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Thomas R. Clandinin

Stanford Medicine · US
Area of research
Cellular and Molecular Neuroscience · Molecular Biology
Research interest
Research interests include Neurobiology and Insect Physiology Research, Retinal Development and Disorders, Animal Behavior and Reproduction, and Neural dynamics and brain function.
h-index
49
citations
8,210
works
164
NIH funding
primary concept
Biology
email

Recent publications

Inhibitory columnar feedback neurons are involved in motion processing in Drosophila
eLife 2026cited by 1position: middledoi
Inhibitory columnar feedback neurons are involved in motion processing in Drosophila
2026cited by 1position: contributordoi
Inhibitory columnar feedback neurons are involved in motion processing in Drosophila
2026cited by 0position: contributordoi
Author response: Inhibitory columnar feedback neurons are involved in motion processing in Drosophila
2026cited by 0position: contributordoi
Inhibitory columnar feedback neurons are required for motion processing in Drosophila
2025cited by 2position: contributordoi
Inhibitory columnar feedback neurons are required for motion processing in Drosophila
eLife 2025cited by 1position: middledoi
Inhibitory columnar feedback neurons are involved in motion processing in <i>Drosophila</i>
2025cited by 0position: contributordoi
A fast and responsive voltage indicator with enhanced sensitivity for unitary synaptic events
Neuron 2024cited by 44position: middledoi
A recurrent neural circuit in <i>Drosophila</i> deblurs visual inputs
2024cited by 5position: contributordoi
A positively tuned voltage indicator for extended electrical recordings in the brain
Nature Methods 2023cited by 83position: middledoi
A positively tuned voltage indicator for extended electrical recordings in the brain.
2023cited by 62position: contributordoi
Long-timescale anti-directional rotation in <i>Drosophila</i> optomotor behavior.
2023cited by 7position: contributordoi
An efficient behavioral screening platform classifies natural products and other chemical cues according to their chemosensory valence in <i>C. elegans</i>
2023cited by 5position: contributordoi
Author response: Long-timescale anti-directional rotation in Drosophila optomotor behavior
2023cited by 0position: contributordoi
Fly Cell Atlas: A single-nucleus transcriptomic atlas of the adult fruit fly
Science 2022cited by 831position: middledoi
Sustained deep-tissue voltage recording using a fast indicator evolved for two-photon microscopy
Cell 2022cited by 144position: middledoi
Visual and motor signatures of locomotion dynamically shape a population code for feature detection in <i>Drosophila</i>.
2022cited by 36position: contributordoi
Author response: Visual and motor signatures of locomotion dynamically shape a population code for feature detection in Drosophila
2022cited by 1position: contributordoi
Coupling of activity, metabolism and behaviour across the Drosophila brain.
2021cited by 100position: contributordoi
Mechanosensory input during circuit formation shapes Drosophila motor behavior through patterned spontaneous network activity
Current Biology 2021cited by 43position: lastdoi
A positively Tuned Voltage Indicator Reveals Electrical Correlates of Calcium Activity in the Brain
bioRxiv (Cold Spring Harbor Laboratory) 2021cited by 14position: middledoi
SPARC enables genetic manipulation of precise proportions of cells
Nature Neuroscience 2020cited by 85position: lastdoi
SPARC enables genetic manipulation of precise proportions of cells.
2020cited by 80position: contributordoi
SPARC: a method to genetically manipulate precise proportions of cells
2019cited by 2position: contributordoi
Fast two-photon imaging of subcellular voltage dynamics in neuronal tissue with genetically encoded indicators
eLife 2017cited by 201position: middledoi
Whole-Brain Calcium Imaging Reveals an Intrinsic Functional Network in Drosophila
Current Biology 2017cited by 118position: lastdoi
Hedgehog signaling regulates gene expression in planarian glia
eLife 2016cited by 82position: middledoi
A transcriptional reporter of intracellular Ca2+ in Drosophila
Nature Neuroscience 2015cited by 96position: middledoi
Extremely Sparse Olfactory Inputs Are Sufficient to Mediate Innate Aversion in Drosophila
PLoS ONE 2015cited by 31position: middledoi
Processing properties of ON and OFF pathways for Drosophila motion detection
Nature 2014cited by 282position: middledoi

Grants

Dissecting the neural circuitry underlying polarotaxis
NSF1353956$510,0002014–2017PIRePORTER

Frequent collaborators

· 15 papers (2019–2026)Daryl M. Gohl · Princeton University5 papers (2025–2026)Marion Silies · European Neuroscience Institute Göttingen5 papers (2025–2026)Daryl M. Gohl · Princeton University4 papers (2013–2026)Liqun Luo · Howard Hughes Medical Institute3 papers (2013–2015)Marion Silies · Johannes Gutenberg University Mainz3 papers (2013–2026)Xiaojing Gao · Chinese Academy of Medical Sciences & Peking Union Medical College3 papers (2013–2015)Miriam Henning · Johannes Gutenberg University Mainz2 papers (2025–2026)Irving E. Wang · Freenome (United States)2 papers (2016–2020)Christopher J. Potter · Johns Hopkins University2 papers (2013–2015)Madhura D. Ketkar · Johannes Gutenberg University Mainz2 papers (2025–2026) · 2 papers (2013–2014)Michael Z. Lin · Stratford University2 papers (2017–2024)Teresa Lüffe · Johannes Gutenberg University Mainz2 papers (2025–2026)Helen H. Yang · Harvard University2 papers (2017–2020)Claude Desplan · New York University Abu Dhabi2 papers (2014–2026)Helen H Yang · Harvard University2 papers (2019–2024)Minseung Choi · Princeton University2 papers (2023–2023)Damon A Clark · Yale University2 papers (2023–2023)Rachel Wilson · Harvard University2 papers (2019–2020)