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Macrophage mitochondrial bioenergetics and tissue invasion are boosted by an Atossa‐Porthos axis in Drosophila
Authors:Shamsi Emtenani,Elliot T Martin,Attila Gyoergy,Julia Bicher,Jakob‐  Wendelin Genger,Thomas Kö  cher,Maria Akhmanova,Mariana Guarda,Marko Roblek,Andreas Bergthaler,Thomas R Hurd,Prashanth Rangan,Daria E Siekhaus
Affiliation:1. Institute of Science and Technology Austria, Klosterneuburg Austria ; 2. Department of Biological Sciences, RNA Institute, University at Albany, Albany NY, USA ; 3. CeMM Research Center for Molecular Medicine of the Austrian Academy of Sciences, Vienna Austria ; 4. Vienna BioCenter Core Facilities, Vienna Austria ; 5. Department of Molecular Genetics, University of Toronto, Toronto ON, Canada
Abstract:Cellular metabolism must adapt to changing demands to enable homeostasis. During immune responses or cancer metastasis, cells leading migration into challenging environments require an energy boost, but what controls this capacity is unclear. Here, we study a previously uncharacterized nuclear protein, Atossa (encoded by CG9005), which supports macrophage invasion into the germband of Drosophila by controlling cellular metabolism. First, nuclear Atossa increases mRNA levels of Porthos, a DEAD‐box protein, and of two metabolic enzymes, lysine‐α‐ketoglutarate reductase (LKR/SDH) and NADPH glyoxylate reductase (GR/HPR), thus enhancing mitochondrial bioenergetics. Then Porthos supports ribosome assembly and thereby raises the translational efficiency of a subset of mRNAs, including those affecting mitochondrial functions, the electron transport chain, and metabolism. Mitochondrial respiration measurements, metabolomics, and live imaging indicate that Atossa and Porthos power up OxPhos and energy production to promote the forging of a path into tissues by leading macrophages. Since many crucial physiological responses require increases in mitochondrial energy output, this previously undescribed genetic program may modulate a wide range of cellular behaviors.
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