Loss of slc39a14 causes simultaneous manganese hypersensitivity and deficiency in zebrafish

Author:

Tuschl Karin123ORCID,White Richard J.45,Trivedi Chintan2,Valdivia Leonardo E.267,Niklaus Stephanie8,Bianco Isaac H.9ORCID,Dadswell Chris10,González-Méndez Ramón10,Sealy Ian M.45,Neuhauss Stephan C. F.8ORCID,Houart Corinne3,Rihel Jason2,Wilson Stephen W.2,Busch-Nentwich Elisabeth M.45ORCID

Affiliation:

1. UCL GOS Institute of Child Health 1 , University College London, 30 Guilford Street, London WC1N 1EH , UK

2. University College London 2 Department of Cell and Developmental Biology , , Gower Street, London WC1E 6BT , UK

3. IoPPN, Kings College London, New Hunt's House 3 Department of Developmental Neurobiology and MRC Centre for Neurodevelopmental Disorders , , Guy's Campus, London SE1 1UL , UK

4. School of Biological and Behavioural Sciences, Faculty of Science and Engineering, Queen Mary University of London 4 , London E1 4NS , UK

5. Cambridge Institute of Therapeutic Immunology & Infectious Disease (CITIID), Jeffrey Cheah Biomedical Centre, University of Cambridge 5 , Puddicombe Way, Cambridge CB2 0AW , UK

6. Center for Integrative Biology, Facultad de Ciencias, Universidad Mayor 6 , Camino La Pirámide 5750, Huechuraba 8580745 , Chile

7. Universidad Mayor 7 Escuela de Biotecnología, Facultad de Ciencias , , Camino La Pirámide 5750, Huechuraba 8580745 , Chile

8. University of Zurich 8 Department of Molecular Life Sciences , , Winterthurerstrasse 190, 8057, Zurich , Switzerland

9. University College London 9 Department of Neuroscience, Physiology & Pharmacology , , Gower Street, London WC1E 6BT , UK

10. University of Sussex 10 School of Life Sciences , , Brighton BN1 9QJ , UK

Abstract

ABSTRACT Manganese neurotoxicity is a hallmark of hypermanganesemia with dystonia 2, an inherited manganese transporter defect caused by mutations in SLC39A14. To identify novel potential targets of manganese neurotoxicity, we performed transcriptome analysis of slc39a14−/− mutant zebrafish that were exposed to MnCl2. Differentially expressed genes mapped to the central nervous system and eye, and pathway analysis suggested that Ca2+ dyshomeostasis and activation of the unfolded protein response are key features of manganese neurotoxicity. Consistent with this interpretation, MnCl2 exposure led to decreased whole-animal Ca2+ levels, locomotor defects and changes in neuronal activity within the telencephalon and optic tectum. In accordance with reduced tectal activity, slc39a14−/− zebrafish showed changes in visual phototransduction gene expression, absence of visual background adaptation and a diminished optokinetic reflex. Finally, numerous differentially expressed genes in mutant larvae normalised upon MnCl2 treatment indicating that, in addition to neurotoxicity, manganese deficiency is present either subcellularly or in specific cells or tissues. Overall, we assembled a comprehensive set of genes that mediate manganese-systemic responses and found a highly correlated and modulated network associated with Ca2+ dyshomeostasis and cellular stress. This article has an associated First Person interview with the first author of the paper.

Funder

Action Medical Research

Academy of Medical Sciences

National Institute for Health Research

Great Ormond Street Hospital Charity

Medical Research Council

University College London

Neuroscience Center Zurich, University of Zurich

Fondo Nacional de Desarrollo Científico y Tecnológico

Comisión Nacional de Investigación Científica y Tecnológica

Universidad Mayor

Wellcome Trust

Schweizerischer Nationalfonds zur Förderung der Wissenschaftlichen Forschung

Biotechnology and Biological Sciences Research Council

Wellcome Sanger Institute

Publisher

The Company of Biologists

Subject

General Biochemistry, Genetics and Molecular Biology,Immunology and Microbiology (miscellaneous),Medicine (miscellaneous),Neuroscience (miscellaneous)

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