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Helgueta, S.

Publications and source records attributed to Helgueta, S..

2 recordsLinked to original sources

Transcriptional Dysregulation in the Hippocampus of a murine model for Parkinson's Disease Cognition Impairment is Driven by Sex, Age, and Alpha-synuclein overexpression

Cognitive impairment is the most common and detrimental, but understudied non-motor symptom of Parkinsons disease (PD). Neuropathologically, it is associated with alpha-synuclein (Syn) misfolding and synapse loss in hippocampus and prefrontal cortex, leading to cognition loss and ultimately dementia. The molecular underpinnings of PD-associated cognitive dysfunction are unknown. In the present study, longitudinal gene expression profiling was performed to characterise molecular hippocampal alterations in a transgenic mouse overexpressing E46K mutated Syn, a model of early PD with loss of synaptophysin, a proxy marker of cognition, in hippocampus and cortex. Comparing 4 different ages of mice from both sexes showed that hippocampal gene expression changes were sexually dimorphic and strongly modulated by age and Syn overexpression. Pathways that emerged across different comparisons were connected to a variety of neuronal functions, collagen synthesis/remodelling, cellular stress, and inflammatory responses. The findings indicate that sex and age are essential covariates to consider when studying PD-associated cognitive decline. The uncovering of early events leading to disease in an animal model is an essential step toward prognostic biomarker identification and early interventions, which may have implications for monitoring, and for timing of therapeutic approaches.

neuroscience↗

Park7 deletion leads to age- and sex-specific transcriptome changes involving NRF2-CYP1B1 axis in mouse midbrain astrocytes

AbstractdispeLoss-of-function mutations in PARK7, encoding for DJ-1, can lead to early onset Parkinsons disease (PD). In mice, Park7 deletion leads to dopaminergic deficits during aging, and increased sensitivity to oxidative stress. However, the severity of the reported phenotypes varies. To understand the early molecular changes upon loss of DJ-1, we performed transcriptomic profiling of midbrain sections from young mice. Interestingly, while at 3 months the transcriptomes of both male and female mice were unchanged compared to their wildtype littermates, an extensive deregulation was observed specifically in 8-month-old males. The affected genes are involved in processes such as focal adhesion, extracellular matrix interaction, and epithelial-to-mesenchymal transition (EMT), and enriched for primary target genes of Nuclear factor erythroid 2-related factor 2 (NRF2). Consistently, the antioxidant response was altered specifically in the midbrain of male DJ-1 deficient mice. Many of the misregulated genes are known target genes of estrogen and retinoic acid signaling and show sex-specific expression in wildtype mice. Depletion of DJ-1 or NRF2 in male, but not female primary astrocytes recapitulated many of the in vivo changes, including downregulation of cytochrome P450 family 1 subfamily B member 1 (CYP1B1), an enzyme involved in estrogen and retinoic acid metabolism. Interestingly, knock-down of CYP1B1 led to gene expression changes in focal adhesion and EMT in primary male astrocytes. Finally, male iPSC-derived astrocytes with loss of function mutation in the PARK7 gene also showed changes in the EMT pathway and NRF2 target genes. Taken together, our data indicate that loss of Park7 leads to sex-specific gene expression changes specifically in males through astrocytic alterations in the NRF2-CYP1B1 axis. These findings suggest higher sensitivity of males to loss of DJ-1 and might help to better understand variation in the reported Park7-/-phenotypes.

molecular biology↗