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Anatol C. Kreitzer

Gladstone Institutes · US
🔎 Find collaborators in Cellular and Molecular Neuroscience · Cognitive Neuroscience →
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Area of research
Cellular and Molecular Neuroscience · Cognitive Neuroscience
Research interest
Research interests include Neuroscience and Neuropharmacology Research, Neural dynamics and brain function, Neurological disorders and treatments, and Photoreceptor and optogenetics research.
h-index
51
citations
19,137
works
89
NIH funding
primary concept
email

Recent publications

Chronic hyperactivation of midbrain dopamine neurons causes preferential dopamine neuron degeneration.
2025cited by 4position: contributordoi
Chronic hyperactivation of midbrain dopamine neurons causes preferential dopamine neuron degeneration
2025cited by 0position: contributordoi
Chronic hyperactivation of midbrain dopamine neurons causes preferential dopamine neuron degeneration
eLife 2025cited by 0position: contributordoi
Author response: Chronic hyperactivation of midbrain dopamine neurons causes preferential dopamine neuron degeneration
2025cited by 0position: contributordoi
Chronic hyperactivation of midbrain dopamine neurons causes preferential dopamine neuron degeneration
2024cited by 1position: contributordoi
Chronic hyperactivation of midbrain dopamine neurons causes preferential dopamine neuron degeneration
2024cited by 0position: contributordoi
Author response: Chronic hyperactivation of midbrain dopamine neurons causes preferential dopamine neuron degeneration
2024cited by 0position: contributordoi
Dopamine subsystems that track internal states
Nature 2022cited by 140position: middledoi
Frontostriatal Projections Regulate Innate Avoidance Behavior
Journal of Neuroscience 2021cited by 36position: middledoi
Thermal constraints on in vivo optogenetic manipulations
Nature Neuroscience 2019cited by 437position: lastdoi
Thermal constraints on in vivo optogenetic manipulations.
2019cited by 339position: contributordoi
Locomotor suppression by a monosynaptic amygdala to brainstem circuit
2019cited by 9position: contributordoi
A Genetically Encoded Fluorescent Sensor Enables Rapid and Specific Detection of Dopamine in Flies, Fish, and Mice
Cell 2018cited by 884position: middledoi
Fast-Spiking Interneurons Supply Feedforward Control of Bursting, Calcium, and Plasticity for Efficient Learning
Cell 2018cited by 167position: lastdoi
A Subpopulation of Striatal Neurons Mediates Levodopa-Induced Dyskinesia
Neuron 2018cited by 148position: middledoi
Cell-Type-Specific Control of Brainstem Locomotor Circuits by Basal Ganglia
Cell 2016cited by 408position: lastdoi
Pathway-Specific Remodeling of Thalamostriatal Synapses in Parkinsonian Mice
Neuron 2016cited by 142position: lastdoi
Activation of Direct and Indirect Pathway Medium Spiny Neurons Drives Distinct Brain-wide Responses
Neuron 2016cited by 137position: middledoi
Parkinsonism Driven by Antipsychotics Originates from Dopaminergic Control of Striatal Cholinergic Interneurons
Neuron 2016cited by 117position: middledoi
Cortico–Basal Ganglia Circuit Function in Psychiatric Disease
Annual Review of Physiology 2015cited by 153position: lastdoi
Optogenetics: 10 years after ChR2 in neurons—views from the community
Nature Neuroscience 2015cited by 137position: middledoi
Reassessing Models of Basal Ganglia Function and Dysfunction
Annual Review of Neuroscience 2014cited by 337position: lastdoi
Striatal Cholinergic Interneurons Drive GABA Release from Dopamine Terminals
Neuron 2014cited by 167position: lastdoi
Striatal Cholinergic Neurotransmission Requires VGLUT3
Journal of Neuroscience 2014cited by 98position: middledoi
Differential Innervation of Direct- and Indirect-Pathway Striatal Projection Neurons
Neuron 2013cited by 513position: lastdoi
Physiologic brain activity causes DNA double-strand breaks in neurons, with exacerbation by amyloid-β
Nature Neuroscience 2013cited by 486position: middledoi
Control of Basal Ganglia Output by Direct and Indirect Pathway Projection Neurons
Journal of Neuroscience 2013cited by 413position: lastdoi
Inhibitory Interneuron Deficit Links Altered Network Activity and Cognitive Dysfunction in Alzheimer Model
Cell 2012cited by 1,251position: middledoi
Distinct roles for direct and indirect pathway striatal neurons in reinforcement
Nature Neuroscience 2012cited by 996position: lastdoi
Direct Reprogramming of Mouse and Human Fibroblasts into Multipotent Neural Stem Cells with a Single Factor
Cell stem cell 2012cited by 532position: middledoi

Grants

No grants ingested yet.

Frequent collaborators

· 9 papers (2019–2025) · 7 papers (2024–2025)Katerina Rademacher · Gladstone Institutes7 papers (2024–2025)Kohei Kano · Asahikawa Medical University7 papers (2024–2025)Yoshitaka Sei · Georgia Institute of Technology7 papers (2024–2025)Zac Chatterton · Deakin University7 papers (2024–2025)Joseph H. Garcia · Gladstone Institutes7 papers (2024–2025)Ken Nakamura · Gladstone Institutes7 papers (2024–2025)Alexandra B. Nelson · Elsevier, Inc.7 papers (2024–2025)Aphroditi Mamaligas · Gladstone Institutes7 papers (2024–2025)Glenda M. Halliday · The University of Sydney7 papers (2024–2025)Zak Doric · Gladstone Institutes7 papers (2024–2025) · 7 papers (2024–2025)Yuhong Fu · Elsevier, Inc.7 papers (2024–2025)Victoria M Vance · Northeastern University7 papers (2024–2025)Rose Creed · University of California, San Francisco7 papers (2024–2025)Dominik Haddad · KU Leuven7 papers (2024–2025)Alexxai V. Kravitz · Washington University in St. Louis6 papers (2012–2016)Alexandra Nelson · University of California, San Francisco6 papers (2012–2021)Scott F. Owen · Stanford University3 papers (2018–2019)
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