Nurr1 repression mediates cardinal features of Parkinson’s disease in α-synuclein transgenic mice

Author:

Argyrofthalmidou Maria1,Spathis Athanasios D1,Maniati Matina1,Poula Amalia1,Katsianou Maira A1,Sotiriou Evangelos1,Manousaki Maria1,Perier Celine2,Papapanagiotou Ioanna1,Papadopoulou-Daifoti Zeta3,Pitychoutis Pothitos M34,Alexakos Pavlos1,Vila Miquel2,Stefanis Leonidas15,Vassilatis Demetrios K1

Affiliation:

1. Center for Clinical Research, Experimental Surgery and Translational Research, Biomedical Research Foundation of the Academy of Athens, Athens 11527, Greece

2. Research Institute, University Hospital Vall d'Hebron, Barcelona 08035, Spain

3. Department of Pharmacology, Medical School, University of Athens, Athens 11527, Greece

4. Department of Biology & Center for Tissue Regeneration and Engineering at Dayton (TREND), University of Dayton, Dayton, OH 45469-2320, USA

5. Second Department of Neurology, National and Kapodistrian University of Athens Medical School, Athens 11527, Greece

Abstract

Abstract Duplication/triplication mutations of the SNCA locus, encoding alpha-synuclein (ASYN), and loss of function mutations in Nurr1, a nuclear receptor guiding midbrain dopaminergic neuron development, are associated with familial Parkinson’s disease (PD). As we age, the expression levels of these two genes in midbrain dopaminergic neurons follow opposite directions and ASYN expression increases while the expression of Nurr1 decreases. We investigated the effect of ASYN and Nurr1 age-related expression alterations in the pathogenesis of PD by coupling Nurr1 hemizygous with ASYN(s) (heterozygote) or ASYN(d) (homozygote) transgenic mice. ASYN(d)/Nurr1+/− (2-hit) mice, contrary to the individual genetic traits, developed phenotypes consistent with dopaminergic dysfunction. Aging ‘2-hit’ mice manifested kyphosis, severe rigid paralysis, L-DOPA responsive movement impairment and cachexia and died prematurely. Pathological abnormalities of phenotypic mice included SN neuron degeneration, extensive neuroinflammation and enhanced ASYN aggregation. Mice with two wt Nurr1 alleles [ASYN(d)/Nurr1+/+] or with reduced ASYN load [ASYN(s)/Nurr1+/−] did not develop the phenotype or pathology. Critically, we found that aging ASYN(d), in contrast to ASYN(s), mice suppress Nurr1-protein levels in a brain region–specific manner, which in addition to Nurr1 hemizygosity is necessary to instigate PD pathogenesis. Our experiments demonstrate that ASYN-dependent PD-related pathophysiology is mediated at least in part by Nurr1 down-regulation.

Funder

Michael J Fox Foundation

Hellenic Ministry of Health

Hellenic General Secretariat of Research and Technology

Publisher

Oxford University Press (OUP)

Subject

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

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