Keyword search (4,163 papers available)

"Shizgal P" Authored Publications:

Title Authors PubMed ID
1 Discriminative properties of rewarding electrical brain stimulation Pacheco-Gomez BL; Zepeda-Ruiz WA; Velazquez-Lopez D; Shizgal P; Velazquez-Martinez DN; 40015584
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2 Does phasic dopamine release cause policy updates? Carter F; Cossette MP; Trujillo-Pisanty I; Pallikaras V; Breton YA; Conover K; Caplan J; Solis P; Voisard J; Yaksich A; Shizgal P; 38039083
PSYCHOLOGY
3 Dopamine and Beyond: Implications of Psychophysical Studies of Intracranial Self-Stimulation for the Treatment of Depression Pallikaras V; Shizgal P; 36009115
PSYCHOLOGY
4 The Convergence Model of Brain Reward Circuitry: Implications for Relief of Treatment-Resistant Depression by Deep-Brain Stimulation of the Medial Forebrain Bundle Pallikaras V; Shizgal P; 35431828
PSYCHOLOGY
5 The trade-off between pulse duration and power in optical excitation of midbrain dopamine neurons approximates Bloch's law Pallikaras V; Carter F; Velazquez-Martinez DN; Arvanitogiannis A; Shizgal P; 34864162
PSYCHOLOGY
6 Dopamine neurons do not constitute an obligatory stage in the final common path for the evaluation and pursuit of brain stimulation reward. Trujillo-Pisanty I, Conover K, Solis P, Palacios D, Shizgal P 32502210
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7 The priming effect of food persists following blockade of dopamine receptors. Evangelista C, Hantson A, Shams WM, Almey A, Pileggi M, Voisard JR, Boulos V, Al-Qadri Y, Gonzalez Cautela BV, Zhou FX, Duchemin J, Habrich A, Tito N, Koumrouyan RA, Patel S, Lorenc V, Gagne C, El Oufi K, Shizgal P, Brake WG 31350860
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8 Learning to use past evidence in a sophisticated world model. Ahilan S, Solomon RB, Breton YA, Conover K, Niyogi RK, Shizgal P, Dayan P 31233559
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9 Ventral Midbrain NMDA Receptor Blockade: From Enhanced Reward and Dopamine Inactivation. Hernandez G, Cossette MP, Shizgal P, Rompré PP 27616984
PSYCHOLOGY
10 Valuation of opportunity costs by rats working for rewarding electrical brain stimulation. Solomon RB, Conover K, Shizgal P 28841663
PSYCHOLOGY
11 17β-estradiol locally increases phasic dopamine release in the dorsal striatum. Shams WM, Cossette MP, Shizgal P, Brake WG 29175028
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12 Some work and some play: microscopic and macroscopic approaches to labor and leisure. Niyogi RK, Shizgal P, Dayan P 25474151
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13 Robust optical fiber patch-cords for in vivo optogenetic experiments in rats. Trujillo-Pisanty I, Sanio C, Chaudhri N, Shizgal P 26150997
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14 The neural substrates for the rewarding and dopamine-releasing effects of medial forebrain bundle stimulation have partially discrepant frequency responses. Cossette MP, Conover K, Shizgal P 26477378
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15 The Effects of Electrical and Optical Stimulation of Midbrain Dopaminergic Neurons on Rat 50-kHz Ultrasonic Vocalizations. Scardochio T, Trujillo-Pisanty I, Conover K, Shizgal P, Clarke PB 26696851
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Title:The trade-off between pulse duration and power in optical excitation of midbrain dopamine neurons approximates Bloch's law
Authors:Pallikaras VCarter FVelazquez-Martinez DNArvanitogiannis AShizgal P
Link:https://pubmed.ncbi.nlm.nih.gov/34864162/
DOI:10.1016/j.bbr.2021.113702
Publication:Behavioural brain research
Keywords:ChannelRhodopsin-2DopamineOptogeneticsReward seekingTemporal integration
PMID:34864162 Category: Date Added:2021-12-06
Dept Affiliation: PSYCHOLOGY
1 Center for Studies in Behavioral Neurobiology, Department of Psychology, Concordia University, 7141 Sherbrooke St W., Montreal, Quebec, Canada, H4B 1R6.
2 Center for Studies in Behavioral Neurobiology, Department of Psychology, Concordia University, 7141 Sherbrooke St W., Montreal, Quebec, Canada, H4B 1R6. Electronic address: peter.shizgal@concordia.ca.

Description:

Optogenetic experiments reveal functional roles of specific neurons. However, functional inferences have been limited by widespread adoption of a restricted set of stimulation parameters. Broader exploration of the parameter space can deepen insight into the mapping between selective neural activity and behavior. In this way, characteristics of the activated neural circuit, such as temporal integration, can be inferred. Our objective was to determine whether an equal-energy principle accounts for the interaction of pulse duration and optical power in optogenetic excitation. Six male TH::Cre rats worked for optogenetic (ChannelRhodopsin-2) stimulation of VTA dopamine neurons. We used a within-subject design to describe the trade-off between pulse duration and optical power in determining reward seeking. Parameters were customized for each subject based on behavioral effectiveness. Within a useful range of powers (~12.6-31.6mW) the product of optical power and pulse duration required to produce a given level of reward seeking was roughly constant. Such reciprocity is consistent with Bloch's law, which posits an equal-energy principle of temporal summation over short durations in human vision. The trade-off between pulse duration and power broke down at higher powers. Thus, optical power and duration can be adjusted reciprocally for brief durations and lower powers, and power can be substituted for pulse duration to scale the region of excitation in behavioral optogenetic experiments. The findings demonstrate the utility of within-subject and trade-off designs in optogenetics and of parameter adjustment based on functional endpoints instead of physical properties of the stimulation.





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