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RESEARCH PRODUCT

Androgen-inducible gene 1 increases the ER Ca(2+) content and cell death susceptibility against oxidative stress.

Axel MethnerDmitrij LisakAstrid ClevenLars SchneiderVitalij EndersNadine Nickel

subject

0301 basic medicineMaleProgrammed cell deathGene ExpressionBiologyEndoplasmic Reticulum03 medical and health sciencesMiceProtein DomainsGene expressionGeneticsAnimalsSex CharacteristicsCell DeathEndoplasmic reticulumMembrane ProteinsGeneral MedicineEmbryo MammalianMolecular biologyTransmembrane proteinCell biologyMice Inbred C57BLTransmembrane domainCytosolAlternative SplicingOxidative Stress030104 developmental biologyMembrane proteinOrgan SpecificityMembrane topologyCalciumFemale

description

Androgen-induced gene 1 (AIG1) is a transmembrane protein implicated with survival (its expression level was shown to correlate with the survival of patients suffering from hepatocellular carcinoma) and Ca(2+) signaling (over-expression of AIG1 increased transcription mediated by the Ca(2+)-dependent nuclear factor of activated T cells). We aimed to shed light on this less-studied protein and investigated its tissue expression, genomic organization, intracellular localization and membrane topology as well as its effects on cell death susceptibility and the Ca(2+) content of the endoplasmic reticulum. Immunoblotting of mouse tissues demonstrated highest expression of AIG1 in the liver, lung and heart. AIG1 has a complex genomic organization and expresses several splice variants in a tissue-dependent manner. Analyzing the topology of AIG1 in the ER membrane using a protease-protection assay suggested that AIG has five transmembrane domains with a luminal N- and cytosolic C-terminus and a hydrophobic stretch between the third and fourth membrane domain that does not cross the membrane. AIG1 over-expression slightly increased susceptibility to oxidative stress, which correlated with an increased ER Ca(2+) concentration in two different cell lines. Together, these results indicate that AIG1 plays a role in the control of the intracellular Ca(2+) concentration and cell death susceptibility.

10.1016/j.gene.2016.03.055https://pubmed.ncbi.nlm.nih.gov/27040980