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McCarthy, M. M.

Publications and source records attributed to McCarthy, M. M..

3 recordsLinked to original sources

Biased competition in the absence of input bias: predictions from corticostriatal computation

Classical accounts of biased competition (BC) require an input bias to resolve the competition between neuronal ensembles driving downstream processing. However, flexible and reliable selection of behaviorally-relevant ensembles can occur with unbiased stimulation: striatal D1 and D2 spiny projecting neurons (SPNs) receive balanced cortical input, yet their activity determines the choice between GO and NO-GO pathways in the basal ganglia. We present a corticostriatal model identifying three mechanisms that rely on physiological asymmetries to effect rate- and time-coded BC in the presence of balanced inputs. First, tonic input strength determines which SPN phenotype exhibit higher mean firing rate (FR). Second, low strength oscillatory inputs induce higher FR in D2 SPNs but higher coherence between D1 SPNs. Third, high strength inputs oscillating at distinct frequencies preferentially activate D1 or D2 SPN populations. Of these mechanisms, the latter accommodates observed rhythmic activity supporting rule-based decision making in prefrontal cortex.

neuroscience

Mast Cells in the Developing Brain Determine Adult Sexual Behavior

Sex differences in brain and behavior are programmed during development by gonadal hormones. We found that the immune system-derived mast cell is a primary target for the masculinizing hormone, estradiol. Male rats had more mast cells in the preoptic area (POA), a brain region essential for male copulatory behavior, during the critical period for sexual differentiation. Activating mast cells in females masculinized POA neuronal and microglial morphology and adult sex behavior, and inhibiting mast cells in males blunted masculinization. Estradiol increased mast cell number and caused mast cells to release histamine, which stimulated microglia to release prostaglandins and thereby induced male-typical synaptic patterning. Inducing an allergic reaction in pregnant dams increased mast cell number in the brains of female fetuses and masculinized neuronal and microglia morphology and adult copulatory behavior. These findings identify a novel non-neuronal origin of brain sex differences and non-steroidal source of variability in brain feminization.

neuroscience

Striatal cholinergic receptor activation causes a rapid, selective, & state-dependent rise in corticostriatal β activity.

Cortico-basal ganglia-thalamic (CBT) {beta} oscillations (15-30 Hz) are elevated in Parkinsons disease and correlated with movement disability. To date, no experimental paradigm outside of loss of dopamine has been able to specifically elevate {beta} oscillations in the CBT loop. Here, we show that activation of striatal cholinergic receptors selectively increased {beta} oscillations in mouse striatum and motor cortex. In individuals showing simultaneous {beta} increases in both striatum and M1, {beta} partial directed coherence (PDC) increased from striatum to M1 (but not in the reverse direction). In individuals that did not show simultaneous {beta} increases, {beta} PDC increased from M1 to striatum (but not in the reverse direction), and M1 was characterized by persistent {beta}-HFO phase-amplitude coupling. Finally, the direction of {beta} PDC distinguished between {beta} subbands. This suggests: (1) striatal cholinergic tone exerts state-dependent and frequency-selective control over CBT {beta} power and coordination; (2) ongoing rhythmic dynamics can determine whether elevated {beta} oscillations are expressed in striatum and M1; (3) altered striatal cholinergic tone differentially modulates distinct {beta} subbands.

neuroscience