PINK1 deficiency impairs adult neurogenesis of dopaminergic neurons

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作者
Sarah J. Brown
Ibrahim Boussaad
Javier Jarazo
Julia C. Fitzgerald
Paul Antony
Marcus Keatinge
Janna Blechman
Jens C. Schwamborn
Rejko Krüger
Marysia Placzek
Oliver Bandmann
机构
[1] University of Sheffield,Bateson Centre
[2] University of Sheffield,Department of Biomedical Science
[3] The University of Sheffield,Department of Neuroscience, Sheffield Institute for Translational Neuroscience (SITraN)
[4] University of Edinburgh,Centre for Discovery Brain Science
[5] University of Luxembourg,Translational Neuroscience, Luxembourg Centre for Systems Biomedicine
[6] University of Luxembourg & Luxembourg Institute of Health,Disease Modelling and Screening Platform (DMSP), Luxembourg Centre of Systems Biomedicine
[7] University of Luxembourg,Developmental Biology, Luxembourg Centre for Systems Biomedicine
[8] OrganoTherapeutics SARL,Hertie
[9] University of Tübingen,Institute for Clinical Brain Research
[10] Weizmann Institute of Science,Parkinson Research Clinic
[11] Centre Hospitalier de Luxembourg (CHL),Transversal Translational Medicine
[12] Luxembourg Institute of Health (LIH),undefined
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摘要
Recent evidence suggests neurogenesis is on-going throughout life but the relevance of these findings for neurodegenerative disorders such as Parkinson’s disease (PD) is poorly understood. Biallelic PINK1 mutations cause early onset, Mendelian inherited PD. We studied the effect of PINK1 deficiency on adult neurogenesis of dopaminergic (DA) neurons in two complementary model systems. Zebrafish are a widely-used model to study neurogenesis in development and through adulthood. Using EdU analyses and lineage-tracing studies, we first demonstrate that a subset of ascending DA neurons and adjacent local-projecting DA neurons are each generated into adulthood in wild type zebrafish at a rate that decreases with age. Pink1-deficiency impedes DA neurogenesis in these populations, most significantly in early adult life. Pink1 already exerts an early effect on Th1+ progenitor cells rather than on differentiated DA neurons only. In addition, we investigate the effect of PINK1 deficiency in a human isogenic organoid model. Global neuronal differentiation in PINK1-deficient organoids and isogenic controls is similar, but PINK1-deficient organoids display impeded DA neurogenesis. The observation of impaired adult dopaminergic neurogenesis in Pink1 deficiency in two complementing model systems may have significant consequences for future therapeutic approaches in human PD patients with biallelic PINK1 mutations.
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