Histone demethylase KDM5C is a SAHA-sensitive central hub at the crossroads of transcriptional axes involved in multiple neurodevelopmental disorders

Author:

Poeta Loredana1,Padula Agnese12,Attianese Benedetta1,Valentino Mariaelena1,Verrillo Lucia12,Filosa Stefania34,Shoubridge Cheryl56,Barra Adriano1,Schwartz Charles E7,Christensen Jesper89,van Bokhoven Hans10,Helin Kristian89,Lioi Maria Brigida11,Collombat Patrick12,Gecz Jozef13,Altucci Lucia2,Di Schiavi Elia3,Miano Maria Giuseppina1

Affiliation:

1. Institute of Genetics and Biophysics “Adriano Buzzati-Traverso”, National Research Council (CNR), Naples, Italy

2. University of Campania Luigi Vanvitelli, Caserta, Italy

3. Institute of Biosciences and BioResources, National Research Council (CNR), Naples, Italy

4. Istituto Neurologico Mediterraneo (Neuromed), Pozzilli, Isernia, Italy

5. Intellectual Disability Research, Adelaide Medical School, The University of Adelaide, Adelaide, South Australia, Australia

6. Robinson Research Institute, Department of Paediatrics, University of Adelaide, Adelaide, South Australia, Australia

7. Greenwood Genetics Center, Greenwood, United States

8. University of Copenhagen, Biotech Research and Innovation Centre (BRIC), Copenhagen, Denmark

9. University of Copenhagen, The Novo Nordisk Foundation Center for Stem Cell Biology (Danstem), Copenhagen, Denmark

10. Department of Human Genetics, Donders Institute for Brain, Behaviour and Cognition, Radboudumc, Nijmegen, The Netherlands

11. Department of Science, University of Basilicata, Potenza, Italy

12. Université Côte d’Azur, CNRS, Inserm, iBV, Nice, France

13. Faculty of Health and Medical Sciences, The University of Adelaide, Adelaide, Australia

Abstract

AbstractA disproportional large number of neurodevelopmental disorders (NDDs) is caused by variants in genes encoding transcription factors and chromatin modifiers. However, the functional interactions between the corresponding proteins are only partly known. Here, we show that KDM5C, encoding a H3K4 demethylase, is at the intersection of transcriptional axes under the control of three regulatory proteins ARX, ZNF711 and PHF8. Interestingly, mutations in all four genes (KDM5C, ARX, ZNF711 and PHF8) are associated with X-linked NDDs comprising intellectual disability as a core feature. in vitro analysis of the KDM5C promoter revealed that ARX and ZNF711 function as antagonist transcription factors that activate KDM5C expression and compete for the recruitment of PHF8. Functional analysis of mutations in these genes showed a correlation between phenotype severity and the reduction in KDM5C transcriptional activity. The KDM5C decrease was associated with a lack of repression of downstream target genes Scn2a, Syn1 and Bdnf in the embryonic brain of Arx-null mice. Aiming to correct the faulty expression of KDM5C, we studied the effect of the FDA-approved histone deacetylase inhibitor suberanilohydroxamic acid (SAHA). In Arx-KO murine ES-derived neurons, SAHA was able to rescue KDM5C depletion, recover H3K4me3 signalling and improve neuronal differentiation. Indeed, in ARX/alr-1-deficient Caenorhabditis elegans animals, SAHA was shown to counteract the defective KDM5C/rbr-2-H3K4me3 signalling, recover abnormal behavioural phenotype and ameliorate neuronal maturation. Overall, our studies indicate that KDM5C is a conserved and druggable effector molecule across a number of NDDs for whom the use of SAHA may be considered a potential therapeutic strategy.

Funder

Jerome Lejeune Foundation

Telethon Foundation

Italian Ministry of Economic Development

NIH/NICHD

Publisher

Oxford University Press (OUP)

Subject

Genetics (clinical),Genetics,Molecular Biology,General Medicine

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