertising executives
/ Alzheimer Disease - genetics
/ Alzheimer Disease - metabolism
/ Alzheimer Disease - pathology
/ Alzheimer's disease
/ Amyloid beta-Peptides - metabolism
/ Amyloid beta-protein
/ Amyloid beta-Protein Precursor - metabolism
/ Amyloid precursor protein
/ Animal experimentation
/ Animals
/ Apoptosis
/ Brain
/ Clonal deletion
/ Cortex
/ Development and progression
/ Disease Models, Animal
/ Disease Progression
/ Endoplasmic reticulum
/ Endoplasmic Reticulum Stress - physiology
/ Genetic engineering
/ Hippocampus
/ Hippocampus - metabolism
/ Hippocampus - pathology
/ Humans
/ Kinases
/ Learning
/ Long-term potentiation
/ Long-Term Potentiation - physiology
/ Medicine
/ Medicine & Public Health
/ Membrane Proteins - genetics
/ Membrane Proteins - metabolism
/ Memory
/ Mice
/ Mice, Transgenic
/ Nervous system
/ Neurodegenerative diseases
/ Neurons - metabolism
/ Neurons - pathology
/ Neurosciences
/ Original Paper
/ Pathogenesis
/ Pathology
/ Proteasomes
/ Protein folding
/ Protein interaction
/ Protein-Serine-Threonine Kinases - genetics
/ Protein-Serine-Threonine Kinases - metabolism
/ Proteins
/ Ribonuclease
/ Rodents
/ Signal transduction
/ Signal Transduction - physiology
/ Spatial Memory - physiology
/ Transcription (Genetics)
/ Transgenic mice
/ Unfolded Protein Response - physiology
/ β-Amyloid
2017
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IRE1 signaling exacerbates Alzheimer’s disease pathogenesis
Journal Article
IRE1 signaling exacerbates Alzheimer’s disease pathogenesis
2017
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Overview
Altered proteostasis is a salient feature of Alzheimer’s disease (AD), highlighting the occurrence of endoplasmic reticulum (ER) stress and abnormal protein aggregation. ER stress triggers the activation of the unfolded protein response (UPR), a signaling pathway that enforces adaptive programs to sustain proteostasis or eliminate terminally damaged cells. IRE1 is an ER-located kinase and endoribonuclease that operates as a major stress transducer, mediating both adaptive and proapoptotic programs under ER stress. IRE1 signaling controls the expression of the transcription factor XBP1, in addition to degrade several RNAs. Importantly, a polymorphism in the XBP1 promoter was suggested as a risk factor to develop AD. Here, we demonstrate a positive correlation between the progression of AD histopathology and the activation of IRE1 in human brain tissue. To define the significance of the UPR to AD, we targeted IRE1 expression in a transgenic mouse model of AD. Despite initial expectations that IRE1 signaling may protect against AD, genetic ablation of the RNase domain of IRE1 in the nervous system significantly reduced amyloid deposition, the content of amyloid β oligomers, and astrocyte activation. IRE1 deficiency fully restored the learning and memory capacity of AD mice, associated with improved synaptic function and improved long-term potentiation (LTP). At the molecular level, IRE1 deletion reduced the expression of amyloid precursor protein (APP) in cortical and hippocampal areas of AD mice. In vitro experiments demonstrated that inhibition of IRE1 downstream signaling reduces APP steady-state levels, associated with its retention at the ER followed by proteasome-mediated degradation. Our findings uncovered an unanticipated role of IRE1 in the pathogenesis of AD, offering a novel target for disease intervention.
Publisher
Springer Berlin Heidelberg,Springer,Springer Nature B.V
Subject
/ Alzheimer Disease - genetics
/ Alzheimer Disease - metabolism
/ Alzheimer Disease - pathology
/ Amyloid beta-Peptides - metabolism
/ Amyloid beta-Protein Precursor - metabolism
/ Animals
/ Brain
/ Cortex
/ Endoplasmic Reticulum Stress - physiology
/ Humans
/ Kinases
/ Learning
/ Long-Term Potentiation - physiology
/ Medicine
/ Membrane Proteins - genetics
/ Membrane Proteins - metabolism
/ Memory
/ Mice
/ Protein-Serine-Threonine Kinases - genetics
/ Protein-Serine-Threonine Kinases - metabolism
/ Proteins
/ Rodents
/ Signal Transduction - physiology
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