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Doshier, K.

Publications and source records attributed to Doshier, K..

2 recordsLinked to original sources

Serum UCHL1, GFAP, and NfL track tyrosine hydroxylase loss in substantia nigra in two Rat Models of Parkinsons Disease

In Parkinsons disease (PD), blood-based (BB) biomarkers ubiquitin c-terminal hydrolase L 1 (UCHL-1), glial fibrillary acidic protein (GFAP), and neurofilament light (NfL) correlate with motor or cognitive impairment. However, it is unclear if blood levels of these biomarkers represent changes in nigrostriatal neuron viability or dopamine (DA) signaling. In 6-OHDA and Pink1 knockout (KO) rat models that showed progressive loss of DA tissue and tyrosine hydroxylase (TH) protein, we quantified UCHL-1, GFAP, and NfL expression in striatum and substantia nigra (SN) at 7- and 28-days in the 6-OHDA model and 7- and 18-month old in Pink 1 KO. Substantial changes in all biomarkers occurred with TH loss in SN, but not striatum, in both models. UCHL-1 levels increased against remaining TH protein. Accordingly, serum UCHL-1 levels increased 25% at 28 days post-6-OHDA and 18-month old Pink1 KO. GFAP and NfL levels increased in SN 28 days post-6-OHDA and 18 month-old Pink1 KO. Serum GFAP levels increased 28 days post-6-OHDA and 18 month-old Pink1 KO. Serum levels of NfL increased 28 days post-6-OHDA, and in 18 month-old Pink1 KO and wild-type, without influence by genotype. Expression levels of each biomarker were greater in the SN vs striatum, suggesting the SN contributes greater quantities of biomarkers to the blood and reflect TH loss therein. Taken together, our preclinical results show alignment between serum levels of UCHL-1, GFAP, and NfL and loss of TH and DA in the SN. As such, these biomarkers may be relevant peripheral indicators of deficient nigrostriatal DA signaling, and reflect nigrostriatal function in PD.

neuroscience↗

Aging hastens locomotor decline in PINK1 knockout rats in association with decreased nigral, but not striatal, dopamine and tyrosine hydroxylase expression

Parkinsons disease (PD) rodent models provide insight into the relationship between nigrostriatal dopamine (DA) signaling and locomotor function. Although toxin-based rat models produce frank nigrostriatal neuron loss and eventual motor decline characteristic of PD, the rapid nature of neuronal loss may not adequately translate premotor traits, such as cognitive decline. Unfortunately, rodent genetic PD models, like the Pink1 knockout (KO) rat, often fail to replicate the differential severity of striatal DA and tyrosine hydroxylase (TH) loss, and a bradykinetic phenotype, reminiscent of human PD. To elucidate this inconsistency, we evaluated aging as a progression factor in the timing of motor and non-motor cognitive impairments. Male PINK1 KO and age-matched wild type (WT) rats were evaluated in a longitudinal study from 3 to 16 months old in one cohort, and in a cross-sectional study of young adult (6-7 months) and aged (18-19 months) in another cohort. Young adult PINK1 KO rats exhibited hyperkinetic behavior associated with elevated DA and TH in the substantia nigra (SN), which decreased therein, but not striatum, in the aged KO rats. Additionally, norepinephrine levels decreased in aged KO rats in the prefrontal cortex (PFC), paired with a higher DA content in young and aged KO. Although a younger age of onset characterizes familial forms of PD, our results underscore the critical need to consider age-related factors. Moreover, the results indicate that compensatory mechanisms may exist to preserve locomotor function, evidenced by increased DA in the SN early in the lifespan, in response to deficient PINK1 function, which declines with aging and the onset of motor impairment.

neuroscience↗