SINEUP non-coding RNAs rescue defective frataxin expression and activity in a cellular model of Friedreich's Ataxia

Author:

Bon Carlotta12ORCID,Luffarelli Riccardo3,Russo Roberta2,Fortuni Silvia3,Pierattini Bianca12,Santulli Chiara2,Fimiani Cristina2,Persichetti Francesca4,Cotella Diego4ORCID,Mallamaci Antonello2,Santoro Claudio4,Carninci Piero5,Espinoza Stefano1,Testi Roberto3,Zucchelli Silvia24,Condò Ivano3ORCID,Gustincich Stefano12

Affiliation:

1. Central RNA Laboratory, Istituto Italiano di Tecnologia (IIT), Genova, Italy

2. Area of Neuroscience, International School for Advanced Studies (SISSA), Italy

3. Department of Biomedicine and Prevention, Laboratory of Signal Transduction, University of Rome Tor Vergata, Rome, Italy

4. Department of Health Sciences and Interdisciplinary Research Center of Autoimmune Diseases (IRCAD), University of Piemonte Orientale (UPO), Novara, Italy

5. RIKEN Center for Life Science Technologies, Division of Genomic Technologies, Yokohama, Kanagawa, Japan

Abstract

Abstract Friedreich's ataxia (FRDA) is an untreatable disorder with neuro- and cardio-degenerative progression. This monogenic disease is caused by the hyper-expansion of naturally occurring GAA repeats in the first intron of the FXN gene, encoding for frataxin, a protein implicated in the biogenesis of iron-sulfur clusters. As the genetic defect interferes with FXN transcription, FRDA patients express a normal frataxin protein but at insufficient levels. Thus, current therapeutic strategies are mostly aimed to restore physiological FXN expression. We have previously described SINEUPs, natural and synthetic antisense long non-coding RNAs, which promote translation of partially overlapping mRNAs through the activity of an embedded SINEB2 domain. Here, by in vitro screening, we have identified a number of SINEUPs targeting human FXN mRNA and capable to up-regulate frataxin protein to physiological amounts acting at the post-transcriptional level. Furthermore, FXN-specific SINEUPs promote the recovery of disease-associated mitochondrial aconitase defects in FRDA-derived cells. In summary, we provide evidence that SINEUPs may be the first gene-specific therapeutic approach to activate FXN translation in FRDA and, more broadly, a novel scalable platform to develop new RNA-based therapies for haploinsufficient diseases.

Funder

Telethon Grant

Italian Ministry of Education

University and Research FIRB

Istituto Italiano di Tecnologia

Publisher

Oxford University Press (OUP)

Subject

Genetics

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