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Aglyamova, G.

Publications and source records attributed to Aglyamova, G..

2 recordsLinked to original sources

Discovery of Small Molecules and a Druggable Groove That Regulate DNA Binding and Release of the AP1 Transcription Factor DeltaFOSB

{Delta}FOSB, a member of the AP1 family of transcription factors, mediates long-term neuroadaptations underlying drug addiction, seizure-related cognitive decline, dyskinesias, and several other chronic conditions. AP1 transcription factors are notoriously difficult to modulate pharmacologically due to the absence of well-defined binding pockets. Here, we identify a novel site on {Delta}FOSB, located outside the DNA-binding cleft, that accommodates small molecules. We show that sulfonic acid-containing compounds bind to this site via an induced-fit mechanism, reorienting side chains critical for DNA binding, and that they may hinder the {Delta}FOSB bZIP -helix from binding to the major groove of DNA. In vivo, direct administration of one such compound, JPC0661, into the brain reduces {Delta}FOSB occupancy at genomic AP1 consensus sites by approximately 60% as determined by CUT&RUN-sequencing. These findings suggest that DNA binding and release by AP1 transcription factors can be controlled via small molecules that dock into a novel site that falls outside of the DNA-binding cleft. Minimal sequence conservation across 29 bZIP domain-containing transcription factors in this druggable groove suggests that it can be exploited to develop AP1-subunit-selective compounds. Our studies thus reveal a novel strategy to design small-molecule inhibitors of {Delta}FOSB and other members of the bZIP transcription factor family.

neuroscience↗

Oxidation of ΔFOSB at Cys172 Controls Hippocampal Gene Targets and Learning

Imbalance of reduction/oxidation (redox) in the brain is associated with numerous diseases including Alzheimers disease (AD), substance abuse disorders, and stroke. Moreover, cognitive decline can be caused by neuronal dysfunction that precedes cell death, and this dysfunction is in part produced by altered gene expression. However, the mechanisms by which redox state controls gene expression in neurons are not well understood. {Delta}FOSB is a neuronally enriched transcription factor critical for orchestrating gene expression underlying memory, mood, and motivated behaviors. It is dysregulated in many conditions including AD. We showed recently that {Delta}FOSB forms a redox-sensitive disulfide bond between cysteine 172 (C172) of {Delta}FOSB and C279 of its preferred binding partner JUND. This bond works as a redox switch to control DNA-binding, based on studies of recombinant proteins in vitro. Here, we show that this redox control of {Delta}FOSB function in vitro is conserved in vivo. We show that {Delta}FOSB C172 forms a redox-sensitive disulfide bond with JUND that regulates the stability of this AP1-transcription factor complex and its binding to DNA in cells. We also validate the formation of {Delta}FOSB-containing complexes held together via disulfide bonds in mouse brain in vivo. We show that exogenous oxidative stress reduces {Delta}FOSB binding to gene targets in mouse brain and that Fosb C172S knock-in mice, which lack a functional {Delta}FOSB redox switch, are insensitive to this oxidation-dependent reduction in target gene binding, demonstrating that {Delta}FOSB is regulated by a redox switch that modulates binding to target genes in the hippocampus. Finally, we demonstrate that FosB C172S knock-in mice are less sensitive to cognitive dysfunction induced by oxidative stress. This evidence supports {Delta}FOSB as an important mediator of oxidative stress-driven changes in gene expression and cognition and implicates {Delta}FOSB as a possible therapeutic target for diseases associated with oxidative stress in the brain, including AD.

neuroscience↗