<?xml version='1.0' encoding='UTF-8'?><metadata xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance" xmlns:dc="http://purl.org/dc/elements/1.1/" xmlns:dcterms="http://purl.org/dc/terms/" xmlns="http://dublincore.org/documents/dcmi-terms/"><dcterms:title>Artificial enforcement of the unfolded protein response (UPR) reduces disease features in multiple preclinical models of ALS/FTD.</dcterms:title><dcterms:identifier>https://doi.org/10.34691/UCHILE/4MDLCP</dcterms:identifier><dcterms:creator>Hetz, Claudio</dcterms:creator><dcterms:creator>Vicente Valenzuela</dcterms:creator><dcterms:creator>Daniela Becerra</dcterms:creator><dcterms:creator>José Astorga</dcterms:creator><dcterms:creator>Matias Fuentealba</dcterms:creator><dcterms:creator>Guillermo Diaz</dcterms:creator><dcterms:creator>Leslie Bargsted</dcterms:creator><dcterms:creator>Carlos Chacón</dcterms:creator><dcterms:creator>Alexis Martinez</dcterms:creator><dcterms:creator>Romina Gozalvo</dcterms:creator><dcterms:creator>Kasey Jackson</dcterms:creator><dcterms:creator>Vania Morales</dcterms:creator><dcterms:creator>Macarena Las Heras</dcterms:creator><dcterms:creator>Giovanni Tamburini</dcterms:creator><dcterms:creator>Leonard Petrucelli</dcterms:creator><dcterms:creator>Pablo Sardi</dcterms:creator><dcterms:creator>Lars Plate</dcterms:creator><dcterms:publisher>Repositorio de datos de investigación de la Universidad de Chile</dcterms:publisher><dcterms:issued>2024-05-30</dcterms:issued><dcterms:modified>2024-05-30T14:29:34Z</dcterms:modified><dcterms:description>Data used for Research Article submission to Molecular Therapy Journal for review Amyotrophic lateral sclerosis (ALS) and fronto-temporal dementia (FTD) are part of a spectrum of diseases that share several causative genes, resulting on a combinatory of motor and cognitive symptoms and abnormal protein aggregation. Multiple unbiased studies have revealed that proteostasis impairment at the level of the endoplasmic reticulum (ER) is a transversal pathogenic feature of ALS/FTD. The transcription factor XBP1s is a master regulator of the unfolded protein response (UPR), the main adaptive pathway to cope with ER stress. Here we provide evidence of suboptimal activation of the UPR in ALS/FTD models under experimental ER stress. To artificially engage the UPR, we intracerebroventricularly administrated adeno-associated viruses (AAV) to express the active form of XBP1 (XBP1s) in the nervous system of ALS/FTD models. XBP1s expression improved motor performance and extended life span of mutant SOD1 mice, associated with reduced protein aggregation. AAV-XBP1s administration also attenuated disease progression in models of TDP-43 and C9orf72 pathogenesis. Proteomic profiling of spinal cord tissue revealed that XBP1s overexpression improved proteostasis and modulated the expression of a cluster of synaptic and cell morphology proteins. Our results suggest that strategies to improve ER proteostasis may serve as a pan-therapeutic strategy to treat ALS/FTD.</dcterms:description><dcterms:subject>Medicine, Health and Life Sciences</dcterms:subject><dcterms:date>2024-05-30</dcterms:date><dcterms:contributor>Hetz, Claudio</dcterms:contributor><dcterms:dateSubmitted>2024-05-30</dcterms:dateSubmitted><dcterms:license>CC-BY 4.0</dcterms:license></metadata>