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Ugrankar-Banerjee, R.

Publications and source records attributed to Ugrankar-Banerjee, R..

2 recordsLinked to original sources

Metabolic rewiring in fat-depleted Drosophila reveals triglyceride:glycogen crosstalk and identifies cDIP as a new regulator of energy metabolism

Tissues store nutrients as triglyceride (TG) or glycogen at specific ratios, but how these reserves are sensed and balanced remains poorly understood. Here we show that blockage of de novo lipogenesis (DNL) in the Drosophila fat body (FB) triggers a cell autonomous metabolic switch characterized by severe fat depletion and profound glycogen accumulation that supports animal development. Despite lipid loss, Drosophila develop normally but exhibit shortened lifespans and impaired female fecundity. Mechanistically, we identify SREBP-dependent metabolic rewiring that facilitates a switch from TG to glycogen storage, triggered by fatty acid deficiency when DNL is inhibited, and which is rescued by dietary fatty acids. Fat depleted FBs require glycolysis but exhibit blunted mitochondrial metabolism, and no dependence on lactate utilization. Finally, we identify histone acetyltransferases (HATs) Nej and Tip60, which support SREBP activity, as essential for this metabolic switch. Collectively, we propose that in response to DNL deficiency, the fat-depleted FB undergoes a SREBP-mediated TG-to-glycogen metabolic switch preserving organismal development at the cost of reproductive success. Key findingsO_LIFat body-specific FASN1 loss leads to fat-depleted but viable Drosophila that complete their developmental lifecycle by rewiring energy metabolism to store glycogen instead of fat C_LIO_LIFASN1-deficient larvae functionally rely on glycogen synthesis and glycolysis, but not lactate metabolism, and display blunted TCA metabolism C_LIO_LIMetabolic screening reveals a SREBP-dependent TG:glycogen metabolic switch in response to blockage of DNL fatty acid biosynthesis C_LIO_LIHistone acetyltransferases (HATs) Nej and Tip60, and acetyl-CoA synthase, are required for the TG:glycogen metabolic switch C_LI

cell biology↗

Paraoxonase-like APMAP maintains endoplasmic reticulum-associated lipid and lipoprotein homeostasis

Oxidative stress perturbs lipid homeostasis and contributes to metabolic diseases. Though ignored compared to mitochondrial oxidation, the endoplasmic reticulum (ER) generates reactive oxygen species requiring antioxidant quality control. Using multi-organismal profiling featuring Drosophila, zebrafish, and mammalian cells, here we characterize the paraoxonase-like APMAP as an ER-localized protein that promotes redox and lipid homeostasis and lipoprotein maturation. APMAP-depleted mammalian cells exhibit defective ER morphology, elevated ER and oxidative stress, lipid droplet accumulation, and perturbed ApoB-lipoprotein homeostasis. Critically, APMAP loss is rescued with chemical antioxidant NAC. Organismal APMAP depletion in Drosophila perturbs fat and lipoprotein homeostasis, and zebrafish display increased vascular ApoB-containing lipoproteins, particles that are atherogenic in mammals. Lipidomics reveals altered polyunsaturated phospholipids and increased ceramides upon APMAP loss, which perturbs ApoB-lipoprotein maturation. These ApoB-associated defects are rescued by inhibiting ceramide synthesis. Collectively, we propose APMAP is an ER-localized antioxidant that promotes lipid and lipoprotein homeostasis. Key findings summaryO_LIAPMAP localizes primarily to the ER network in human cells and Drosophila fat body tissue, and is a type II integral membrane protein C_LIO_LILoss of APMAP or Drosophila APMAP (dAPMAP) causes ER membrane expansion, elevates CHOP-associated ER stress, promotes LD accumulation, and alters ApoB-lipoprotein secretion C_LIO_LIAPMAP-depleted cells and dAPMAP-depleted Drosophila fat tissue exhibit defective redox homeostasis; phenotypes associated with APMAP loss are rescued by antioxidant NAC C_LIO_LIZebrafish-based LipoGlo reporter reveals that loss of apmap in zebrafish causes increased vascular ApoB-containing lipoproteins C_LIO_LILipidomic profiling indicates that APMAP loss reduces PUFA-phospholipids and elevates intracellular ceramides, which perturbs ApoB maturation C_LI

cell biology↗