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Pattanayak, R.

Publications and source records attributed to Pattanayak, R..

2 recordsLinked to original sources

Rab27b promotes lysosomal function and alpha-synuclein clearance in neurons

Alpha-synuclein (syn) is the key pathogenic protein implicated in synucleinopathies including Parkinsons Disease (PD) and Dementia with Lewy Bodies (DLB). In these diseases, syn is thought to spread between cells where it accumulates and induces pathology; however, mechanisms that drive its propagation or aggregation are poorly understood. We have previously reported that the small GTPase Rab27b is elevated in human PD and DLB and that it can mediate the autophagic clearance and toxicity of syn in a paracrine syn cell culture neuronal model. Here, we expanded our previous work and further characterized a role for Rab27b in neuronal lysosomal processing and syn clearance. We found that Rab27b KD in this syn inducible neuronal model resulted in lysosomal dysfunction and increased syn levels in lysosomes. Similar lysosomal proteolytic defects and enzymatic dysfunction were observed in both primary neuronal cultures and brain lysates from Rab27b knockout (KO) mice. Syn aggregation was exacerbated in Rab27b KO neurons upon treatment with syn preformed fibrils. We found no changes in lysosomal counts or lysosomal pH in either model, but we did identify defects in acidic vesicle trafficking in Rab27b KO primary neurons which may drive lysosomal dysfunction and promote syn aggregation. Rab27b OE enhanced lysosomal activity and reduced insoluble syn accumulation. Finally we found elevated Rab27b levels in human postmortem incidental Lewy Body Disease (iLBD) subjects relative to healthy controls. These data suggest a role for Rab27b in neuronal lysosomal activity and identify it as a potential therapeutic target in synucleinopathies.

neuroscience↗

14-3-3 phosphorylation inhibits 14-3-3theta's ability to regulate LRRK2 kinase activity

LRRK2 mutations are among the most common genetic causes for Parkinsons disease (PD), and toxicity is associated with increased kinase activity. 14-3-3 proteins are key interactors that regulate LRRK2 kinase activity. Phosphorylation of the 14-3-3{theta} isoform at S232 is dramatically increased in human PD brains. Here we investigate the impact of 14-3-3{theta} phosphorylation on its ability to regulate LRRK2 kinase activity. Both wildtype and the non-phosphorylatable S232A 14-3-3{theta} mutant reduced the kinase activity of wildtype and G2019S LRRK2, whereas the phosphomimetic S232D 14-3-3{theta} mutant had minimal effects on LRRK2 kinase activity, as determined by measuring autophosphorylation at S1292 and T1503 and Rab10 phosphorylation. However, wildtype and both 14-3-3{theta} mutants similarly reduced the kinase activity of the R1441G LRRK2 mutant. 14-3-3{theta} phosphorylation did not promote global dissociation with LRRK2, as determined by co-immunoprecipitation and proximal ligation assays. 14-3-3s interact with LRRK2 at several phosphorylated serine/threonine sites, including T2524 in the C-terminal helix, which can fold back to regulate the kinase domain. Interaction between 14-3-3{theta} and phosphorylated T2524 LRRK2 was important for 14-3-3{theta}s ability to regulate kinase activity, as wildtype and S232A 14-3-3{theta} failed to reduce the kinase activity of G2019S/T2524A LRRK2. Molecular modeling showed that 14-3-3{theta} phosphorylation causes a partial rearrangement of its canonical binding pocket, thus affecting the interaction between 14-3-3{theta} and the C-terminus of LRRK2. We conclude that 14-3-3{theta} phosphorylation destabilizes the interaction of 14-3-3{theta} with LRRK2 at T2524, which consequently promotes LRRK2 kinase activity.

neuroscience↗