Loss of the parkinsonism‐associated protein FBXO7 in glutamatergic forebrain neurons in mice leads to abnormal motor behavior and synaptic defects

Author:

Wang Jingbo1,Joseph Sabitha1,Vingill Siv2,Dere Ekrem34,Tatenhorst Lars5ORCID,Ronnenberg Anja4,Lingor Paul6ORCID,Preisinger Christian7,Ehrenreich Hannelore4,Schulz Jörg B.189ORCID,Stegmüller Judith19ORCID

Affiliation:

1. Department of Neurology RWTH University Hospital Aachen Germany

2. Max Planck Institute for Multidisciplinary Sciences Göttingen Germany

3. Sorbonne Université. Institut de Biologie Paris‐Seine, (IBPS), Département UMR 8256, UFR des Sciences de la Vie, Campus Pierre et Marie Curie Paris Cedex France

4. Clinical Neuroscience, Hermann Rein Strasse 3 Max Planck Institute for Multidisciplinary Sciences Göttingen Germany

5. Department of Neurology University Medical Center Göttingen Germany

6. Department of Neurology, School of Medicine Klinikum rechts der Isar der Technischen Universität München Munich Germany

7. Proteomics Facility, IZKF, RWTH Aachen University Aachen Germany

8. Jülich Aachen Research Alliance (JARA)‐BRAIN Institute of Molecular Neuroscience and Neuroimaging, Research Center Jülich and RWTH Aachen University Aachen Germany

9. Research Training Group 2416 MultiSenses‐MultiScales RWTH Aachen University Aachen Germany

Abstract

AbstractMutations in PARK15, which encodes for the F‐box protein FBXO7 have been associated with Parkinsonian Pyramidal syndrome, a rare and complex movement disorder with Parkinsonian symptoms, pyramidal tract signs and juvenile onset. Our previous study showed that systemic loss of Fbxo7 in mice causes motor defects and premature death. We have also demonstrated that FBXO7 has a crucial role in neurons as the specific deletion in tyrosine hydroxylase‐positive or glutamatergic forebrain neurons leads to late‐onset or early‐onset motor dysfunction, respectively. In this study, we examined NEX‐Cre;Fbxo7fl/fl mice, in which Fbxo7 was specifically deleted in glutamatergic projection neurons. The effects of FBXO7 deficiency on striatal integrity were investigated with HPLC and histological analyses. NEX‐Cre;Fbxo7fl/fl mice revealed an increase in striatal dopamine concentrations, changes in the glutamatergic, GABAergic and dopaminergic pathways, astrogliosis and microgliosis and little or no neuronal loss in the striatum. To determine the effects on the integrity of the synapse, we purified synaptic membranes, subjected them to quantitative mass spectrometry analysis and found alterations in the complement system, endocytosis and exocytosis pathways. These neuropathological changes coincide with alterations in spontaneous home cage behavior. Taken together, our findings suggest that FBXO7 is crucial for corticostriatal projections and the synaptic integrity of the striatum, and consequently for proper motor control.image

Funder

Deutsche Forschungsgemeinschaft

Publisher

Wiley

Subject

Cellular and Molecular Neuroscience,Biochemistry

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