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Sunkavalli, P. S.

Publications and source records attributed to Sunkavalli, P. S..

2 recordsLinked to original sources

Slow-Timescale Regulation of Dopamine Release and Mating Drive over Days

The rise and fall of motivational states may take place over timescales as long as many days. We used mouse mating behavior to model how the brain orchestrates slow-timescale changes in motivation. Male mice become sexually satiated after successful matings, and their motivation to mate gradually recovers over a week. Using deep-brain fluorescence-lifetime imaging in the medial preoptic area (MPOA), we found that tonic dopamine transmission--which regulates mating drive--also declined after mating and re-emerged over a week. Two mechanisms regulated dopamine transmission. First, successful mating transiently reduced tonic firing of hypothalamic dopamine-releasing neurons, thereby inhibiting dopamine release and mating behavior. Second, mating reduced the ability of these neurons to produce and release dopamine, and this ability gradually returned over the week-long recovery time course. Therefore, fast and slow mechanisms of neuronal plasticity cooperate to control the early and late phases of motivational dynamics, respectively.

neuroscience↗

A Sensitive Soma-localized Red Fluorescent Calcium Indicator for Multi-Modality Imaging of Neuronal Populations In Vivo

Recent advancements in genetically encoded calcium indicators, particularly those based on green fluorescent proteins, have optimized their performance for monitoring neuronal activities in a variety of model organisms. However, progress in developing red-shifted GECIs, despite their advantages over green indicators, has been slower, resulting in fewer options for end-users. In this study, we explored topological inversion and soma-targeting strategies, which are complementary to conventional mutagenesis, to re-engineer a red genetically encoded calcium indicator, FRCaMP, for enhanced in vivo performance. The resulting sensors, FRCaMPi and soma-targeted FRCaMPi (SomaFRCaMPi), exhibit up to 2-fold higher dynamic range and peak {Delta}F/F0 per single AP compared to widely used jRGECO1a in neurons in culture and in vivo. Compared to jRGECO1a and FRCaMPi, SomaFRCaMPi reduces erroneous correlation of neuronal activity in the brains of mice and zebrafish by two- to four-fold due to diminished neuropil contamination without compromising the signal-to-noise ratio. Under wide-field imaging in primary somatosensory and visual cortex in mice with high labeling density (80-90%), SomaFRCaMPi exhibits up to 40% higher SNR and decreased artifactual correlation across neurons. Altogether, SomaFRCaMPi improves the accuracy and scale of neuronal activity imaging at single-neuron resolution in densely labeled brain tissues due to a 2-3-fold enhanced automated neuronal segmentation, 50% higher fraction of responsive cells, up to 2-fold higher SNR compared to jRGECO1a. Our findings highlight the potential of SomaFRCaMPi, comparable to the most sensitive soma-targeted GCaMP, for precise spatial recording of neuronal populations using popular imaging modalities in model organisms such as zebrafish and mice.

neuroscience↗