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Elhazaz Fernandez, A.

Publications and source records attributed to Elhazaz Fernandez, A..

2 recordsLinked to original sources

Nuclear mTOR-Polycomb synergism at developmental gene promoters prone to activation

Pluripotent cells hold the capacity to differentiate into cells with diverse functions, enabling development and regeneration. The balance between local epigenetic repression and maintaining the potential for prompt transcriptional activation supports pluripotency while allowing imminent differentiation. How the activation of developmental pathways is correctly timed in sync with the environment remains poorly understood. Here we find that the cellular growth regulator mTOR selectively binds developmental gene promoters in pluripotent mouse embryonic stem cells. mTOR binding at target genes correlates with and depends on histone H2AK119 monoubiquitination (H2AK119ub1) deposited by the Polycomb Repressor Complex 1 (PRC1). Acute depletion of the whole PRC1 complex or its catalytic activity leads to depletion of mTOR at target gene promoters, whereas forced PRC1 recruitment to an artificial site brings along mTOR. At target genes, mTOR colocalizes with components of the transcription machinery and we find that mTOR-bound genes are distinctly characterized by high levels of RNA Polymerase II pausing. Our findings reveal a role of mTOR in pluripotency regulation and highlight the tight crosstalk between gene regulatory and cell growth machineries in stem cells.

molecular biology↗

Unraveling the therapeutic mechanism of deep-brain stimulation

Deep-brain stimulation (DBS) is an effective treatment for patients suffering from otherwise therapy-resistant psychiatric disorders, including obsessive-compulsive disorder. Modulation of cortico-striatal circuits has been suggested as a mechanism of action. To gain mechanistic insight, we monitored neuronal activity in cortico-striatal regions in a mouse model for compulsive behavior, while systematically varying clinically-relevant parameters of internal-capsule DBS. DBS showed dose-dependent effects on both brain and behavior: An increasing, yet balanced, number of excited and inhibited neurons was recruited, scattered throughout cortico-striatal regions, while compulsive grooming decreased. Such neuronal recruitment did not alter basic brain function such as resting-state activity, and only occurred in awake animals, indicating a dependency on network activity. In addition to these widespread effects, we observed specific involvement of the medial orbitofrontal cortex in therapeutic outcomes, which was corroborated by optogenetic stimulation. Together, our findings provide mechanistic insight into how DBS exerts its therapeutic effects on compulsive behaviors.

neuroscience↗