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Age-dependent nigral dopaminergic neurodegeneration and α-synuclein accumulation in RGS6-deficient mice
Zili Luo, Katelin E. Ahlers-Dannen, Mackenzie M. Spicer, Jianqi Yang, Stephanie Alberico, Hanna E. Stevens, Nandakumar S. Narayanan, Rory A. Fisher
Zili Luo, Katelin E. Ahlers-Dannen, Mackenzie M. Spicer, Jianqi Yang, Stephanie Alberico, Hanna E. Stevens, Nandakumar S. Narayanan, Rory A. Fisher
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Research Article Neuroscience

Age-dependent nigral dopaminergic neurodegeneration and α-synuclein accumulation in RGS6-deficient mice

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Abstract

Parkinson’s disease (PD) is primarily a nonfamilial, age-related disorder caused by α-synuclein accumulation and the progressive loss of dopamine neurons in the substantia nigra pars compacta (SNc). GPCR-cAMP signaling has been linked to a reduction in human PD incidence and α-synuclein expression. Neuronal cAMP levels are controlled by GPCRs coupled to Gs or Gi/o, which increase or decrease cAMP, respectively. Regulator of G protein signaling 6 (RGS6) powerfully inhibits Gi/o signaling. Therefore, we hypothesized that RGS6 suppresses D2 autoreceptor-Gi/o signaling in SNc dopamine neurons promoting neuronal survival and reducing α-synuclein expression. Here, we provide potentially novel evidence that RGS6 critically suppresses late-age-onset SNc dopamine neuron loss and α-synuclein accumulation. RGS6 is restrictively expressed in human SNc dopamine neurons and, despite their loss in PD, all surviving neurons express RGS6. RGS6–/– mice exhibit hyperactive D2 autoreceptors with reduced cAMP signaling in SNc dopamine neurons. Importantly, RGS6–/– mice recapitulate key sporadic PD hallmarks, including SNc dopamine neuron loss, reduced nigrostriatal dopamine, motor deficits, and α-synuclein accumulation. To our knowledge, Rgs6 is the only gene whose loss phenocopies these features of human PD. Therefore, RGS6 is a key regulator of D2R-Gi/o signaling in SNc dopamine neurons, protecting against PD neurodegeneration and α-synuclein accumulation.

Authors

Zili Luo, Katelin E. Ahlers-Dannen, Mackenzie M. Spicer, Jianqi Yang, Stephanie Alberico, Hanna E. Stevens, Nandakumar S. Narayanan, Rory A. Fisher

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Figure 6

RGS6 loss results in increased D2R-Gi/o signaling in SNc DA neurons in mice at 12 months.

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RGS6 loss results in increased D2R-Gi/o signaling in SNc DA neurons in m...
(A) Representative IHC staining of PKAs (red), TH (green), and DAPI (blue) of DA neurons in the SNc of 3- and 12-month-old RGS6+/+ and RGS6–/– mice. Scale bar: 25 μm. (B) Quantification of staining comparing percent of TH+ neurons containing intracellular PKA-phosphorylated substrates in RGS6+/+ and RGS6–/– mice at 3 and 12 months of age. Significant effects of age [F(1,14) = 93.97; P < 0.0001], strain [F(1,14) = 23.81; P = 0.00], and interaction [F(1,14) = 23.82; P = 0.00] were observed (N = 4 mice per group). (C) Representative IHC staining of pS40 TH (red), TH (green), and DAPI (blue) of DA neurons in the SNc of 12-month-old RGS6+/+ and RGS6–/– mice and in (D) 12 month-old RGS6–/– mice treated with vehicle (saline), forskolin (3.75 mg/kg, 45 minutes), or raclopride (3 mg/kg, 30 minutes). (E) Quantification of staining comparing intracellular pS40 TH levels in SNc DA neurons in 12-month-old RGS6+/+ and RGS6–/– mice reveals a significant effect of strain (n = 5 mice/group; Fcrit = 15.18; P = 0.005). (F) Quantification of staining comparing intracellular pS40 TH levels in SNc DA neurons in 12-month-old RGS6–/– mice treated with vehicle (saline), forskolin, or raclopride as described in (D). A significant effect of treatment was observed (n = 4–5 mice/treatment group; Fcrit = 6.47; P = 0.014). Data were analyzed using either 1- (E and F) or 2-way (B) ANOVA analyses. Data are presented as mean ± SEM. *P ≤ 0.05, **P ≤ 0.01.

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