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Fisk, Z. A.

Publications and source records attributed to Fisk, Z. A..

2 recordsLinked to original sources

A topographical atlas of alpha-Synuclein dosage and cell-type expression in the mouse brain and periphery

Parkinsons disease (PD) is the second most common neurodegenerative disease worldwide and presents pathologically with Lewy pathology and dopaminergic neuron loss. Lewy pathology contains aggregated Synuclein (Syn), a protein encoded by the SNCA gene which is also mutated or duplicated in a subset of familial PD cases. Due to its predominant presynaptic localization, immunostaining for the protein results in diffuse signal, providing little insight into the types of cells expressing Syn. As a result, insight into Syn expression-driven cellular vulnerability has been difficult to ascertain. Using a combination of knock-in mice that target Syn to the nucleus of cells (SncaNLS) and in situ hybridization of Snca in wild-type mice, we systematically map the topography and cell types expressing Syn in the mouse brain, spinal cord, retina, and gut. We find a high degree of correlation between Syn protein and RNA levels across multiple brain regions and further identify cell types with low and high Syn. We found that Syn is highly expressed in neurons, particularly those involved in PD and to a lower extent in non-neuronal cell types, notably those of oligodendrocyte lineage. We also find that Syn is devoid in certain neuron types (e.g. ChAT-positive motor neurons), and that all enteric neurons express Syn to a certain degree. Taken together, this atlas provides much-needed insight into the cellular topography of Syn, and provides a quantitative map to test assumptions about the role of Syn in network vulnerability in PD and other Synucleinopathies.

neuroscience↗

Characterizing the differential distribution and targets of Sumo paralogs in the mouse brain

SUMOylation is an evolutionarily conserved and essential mechanism whereby Small Ubiquitin Like Modifiers, or SUMO proteins (Sumo in mice), are covalently bound to protein substrates in a highly dynamic and reversible manner. SUMOylation is involved in a variety of basic neurological processes including learning and memory, and central nervous system development, but is also linked with neurological disorders. However, studying SUMOylation in vivo remains challenging due to limited tools to study Sumo proteins and their targets in their native context. More complexity arises from the fact that Sumo1 and Sumo2 are [~]50% homologous, whereas Sumo2 and Sumo3 are nearly identical and indistinguishable with antibodies. While Sumo paralogues can compensate for one anothers loss, Sumo2 is highest expressed and only paralog essential for embryonic development making it critical to uncover roles specific to Sumo2 in vivo. To further examine the roles of Sumo2, and to begin to tease apart the redundancy and similarity between key Sumo paralogs, we generated (His6-)HA epitope-tagged Sumo2 knock-in mouse alleles, expanding the current Sumo knock-in mouse tool-kit comprising of the previously generated His6-HA-Sumo1 knock-in model. Using these HA-Sumo mouse lines, we performed whole brain imaging and mapping to the Allen Brain Atlas to analyze the relative distribution of the Sumo1 and Sumo2 paralogues in the adult mouse brain. We observed differential staining patterns between Sumo1 and Sumo2, including a partial localization of Sumo2 in nerve cell synapses of the hippocampus. Combining immunoprecipitation with mass spectrometry, we identified native substrates targeted by Sumo1 or Sumo2 in the mouse brain. We validated select hits using proximity ligation assays, further providing insight into the subcellular distribution of neuronal Sumo2-conjugates. These mouse models thus serve as valuable tools to study the cellular and biochemical roles of SUMOylation in the central nervous system.

neuroscience↗