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Data_Sheet_1_Reduction of inflammation and mitochondrial degeneration in mutant SOD1 mice through inhibition of voltage-gated potassium channel Kv1.3.PDF

Title: Data_Sheet_1_Reduction of inflammation and mitochondrial degeneration in mutant SOD1 mice through inhibition of voltage-gated potassium channel Kv1.3.PDF
Authors: Patrizia Ratano; Germana Cocozza; Cecilia Pinchera; Ludovica Maria Busdraghi; Iva Cantando; Katiuscia Martinello; Mariarosaria Scioli; Maria Rosito; Paola Bezzi; Sergio Fucile; Heike Wulff; Cristina Limatola; Giuseppina D’Alessandro
Publication Year: 2024
Collection: Frontiers: Figshare
Subject Terms: Molecular Biology; Neuroscience; Structural Biology; Central Nervous System; Molecular Evolution; Molecular Medicine; ALS; mutant SOD1; Kv1.3 channels; mitochondria; inflammation
Description: Amyotrophic lateral sclerosis (ALS) is a fatal neurodegenerative disease with no effective therapy, causing progressive loss of motor neurons in the spinal cord, brainstem, and motor cortex. Regardless of its genetic or sporadic origin, there is currently no cure for ALS or therapy that can reverse or control its progression. In the present study, taking advantage of a human superoxide dismutase-1 mutant (hSOD1-G93A) mouse that recapitulates key pathological features of human ALS, we investigated the possible role of voltage-gated potassium channel Kv1.3 in disease progression. We found that chronic administration of the brain-penetrant Kv1.3 inhibitor, PAP-1 (40 mg/Kg), in early symptomatic mice (i) improves motor deficits and prolongs survival of diseased mice (ii) reduces astrocyte reactivity, microglial Kv1.3 expression, and serum pro-inflammatory soluble factors (iii) improves structural mitochondrial deficits in motor neuron mitochondria (iv) restores mitochondrial respiratory dysfunction. Taken together, these findings underscore the potential significance of Kv1.3 activity as a contributing factor to the metabolic disturbances observed in ALS. Consequently, targeting Kv1.3 presents a promising avenue for modulating disease progression, shedding new light on potential therapeutic strategies for ALS.
Document Type: dataset
Language: unknown
DOI: 10.3389/fnmol.2023.1333745.s001
Availability: https://doi.org/10.3389/fnmol.2023.1333745.s001; https://figshare.com/articles/dataset/Data_Sheet_1_Reduction_of_inflammation_and_mitochondrial_degeneration_in_mutant_SOD1_mice_through_inhibition_of_voltage-gated_potassium_channel_Kv1_3_PDF/25001375
Rights: CC BY 4.0
Accession Number: edsbas.AFDC8EA4
Database: BASE