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Maurya, B.

Publications and source records attributed to Maurya, B..

2 recordsLinked to original sources

Interplay of Spoonbill, Larp7 and survival motor neuron, in Drosophila model of Spinocerebellar Ataxia 8 non-coding RNA associated neurodegeneration

A deeper understanding of neurodegenerative disorders at the level of genetic or environmental risk factors as well as contributing genes, pathways, and networks suggests the presence of shared molecular mechanisms. Previously, we have reported that the KH domain of the Spoonbill protein alone can suppress non-coding Spinocerebellar Ataxia 8 (SCA8) associated neurodegeneration. In the current study, we have identified dLarp7 as a novel interacting partner of Spoonbill in Drosophila. Mammalian Larp7 is associated with a neurodevelopmental disorder, Alazami Syndrome (AS). In this study, we report that dLarp7 protein is recruited into the pathogenic SCA8 RNA foci, which leads to depletion of its downstream target, 7SKsnRNA. Soaking away of Larp7 into toxic RNA foci results in its depletion from the physiological pool resulting in destabilization and depletion of 7SKsnRNP. Hence, increasing the dose of dLarp7 suppressed SCA8 associated neurodegeneration, by restoring the physiological levels of dLarp7 and 7SKsnRNP. In addition, it was observed that dLarp7 interacts with the somatic motor neuron (SMN) protein which is associated with spinal muscular atrophy (SMA). This observation led us to explore the interaction of Drosophila SMN1 orthologue with pathogenic SCA8 associated neurodegeneration. Intriguingly, SMN protein modulated molecular neuropathogenesis associated with SCA8. The presence of orthologues of Drosophila RNA binding proteins, dLarp7 and SMN, with mammalian counterparts underlines the translational importance of our findings. Our study also hints at the shared molecular mechanisms that underlies multiple neurodegenerative diseases. A novel association of Drosophila homologs of AS-linked Larp7 and SMA-causing SMN1 with SCA8 associated neurodegeneration suggests an overlap of molecular threads underlying the pathogenesis of neurodegenerative disorders.

neuroscience↗

The Drosophila ovarian terminal filament imports molecules needed to produce lipid droplets, the fusome, and functional germ cells

Oogenesis in Drosophila requires small molecules as biosynthetic precursors and regulators of follicle development. But how such molecules reach germline stem cells (GSCs), developing germline cysts and follicles in the germarium and early ovariole is poorly understood. The flat, stacked cells of the terminal filament (TF) form a specialized somatic structure positioned at the anterior end of ovarioles in virtually all insect ovaries, but physiological roles TFs play in adult ovaries remain little known. By briefly knocking down, specifically in the TF, exocyst components affecting vesicle trafficking, lipid importers such as LpR2, and organic anion importers such as Oatp30B, we found that the TF provides lipophilic molecules to GSCs and downstream germarium cells needed to maintain lipid droplets, and germ cell differentiation. When exocyst component Sec6 is knocked down, vesicles containing lipophilic cargos back up at the TF-germ cell junction, suggesting that endosomes move between the stacked TF cells and into cap cells by transcytosis. Some of these may be shuttled during the GSC cell cycle between the TF and newly forming fusome. Our studies suggest that TFs import lipophilic precursors and regulators to autonomously coordinate their ovarioles stem cell activity and cyst development.

developmental biology↗