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Published on: December 14, 2017
Dysregulated Wnt and NFAT signaling in a Parkinson's disease LRRK2 G2019S knock-in model
Andrea Wetzel1,2, Si Hang Lei1, Tiansheng Liu1
1Department of Pharmacology, UCL School of Pharmacy, University College London, 29-39 Brunswick Square, London, WC1N 1AX, UK.
Abstract:
Parkinson's disease (PD) is a progressive late-onset neurodegenerative disease leading to physical and cognitive decline. Mutations of leucine-rich repeat kinase 2 (LRRK2) are the most common genetic cause of PD. LRRK2 is a complex scaffolding protein with known regulatory roles in multiple molecular pathways. Two prominent examples of LRRK2-modulated pathways are Wingless/Int (Wnt) and nuclear factor of activated T-cells (NFAT) signaling. Both are well described key regulators of immune and nervous system development as well as maturation. The aim of this study was to establish the physiological and pathogenic role of LRRK2 in Wnt and NFAT signaling in the brain, as well as the potential contribution of the non-canonical Wnt/Calcium pathway. In vivo cerebral Wnt and NFATc1 signaling activity was quantified in LRRK2 G2019S mutant knock-in (KI) and LRRK2 knockout (KO) male and female mice with repeated measures over 28 weeks, employing lentiviral luciferase biosensors, and analyzed using a mixed-effect model. To establish spatial resolution, we investigated tissues, and primary neuronal cell cultures from different brain regions combining luciferase signaling activity, immunohistochemistry, qPCR and western blot assays. Results were analyzed by unpaired t-test with Welch's correction or 2-way ANOVA with post hoc corrections. In vivo Wnt signaling activity in LRRK2 KO and LRRK2 G2019S KI mice was increased significantly ~ threefold, with a more pronounced effect in males (~ fourfold) than females (~ twofold). NFATc1 signaling was reduced ~ 0.5-fold in LRRK2 G2019S KI mice. Brain tissue analysis showed region-specific expression changes in Wnt and NFAT signaling components. These effects were predominantly observed at the protein level in the striatum and cerebral cortex of LRRK2 KI mice. Primary neuronal cell culture analysis showed significant genotype-dependent alterations in Wnt and NFATc1 signaling under basal and stimulated conditions. Wnt and NFATc1 signaling was primarily dysregulated in cortical and hippocampal neurons respectively. Our study further built on knowledge of LRRK2 as a Wnt and NFAT signaling protein. We identified complex changes in neuronal models of LRRK2 PD, suggesting a role for mutant LRRK2 in the dysregulation of NFAT, and canonical and non-canonical Wnt signaling.
Insights
Leucine-rich repeat kinase 2 (LRRK2) mutations are a common cause of Parkinson's disease (PD). This study found that LRRK2 influences Wnt and NFAT signaling in the brain, impacting neuronal function in PD models.
Area of Science:
- Neuroscience
- Genetics
- Molecular Biology
Background:
- Parkinson's disease (PD) is a neurodegenerative disorder with genetic links to Leucine-rich repeat kinase 2 (LRRK2) mutations.
- LRRK2 is implicated in regulating key molecular pathways, including Wingless/Int (Wnt) and nuclear factor of activated T-cells (NFAT) signaling, crucial for nervous system development and function.
Purpose of the Study:
- To investigate the physiological and pathogenic roles of LRRK2 in Wnt and NFAT signaling within the brain.
- To explore the involvement of the non-canonical Wnt/Calcium pathway in LRRK2-associated PD.
Main Methods:
- Utilized lentiviral luciferase biosensors in LRRK2 G2019S mutant knock-in (KI) and knockout (KO) mice over 28 weeks to quantify in vivo Wnt and NFATc1 signaling.
- Employed immunohistochemistry, qPCR, and western blot assays on brain tissues and primary neuronal cultures for spatial and molecular analysis.
- Statistical analysis included mixed-effect models, unpaired t-tests with Welch's correction, and 2-way ANOVA.
Main Results:
- In vivo Wnt signaling was significantly increased in LRRK2 KI and KO mice, with a more pronounced effect in males.
- NFATc1 signaling was reduced in LRRK2 KI mice.
- Region-specific alterations in Wnt and NFAT signaling components were observed, particularly at the protein level in the striatum and cortex. Neuronal cultures showed genotype-dependent signaling changes.
Conclusions:
- LRRK2 plays a significant role in modulating both canonical and non-canonical Wnt signaling, as well as NFAT signaling in the brain.
- Dysregulation of these pathways in LRRK2 mutant models suggests a potential mechanism contributing to Parkinson's disease pathogenesis.
- Findings highlight LRRK2 as a key regulator of neuronal signaling pathways relevant to PD.
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