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Pfrieger, F.

Publications and source records attributed to Pfrieger, F..

3 recordsLinked to original sources

Pharmacological BET Protein Inhibition Reverts Niemann-Pick Type C Disease-Associated Changes in Human iPSC-Derived Cortical Neurons

Niemann-Pick type C1 (NPC1) disease is a fatal lysosomal disorder caused by impaired intracellular cholesterol trafficking, leading to progressive neurodegeneration and premature death. Despite advances in disease modelling, therapeutic development remains limited, partly due to the lack of human neuronal systems that accurately recapitulate disease-relevant phenotypes. Here, we generated a patient-specific neuronal model by differentiating induced pluripotent stem cells (iPSCs) carrying the most common NPC1 p.I1061T variant into cortical neurons. These cells exhibit hallmarks of neuronal pathology associated with NPC1 disease, providing a platform to investigate pathological mechanisms and to validate therapeutic candidates in a human context. Using this experimental model, we explored the effects of pharmacological inhibition of bromodomain and extraterminal (BET) proteins. Treatment with the BET inhibitor JQ1 attenuated disease-associated phenotypes, improving neuronal viability and modulating intracellular cholesterol accumulation. Overall, our findings identify BET inhibition as a novel strategy to ameliorate NPC1-associated neuronal pathology and uncover a previously underexplored link between epigenetic regulation and cholesterol homeostasis, highlighting iPSC-derived neurons as a powerful platform for therapeutic discovery.

neuroscience↗

Oxytocin Gαi signaling-induced amygdala astrocytes processes retraction shapes behavioral stress response

Anticipated reactions to stressful situations are vital for the survival and well-being of organisms, and abnormal reactions are involved in stress-related disorders. The neuropeptide oxytocin is a key modulator ensuring well-adapted stress responses. Oxytocin acts on both neurons and astrocytes, but the molecular and cellular mechanisms mediating stress response remain poorly understood. Here, we focus on the amygdala, a crucial hub that integrates and processes sensory information through oxytocin- dependent mechanisms. Using an acute stress paradigm in mice, genetic and pharmacological manipulations combined with proteomic, morphological, electrophysiological and behavioral approaches, we reveal that oxytocinergic modulation of the freezing response to stress is mediated by transient Gi-dependent retraction of astrocytic processes, followed by enhanced neuronal sensitivity to extracellular potassium in the amygdala. Our findings elucidate a pivotal role for astrocytes morphology- dependent modulation of brain circuits that is required for proper anticipated behavioral response to stressful situations.

neuroscience↗

Cell type-specific assessment of cholesterol distribution in models of neurodevelopmental disorders

Most nervous system disorders manifest through alterations in neuronal signaling based on abnormalities in neuronal excitability, synaptic transmission, and cell survival. However, such neuronal phenotypes are frequently accompanied - or even caused - by metabolic dysfunctions in neuronal or non-neuronal cells. The tight packing and highly heterogenous properties of neural, glial and vascular cell types pose significant challenges to dissecting metabolic aspects of brain disorders. Perturbed cholesterol homeostasis has recently emerged as key parameter associated with sub-sets of neurodevelopmental disorders. However, approaches for tracking and visualizing endogenous cholesterol distribution in the brain have limited capability of resolving cell type-specific differences. We here develop tools for genetically-encoded sensors that report on cholesterol distribution in the mouse brain with cellular resolution. We apply these probes to examine sub-cellular cholesterol accumulation in two genetic mouse models of neurodevelopmental disorders, Npc1 and Ptchd1 knock-out mice. While both genes encode proteins with sterol-sensing domains that have been implicated in cholesterol transport, we uncover highly selective and cell type-specific phenotypes in cholesterol homeostasis. The tools established in this work should facilitate probing sub-cellular cholesterol distribution in complex tissues like the mammalian brain and enable capturing cell type-specific alterations in cholesterol flow between cells in models of brain disorders.

neuroscience↗