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San Antonio, E.

Publications and source records attributed to San Antonio, E..

4 recordsLinked to original sources

Striatal Cholinergic Interneurons Signal Aversion and Drive Avoidance

Seeking reward and avoiding punishment are essential for survival. However, how the brain learns aversive value and generates avoidance remains poorly understood. We investigate acetylcholine-releasing striatal cholinergic interneurons (ChIs), which exhibit prominent excitation to salient behavioral cues but have largely been postulated to play a permissive role in reinforcement learning. Using voltage imaging in mice performing aversive versus reward conditioning tasks, we reveal learning-mediated changes in both subthreshold membrane voltage and suprathreshold spiking of individual ChIs. Across tasks, ChIs exhibit stronger immediate excitation to conditioned cues predicting negative outcomes than positive outcomes. This valence-dependent response augmentation reflects a learning-induced network change specific to cues predicting negative outcomes. Furthermore, brief optogenetic silencing of this immediate excitation selectively impairs conditioned avoidance, but not conditioned approach. Together, these results reveal that ChIs actively signal evidence for aversion and play a critical role in driving avoidance, highlighting a cholinergic mechanism underlying aversive learning.

neuroscience↗

Modified self-amplifying RNAs mediate robust and prolonged gene expression in the mammalian brain

Facile, non-genomic integrating gene delivery technologies are lacking for rapid onset and prolonged protein expression in the brain. Here we report the protein expression and cell type tropism for an advanced messenger ribonucleic acid (mRNA) technology, modified 5-hydroxymethylcytidine (hm5C) self-amplifying ribonucleic acid (saRNA), when injected into the mouse brain or applied to ex vivo human cortical brain slices. saRNA, encoding fluorescent proteins, encapsulated in an LNP formulation comprising ALC-0315 (present in Comirnaty(R)) efficiently mediates long-lasting protein expression in mouse brain cells beyond five weeks, with detectable expression in some neurons at three months. hm5C saRNA substantially outperforms N1m{Psi} mRNA. In addition to transfecting astrocytes and neurons at the injection site, hm5C saRNA-LNPs label neurons retrogradely. Excitingly, hm5C saRNA-LNPs afford protein expression in human cortical brain slices, with expression emerging within 24 hours and lasting beyond 76 days. Modified saRNA provides new opportunities for mechanistic neuroscience research and therapeutic development.

neuroscience↗

Transcranial ultrasound stimulation modulates neuronal membrane potentials across broad timescales in the awake mammalian brain

BackgroundTranscranial ultrasound stimulation (TUS) offers noninvasive neuromodulation with high spatial and temporal precision, but its cellular-level effects in the awake brain remain poorly understood. ObjectiveWe investigated how low-intensity TUS modulates membrane voltage dynamics in single cortical neurons in awake mice. MethodsUsing the genetically encoded voltage indicator SomArchon, we performed high-speed kilohertz voltage imaging in awake head-fixed mice. TUS was delivered with a 0.35 MHz transducer at 10 or 40 Hz pulse repetition frequency with a 20% duty cycle, at intensities below the estimated threshold for auditory brainstem activation. We analyzed changes in membrane potential (Vm), spiking, and coordination across simultaneously recorded neurons. ResultsTUS evoked rapid (<10 ms) Vm depolarizations in 42.8% of neurons, while only 20.5% showed increased spiking, highlighting a direct effect of TUS on modulating synaptic inputs. Many neurons were entrained at both PRFs (20.8% at 10 Hz; 12.7% at 40 Hz) with Vm exhibiting significant phase-locking to individual TUS pulses. Vm entrainment was accompanied by increased temporal coordination across neurons and reset network synchrony. Furthermore, TUS-evoked cellular responses adapted over time, often transitioning from membrane depolarization to hyperpolarization upon repeated exposures, demonstrating prominent response depression. ConclusionBy resolving single-neuron responses, our results demonstrate that TUS directly activates individual cortical neuron with a latency shorter than 10 ms. TUS pulsed at physiologically relevant frequencies of 10 and 40 Hz robustly entrains neural dynamics, alters network coordination and evokes neuronal plasticity. These results highlight the therapeutic potential of designing TUS pulsing patterns to target specific neural circuit dynamics.

neuroscience↗

Ultrasound pulse repetition frequency preferentially activates different neuron populations independent of cell type

Transcranial ultrasound activates mechanosensitive cellular signaling and modulates neural dynamics. Given that intrinsic neuronal activity is limited to a couple hundred hertz and often exhibits frequency preference, we examined whether pulsing ultrasound at physiologic pulse repetition frequencies (PRFs) could selectively influence neuronal activity in the mammalian brain. We performed calcium imaging of individual motor cortex neurons, while delivering 0.35 MHz ultrasound at PRFs of 10, 40, and 140 Hz in awake mice. We found that most neurons were preferentially activated by only one of the three PRFs, highlighting unique cellular effects of physiologic PRFs. Further, ultrasound evoked responses were similar between excitatory neurons and parvalbumin positive interneurons regardless of PRFs, indicating that individual cell sensitivity dominates ultrasound-evoked effects, consistent with the heterogeneous mechanosensitive channel expression we found across single neurons in mice and humans. These results highlight the feasibility of tuning ultrasound neuromodulation effects through varying PRFs.

neuroscience↗