Aberrant upregulation of the glycolytic enzyme PFKFB3 in CLN7 neuronal ceroid lipofuscinosis

Author:

Lopez-Fabuel IreneORCID,Garcia-Macia MarinaORCID,Buondelmonte Costantina,Burmistrova Olga,Bonora Nicolo,Alonso-Batan Paula,Morant-Ferrando Brenda,Vicente-Gutierrez CarlosORCID,Jimenez-Blasco Daniel,Quintana-Cabrera RubenORCID,Fernandez Emilio,Llop Jordi,Ramos-Cabrer PedroORCID,Sharaireh Aseel,Guevara-Ferrer MartaORCID,Fitzpatrick Lorna,Thompton Christopher D.,McKay Tristan R.,Storch Stephan,Medina Diego L.ORCID,Mole Sara E.ORCID,Fedichev Peter O.,Almeida AngelesORCID,Bolaños Juan P.ORCID

Abstract

AbstractCLN7 neuronal ceroid lipofuscinosis is an inherited lysosomal storage neurodegenerative disease highly prevalent in children. CLN7/MFSD8 gene encodes a lysosomal membrane glycoprotein, but the biochemical processes affected by CLN7-loss of function are unexplored thus preventing development of potential treatments. Here, we found, in the Cln7∆ex2 mouse model of CLN7 disease, that failure in autophagy causes accumulation of structurally and bioenergetically impaired neuronal mitochondria. In vivo genetic approach reveals elevated mitochondrial reactive oxygen species (mROS) in Cln7∆ex2 neurons that mediates glycolytic enzyme PFKFB3 activation and contributes to CLN7 pathogenesis. Mechanistically, mROS sustains a signaling cascade leading to protein stabilization of PFKFB3, normally unstable in healthy neurons. Administration of the highly selective PFKFB3 inhibitor AZ67 in Cln7∆ex2 mouse brain in vivo and in CLN7 patients-derived cells rectifies key disease hallmarks. Thus, aberrant upregulation of the glycolytic enzyme PFKFB3 in neurons may contribute to CLN7 pathogenesis and targeting PFKFB3 could alleviate this and other lysosomal storage diseases.

Publisher

Springer Science and Business Media LLC

Subject

General Physics and Astronomy,General Biochemistry, Genetics and Molecular Biology,General Chemistry,Multidisciplinary

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