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  4. The Unfolded Protein Response Transcription Factor Xbp1S Ameliorates Alzheimer'S Disease By Improving Synaptic Function And Proteostasis
 
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The Unfolded Protein Response Transcription Factor Xbp1S Ameliorates Alzheimer'S Disease By Improving Synaptic Function And Proteostasis

Journal
Molecular Therapy
Date Issued
2023-04-03
Author(s)
Claudia Duran-Aniotz
Natalia Poblete
Catalina Rivera-Krstulovic
Ardiles, Álvaro  
Facultad de Medicina  
Mei Li Díaz-Hung
Giovanni Tamburini
Carleen Mae P. Sabusap
Yannis Gerakis
Felipe Cabral-Miranda
Javier Diaz
Matias Fuentealba
Diego Arriagada
Ernesto Muñoz
Sandra Espinoza
Gabriela Martinez
Gabriel Quiroz
Pablo Sardi
Danilo B. Medinas
Darwin Contreras
Ricardo Piña
Mychael V. Lourenco
Felipe C. Ribeiro
Sergio T. Ferreira
Carlos Rozas
Bernardo Morales
Lars Plate
Christian Gonzalez-Billault
Palacios, Adrián  
Facultad de Ciencias  
Claudio Hetz
DOI
10.1016/j.ymthe.2023.03.028
WoS ID
WOS:001039997000001
Abstract
Alteration in the buffering capacity of the proteostasis network is an emerging feature of Alzheimer's disease (AD), highlighting the occurrence of endoplasmic reticulum (ER) stress. The unfolded protein response (UPR) is the main adaptive pathway to cope with protein folding stress at the ER. Inositol-requiring enzyme-1 (IRE1) operates as a central ER stress sensor, enabling the establishment of adaptive and repair programs through the control of the expression of the transcription factor X-box binding protein 1 (XBP1). To artificially enforce the adaptive capacity of the UPR in the AD brain, we developed strategies to express the active form of XBP1 in the brain. Overexpression of XBP1 in the nervous system using transgenic mice reduced the load of amyloid deposits and preserved synaptic and cognitive function. Moreover, local delivery of XBP1 into the hippocampus of an 5xFAD mice using adeno-associated vectors improved different AD features. XBP1 expression corrected a large proportion of the proteomic alterations observed in the AD model, restoring the levels of several synaptic proteins and factors involved in actin cytoskeleton regulation and axonal growth. Our results illustrate the therapeutic potential of targeting UPR-dependent gene expression programs as a strategy to ameliorate AD features and sustain synaptic function.
Subjects

Biotechnology And App...

Drug Discovery

Genetics And Heredity...

Genetics

Medicine, Research An...

Medicine

Molecular Biology

Molecular Medicine

Pharmacology

OCDE Subjects

Medical And Health Sc...

Quartile (Date Issued)
Q1
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