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Arreola-Bustos, A.

Publications and source records attributed to Arreola-Bustos, A..

4 recordsLinked to original sources

Genetic basis of maneb-induced dopaminergic neurodegeneration in Drosophila

Parkinsons disease (PD) is a complex neurodegenerative disease driven by combined genetic and environmental factors. Human studies support increased PD risk following exposure to the pesticide maneb yet animal studies generally report subtle or no dopaminergic phenotypes unless maneb is combined with additional pesticides. Consequently, it is unclear whether exposure to maneb alone promotes dopamine (DA) neurodegeneration and if so, what the underlying mechanisms are. We hypothesized that gene-environment interactions are major determinants of maneb-mediated neurodegeneration and in support of this find that DA neuron viability is quantitatively divergent among 186 maneb-exposed genetically varying fly strains from the Drosophila Genetic Reference Panel (DGRP). Through genome-wide association analysis we identify several candidate genetic modifiers of maneb-induced DA neurodegeneration and further validate two candidate genes, fz2 and CG14186 which we find potentiate maneb-induced DA neurodegeneration when knocked-down. fz2 and the mammalian ortholog of CG14186 (TMEM237) are both thought to be necessary for intact Wnt pathway signaling in nervous system development and maintenance. Accordingly, we find that adult-specific perturbation of Wnt signaling is sufficient to promote maneb-induced DA neuron loss. Collectively, these results support a role for gene-environment interactions in PD etiology and reveal candidate mediators of maneb-related DA neurodegeneration in vivo. ARTICLE SUMMARYExposure to the pesticide maneb has been linked to increased PD risk although animal models of neurodegeneration have produced mixed results. We developed a Drosophila model for delayed onset dopamine neuron loss following maneb exposure and find that maneb-related neurodegeneration is quantitatively divergent across a large collection of Drosophila strains. We use a genome-wide association approach with follow-up validation to identify candidate modifier genes, uncovering roles for fz2 and CG14186. Both genes are implicated in Wnt signaling and we further show that deregulated Wnt signaling in adults promotes maneb-induced dopamine neuron loss. These studies support a role for gene-environment interactions in maneb neurotoxicity and yield insight into the underlying genes involved.

genetics↗

Genome-wide analysis reveals genes mediating resistance to paraquat neurodegeneration in Drosophila

Parkinsons disease (PD) is thought to develop through a complex interplay of genetic and environmental factors. Epidemiological studies have linked exposure to certain pesticides such as paraquat with elevated PD risk, although how a persons genetic makeup influences disease risk upon exposure remains unknown. Here, we used a genome-wide approach to uncover genes that play a role in resistance to paraquat-induced dopaminergic neurodegeneration in Drosophila. We developed a paraquat exposure model displaying delayed-onset dopaminergic (DA) neurodegeneration to recapitulate this aspect of human disease. We reveal that genetic background is a strong determinant of paraquat-induced DA neurodegeneration susceptibility across a series of nearly 200 fly strains called the Drosophila genetic reference panel (DGRP). Through unbiased genome-wide analysis and follow-up validation, we identify two candidate paraquat resistance genes, luna and CG32264. In gene-level studies, decreased expression of luna or CG32264 is associated with paraquat-induced DA neuron loss while overexpression of either gene prevents neurodegeneration in vivo. The mammalian ortholog of CG32264 is Phactr2, which has previously been linked to human idiopathic PD risk in several populations. Hence, our results reveal genes regulating paraquat-induced DA neuron loss that intersect with human PD risk variants, supporting the potential relevance of our findings to PD and underscoring a role for gene-environment interactions in pesticide-related DA neurodegeneration. ARTICLE SUMMARYParaquat is a widely used herbicide linked to increased PD risk and to dopaminergic neurodegeneration in animal studies. Gene-environment interactions likely influence whether an individual exposed to paraquat eventually manifests PD and presents a major opportunity to yield insight into PD genetics. We developed a paraquat-induced neurodegeneration model in Drosophila, applied this model to nearly 200 fly strains belonging to the Drosophila Genetic Reference Panel and used a genome-wide association approach to identify candidate modifier genes of paraquat-induced dopamine neuron loss which we subsequently validated through RNAi and overexpression functional testing. Through this approach, we reveal two novel paraquat resistance genes, luna and CG32264. Strikingly, the putative mammalian ortholog of CG32264 (Phactr2) was previously linked to human PD, supporting the potential relevance of our findings to human disease.

genetics↗

Natural Variation in Age-Related Dopamine Neuron Degeneration is Glutathione-Dependent and Linked to Life Span

Aging is the biggest risk factor for Parkinsons disease (PD), suggesting that age-related changes in the brain promote dopamine neuron vulnerability. It is unclear, however, whether aging alone is sufficient to cause significant dopamine neuron loss and if so, how this intersects with PD-related neurodegeneration. Here, through examining a large collection of naturally varying Drosophila strains, we find a strong relationship between life span and age-related dopamine neuron loss. Strains with naturally short-lived animals exhibit a loss of dopamine neurons but not generalized neurodegeneration, while animals from long-lived strains retain dopamine neurons across age. Metabolomic profiling reveals lower glutathione levels in short-lived strains which is associated with elevated levels of reactive oxygen species (ROS), sensitivity to oxidative stress and vulnerability to silencing the familial PD gene parkin. Strikingly, boosting neuronal glutathione levels via glutamate-cysteine ligase (Gcl) overexpression is sufficient to normalize ROS levels, extend life span and block dopamine neurons loss in short-lived backgrounds, demonstrating that glutathione deficiencies are central to neurodegenerative phenotypes associated with short longevity. These findings may be relevant to human PD pathogenesis, where glutathione depletion is reported to occur in idiopathic PD patient brain through unknown mechanisms. Building on this, we find reduced expression of the Gcl catalytic subunit in both Drosophila strains vulnerable to age-related dopamine neuron loss and in human brain from familial PD patients harboring the common LRRK2 G2019S mutation. Our study across Drosophila and human PD systems suggests that glutathione synthesis and levels play a conserved role in regulating age-related dopamine neuron health.

neuroscience↗

Rapid Cell Type-Specific Nascent Proteome Labeling in Drosophila

Controlled protein synthesis is required to regulate gene expression and is often carried out in a cell type-specific manner. Protein synthesis is commonly measured by labeling the nascent proteome with amino acid analogs or isotope-containing amino acids. These methods have been difficult to implement in vivo as they require lengthy amino acid replacement procedures. O-propargyl-puromycin (OPP) is a puromycin analog that incorporates into nascent polypeptide chains. Through its terminal alkyne, OPP can be conjugated to a fluorophore-azide for directly visualizing nascent protein synthesis, or to a biotin-azide for capture and identification of newly-synthesized proteins. To achieve cell type-specific OPP incorporation, we developed phenylacetyl-OPP (PhAc-OPP), a puromycin analog harboring an enzyme-labile blocking group that can be removed by Penicillin G acylase (PGA). Here, we show that cell type-specific PGA expression in Drosophila can be used to achieve OPP labeling of newly-synthesized proteins in targeted cell populations within the brain. Following a brief 2-hour incubation of intact brains with PhAc-OPP, we observe robust imaging and affinity purification of OPP-labeled nascent proteins in PGA-targeted cell populations. We apply this method to show a pronounced age-related decline in neuronal protein synthesis in the fly brain, demonstrating the capability to quantitatively capture in vivo protein synthesis states using PhAc-OPP. This method, which we call POPPi (PGA-dependent OPP incorporation), should be applicable for rapidly visualizing protein synthesis and identifying nascent proteins synthesized under diverse physiological and pathological conditions with cellular specificity in vivo.

neuroscience↗