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Mumenthaler, J.

Publications and source records attributed to Mumenthaler, J..

2 recordsLinked to original sources

Base editing of Ptbp1 in neurons alleviates symptoms in a mouse model for Parkinson's disease

Parkinsons disease (PD) is a multifactorial disease caused by irreversible progressive loss of dopaminergic neurons (DANs). Recent studies have reported successful conversion of astrocytes into DANs by repressing polypyrimidine tract binding protein 1 (PTBP1), which led to the rescue of motor symptoms in a chemically-induced mouse model of PD. However, several follow-up studies have questioned the validity of this astrocyte to DAN conversion model. In this study, we devised an adenine base editing strategy to downregulate PTBP1 in astrocytes and neurons in a chemically-induced PD mouse model. While PTBP1 downregulation in astrocytes had no effect, we observed that PTBP1 downregulation in neurons of the substantia nigra pars compacta and striatum resulted in the expression of the DAN marker tyrosine hydroxylase (TH) in non-dividing neurons, which was associated with an increase in striatal dopamine concentrations and a rescue of forelimb akinesia and spontaneous rotations. Phenotypic analysis using multiplexed iterative immunofluorescence imaging further revealed that most of the TH-positive cells in the striatum co-expressed the dopaminergic marker DAT and the pan-neuronal marker NEUN, with the majority of these triple-positive cells being classified as mature GABAergic neurons. Additional research is needed to fully elucidate the molecular mechanisms underlying the expression of the observed markers and understand how the formation of these cells contributes to the rescue of spontaneous motor behaviors. Nevertheless, our findings support a model where neuronal, but not astrocytic, downregulation of PTBP1 can mitigate symptoms in PD mice.

neuroscience↗

Prime editing of the beta-1 adrenoceptor in the brain reprograms mouse behavior

Prime editing is a highly versatile genome editing technology that holds great potential for treating genetic diseases1, 2. While in vivo prime editing has recently been conducted in the brain, liver, heart, and retina3-6, application of this technology to modulate neural circuits in the brain has not been reported yet. Here, we employ adeno-associated viral vectors to deliver optimized intein-split prime editors into the brain of mice. Delivery into newborn pups via intracerebroventricular injection resulted in up to 44.0% editing at the Dnmt1 locus in the cortex (on average 34.8{+/-}9.8% after 6 months). In addition, we obtained up to 28.1% editing at the Adrb1 locus in the cortex (on average 14.7{+/-}11.6% after 6 months). The introduced Adrb1A187V mutation is a naturally occurring variant of the {beta}1-adrenergic receptor, which has previously been linked to increased activity and natural short sleep7. Similarly, we observed an increase in the activity and exploratory behavior of treated animals. This study demonstrates the potential of prime editing for treating genetic diseases in the central nervous system and for reprogramming molecular pathways that modulate animal behavior.

genetics↗