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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 4

RGS6–/– mice show increased sensitivity to quinpirole suppression of locomotion compared with RGS6+/+ control mice.

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RGS6–/– mice show increased sensitivity to quinpirole suppression of loc...
Locomotor activity was quantified by measuring (A) distance traveled, (B) travel velocity, as well as (C) frequency of movements to center of RGS6+/+ and RGS6–/– mice for 15 minutes following i.p. injection with either saline or quinpirole. Overall, quinpirole’s ability to suppress locomotion was significantly greater in 3-month-old RGS6–/– mice compared with RGS6+/+ mice (A) Significant effects of treatment [F(1,25) = 311.16, P ≤ 0.0001], strain [F(1,25) = 5.38, P = 0.029], and interaction [F(1,25) = 26.28, P ≤ 0.0001] were observed in distance traveled by the mice. (B) Significant effects of treatment [F(1,26) = 327.69, P ≤ 0.0001] and interaction [F(1,26) = 30.33, P ≤ 0.0001] were found in mouse travel velocity. (C) Significant effects of treatment [F(1,26) = 125.14, P ≤ 0.0001] and interaction [F(1,26) = 14.20, P = 0.001] were found in mouse movement to center frequency. Data were analyzed using 2-way ANOVAs with Fisher LSD post hoc analysis. Data are presented as mean ± SEM (n = 8 saline RGS6+/+; 7 saline RGS6–/– mice; 8 quinpirole RGS6+/+ mice; 6–7 quinpirole RGS6–/– mice). *P ≤ 0.05, **P ≤ 0.01, ***P ≤ 0.001, ****P ≤ 0.0001.

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