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Bhansali, P.

Publications and source records attributed to Bhansali, P..

3 recordsLinked to original sources

ER stress and mitochondrial dynamics: a tale of a wandering phosphatase DUSP28

Fission and fusion processes maintain the mitochondrial dynamics at a steady state and are altered during various cellular stresses. The mechanisms that regulate mitochondrial dynamics during ER stress are critically unknown. Here, we identified a dual specificity phosphatase DUSP28 with a novel role in regulating mitochondrial morphology during ER stress. Cytosolic DUSP28 translocates to mitochondria during ER stress via PERK activation and further promotes mitochondrial fission in a Drp1-dependent manner. Interestingly, the knockdown of DUSP28 activates PERK signaling and enhances ER expansion following mitochondrial elongation by enhancing S637 phosphorylation of Drp1. Overexpression of DUSP28-GFP could not rescue the loss of Drp1 function, indicating its necessity for mitochondrial fission. Further, the presence of DUSP28 on mitochondria prevents Parkin recruitment during CCCP-induced mitochondrial damage and follows STX17-dependent mitophagy. These findings illustrate the novel crosstalk between ER stress and DUSP28 phosphatase in maintaining the mitochondrial dynamics to sustain cellular stress. Key pointsO_LIPERK activation translocates cytosolic DUSP28 to mitochondria C_LIO_LIDUSP28 mediates Drp1-dependent mitochondrial fission C_LIO_LIDUSP28 phosphorylation status determines its localization and function C_LIO_LIDUSP28 inhibits Parkin recruitment to mitochondria upon CCCP treatment and follows STX17-mediated mitophagy C_LI

cell biology↗

Endoplasmic Reticulum contact sites facilitate the coordinated division of Salmonella-containing vacuole (SCV)

Salmonella Typhimurium (STM) resides in a membrane-bound compartment called Salmonella containing vacuole (SCV) in several infected cell types. Within host cells, the division of bacteria and SCV are synchronous to maintain the single bacterium per vacuole. However, the mechanism regulating the synchronous fission and the machinery is not well understood. The fission of several intracellular organelles is regulated by the dynamic nature of the tubular endoplasmic reticulum (ER). In this study, we have evaluated the role of ER in controlling SCV fission. Interestingly, Salmonella-infected cells show the activation of unfolded protein response (UPR) with expanded ER tubules compared to the uninfected cells. Further, changing the expression of ER morphology regulators, such as reticulon-4a (Rtn4a) and CLIMP63, affected bacterial proliferation significantly, suggesting a potential role for tubular ER in facilitating the SCV division. Live-cell imaging analysis shows the marking of tubular ER precisely at the center of the majority of SCV division (78%) sites. We have investigated the role of SteA (a known Salmonella effector in modulating the membrane dynamics) in coordinating the SCV division. We observed that SteA resides on the SCV membranes and helps in making membrane contact sites between SCV and ER. Accordingly, the colocalization of ER with SCV enclosing SteA mutant Salmonella was significantly reduced compared to SCV-formed by wild-type Salmonella. Depletion of steA in Salmonella resulted in profound defects in SCV division, resulting in multiple bacteria residing in a single vacuole with defects in proliferation compared to the wild-type strain in epithelial cells. Also, during in vivo infection, the STM{Delta}steA mutant shows a defect in colonization in the spleen and liver and affects the initial survival rate of mice. Overall, this study suggests a coordinated role of bacterial effector SteA in promoting the ER contact sites with SCVs and thus regulating the successful division of SCV. O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=187 SRC="FIGDIR/small/592158v2_ufig1.gif" ALT="Figure 1000"> View larger version (72K): org.highwire.dtl.DTLVardef@21e83aorg.highwire.dtl.DTLVardef@157052org.highwire.dtl.DTLVardef@1815308org.highwire.dtl.DTLVardef@1724888_HPS_FORMAT_FIGEXP M_FIG Graphical Abstract C_FIG

cell biology↗

Restoration of beta-GC trafficking improves the lysosome function in Gaucher disease

Lysosomes function as a primary site for catabolism and cellular signaling. These organelles digest a variety of substrates received through endocytosis, secretion and autophagy with the help of resident acid hydrolases. Lysosomal enzymes are folded in the endoplasmic reticulum (ER) and trafficked to lysosomes via Golgi and endocytic route. The inability of hydrolase trafficking due to mutations or mutations in its receptor or cofactor leads to cargo accumulation (storage) in lysosomes, resulting in lysosome storage disorder (LSD). In Gauchers disease (GD), the lysosomes accumulate glucosylceramide due to a lack of {beta}-glucocerebrosidase ({beta}-GC) activity that causes lysosome enlargement/dysfunction. We hypothesize that improving the trafficking of mutant {beta}-GC to lysosomes may delay the progression of GD. RNAi screen using high throughput based lysosomal enzyme activity assay followed by reporter trafficking assay utilizing {beta}-GC-mCherry lead to the identification of nine potential phosphatases. Depletion of these phosphatases in HeLa cells enhanced the {beta}-GC activity by increasing the folding and trafficking of Gauchers mutants to the lysosomes. Consistently, the lysosomes in primary fibroblasts from GD patients restored their function upon the knockdown of these phosphatases. Thus, these studies provide evidence that altering phosphatome activity possibly delays the GD and forms an alternative therapeutic strategy for this genetic disease. Key pointsO_LIPhosphatome RNAi screen identified both activators and inhibitors of cellular glucocerebrosidase activity C_LIO_LIDepletion of selective phosphatases in HeLa cells improved the folding and trafficking of mutant {beta}-glucocerebrosidase to lysosomes C_LIO_LIKnockdown of selective phosphatases restored the low basal {beta}-glucocerebrosidase activity to that of wild-type in primary cells derived from Gauchers disease patients C_LIO_LIDepletion of selective phosphatases displayed variable {beta}-GC activity in neuropathic and non-neuropathic Gauchers disease patient cells C_LI

cell biology↗