Spinocerebellar ataxia 38: structure-function analysis shows ELOVL5 G230V is proteotoxic, conformationally altered and a mutational hotspot

Author:

Ferrero Enza1,Gregorio Eleonora Di2,Ferrero Marta3,Ortolan Erika1,Moon Young-Ah4,Campli Antonella Di5,Pavinato Lisa1,Mancini Cecilia6,Tripathy Debasmita7,Manes Marta8,Hoxha Eriola1,Costanzi Chiara9,Pozzi Elisa1,Sebastiano Matteo Rossi1,Mitro Nico10,Tempia Filippo1,Caruso Donatella10,Borroni Barbara8,Basso Manuela7,Sallese Michele11,Brusco Alfredo12ORCID

Affiliation:

1. University of Turin: Universita degli Studi di Torino

2. Azienda Ospedaliero Universitaria Citta della Salute e della Scienza di Torino

3. Istituto Zooprofilattico Sperimentale del Piemonte Liguria e Valle d'Aosta

4. Inha University College of Medicine: Inha University School of Medicine

5. Institute of Protein Biochemistry and Enzymology National Research Council: Istituto di Biochimica e Biologia Cellulare Consiglio Nazionale delle Ricerche

6. OPBG: Ospedale Pediatrico Bambino Gesu

7. University of Trento: Universita degli Studi di Trento

8. University of Brescia: Universita degli Studi di Brescia

9. Hospital of Cremona: Ospedale Cremona

10. University of Milan: Universita degli Studi di Milano

11. Gabriele d'Annunzio University of Chieti and Pescara: Universita degli Studi Gabriele d'Annunzio Chieti Pescara

12. Universita degli Studi di Torino

Abstract

Abstract Fatty acid elongase ELOVL5 is part of a protein family of multipass transmembrane proteins that reside in the endoplasmic reticulum where they regulate long-chain fatty acid elongation. A missense variant (c.689G > T p.Gly230Val) in ELOVL5 causes Spinocerebellar Ataxia subtype 38 (SCA38), a neurodegenerative disorder characterized by autosomal dominant inheritance, cerebellar Purkinje cell demise and adult-onset ataxia. Having previously showed aberrant accumulation of p.G230V in the Golgi complex, here we further investigated the pathogenic mechanisms triggered by p.G230V, integrating functional studies with bioinformatic analyses of protein sequence and structure. Biochemical analysis showed that p.G230V enzymatic activity was normal. In contrast, SCA38-derived fibroblasts showed reduced expression of ELOVL5, Golgi complex enlargement and increased proteasomal degradation with respect to controls. By heterologous overexpression, p.G230V was significantly more active than wild-type ELOVL5 in triggering the unfolded protein response and in decreasing viability in mouse cortical neurons. By homology modelling, we generated native and p.G230V protein structures whose superposition revealed a shift in Loop 6 in p.G230V that altered a highly conserved intramolecular disulfide bond. The conformation of this bond, connecting Loop 2 and Loop 6, appears to be elongase-specific. Alteration of this intramolecular interaction was also observed when comparing wild-type ELOVL4 and the p.W246G variant which causes SCA34. We demonstrate by sequence and structure analyses that ELOVL5 p.G230V and ELOVL4 p.W246G are position-equivalent missense variants. We conclude that SCA38 is a conformational disease and propose combined loss of function by mislocalization and gain of toxic function by ER/Golgi stress as early events in SCA38 pathogenesis.

Publisher

Research Square Platform LLC

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