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Pittman-Polletta, B. R.

Publications and source records attributed to Pittman-Polletta, B. R..

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

Modeling the schizophrenias: subunit-specific NMDAR antagonism dissociates oscillatory signatures of frontal hypofunction and hippocampal hyperfunction

NMDAR antagonism alters mesolimbic, hippocampal, and cortical function, acutely reproducing the positive, cognitive, and negative symptoms of schizophrenia. These physiological and behavioral effects may depend differentially on NMDAR subtype-and region-specific effects. The dramatic electrophysiological signatures of NMDAR blockade in rodents include potentiated high frequency oscillations (HFOs, ~140 Hz), likely generated in mesolimbic structures, and increased HFO phase-amplitude coupling (PAC), a phenomenon related to goal-directed behavior and dopaminergic tone. This study examined the impact of subtype-specific NMDAR antagonism on HFOs and PAC. We found that positive-symptom-associated NR2A-preferring antagonism (NVP-AAM077), but not NR2B-specific antagonism (Ro25-6985) or saline control, replicated increases in HFO power seen with nonspecific antagonism (MK-801). However, PAC following NR2A-preferring antagonism was distinct from all other conditions. While{theta} -HFO PAC was prominent or potentiated in other conditions, NVP-AAM077 increased{delta} -HFO PAC and decreased{theta} -HFO PAC. Furthermore, active wake epochs exhibiting narrowband frontal{delta} oscillations, and not broadband sleep-associated{delta} , selectively exhibited{delta} -HFO coupling, while paradoxical sleep epochs having a high CA1{theta} to frontal{delta} ratio selectively exhibited{theta} -HFO coupling. Our results suggest: (1) NR2A-preferring antagonism induces oscillopathies re[fl]ecting frontal hyperfunction and hippocampal hypofunction; and (2) HFO PAC indexes cortical vs. hippocampal control of mesolimbic circuits.

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