Thomas D. Riemensperger

Affiliations: 
 
Area:
Dopamine, Plasticity
Google:
"Thomas Riemensperger"
Mean distance: 16.32 (cluster 6)
 
SNBCP
Cross-listing: FlyTree

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Publications

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Warth Pérez Arias CC, Frosch P, Fiala A, et al. (2020) Stochastic and Arbitrarily Generated Input Patterns to the Mushroom Bodies Can Serve as Conditioned Stimuli in . Frontiers in Physiology. 11: 53
Mayseless O, Berns DS, Yu XM, et al. (2018) Developmental Coordination during Olfactory Circuit Remodeling in Drosophila. Neuron
Sun J, Xu AQ, Giraud J, et al. (2018) Neural Control of Startle-Induced Locomotion by the Mushroom Bodies and Associated Neurons in . Frontiers in Systems Neuroscience. 12: 6
Niens J, Reh F, Çoban B, et al. (2017) Dopamine Modulates Serotonin Innervation in the Drosophila Brain. Frontiers in Systems Neuroscience. 11: 76
Martelli C, Pech U, Kobbenbring S, et al. (2017) SIFamide Translates Hunger Signals into Appetitive and Feeding Behavior in Drosophila. Cell Reports. 20: 464-478
Riemensperger T, Kittel RJ, Fiala A. (2016) Optogenetics in Drosophila Neuroscience. Methods in Molecular Biology (Clifton, N.J.). 1408: 167-75
AzimiHashemi N, Erbguth K, Vogt A, et al. (2015) Erratum: Synthetic retinal analogs modify the spectral and kinetic characteristics of microbial rhodopsin optogenetic tools. Nature Communications. 6: 6458
Cassar M, Issa AR, Riemensperger T, et al. (2015) A dopamine receptor contributes to paraquat-induced neurotoxicity in Drosophila. Human Molecular Genetics. 24: 197-212
AzimiHashemi N, Erbguth K, Vogt A, et al. (2014) Synthetic retinal analogues modify the spectral and kinetic characteristics of microbial rhodopsin optogenetic tools. Nature Communications. 5: 5810
Lavista-Llanos S, Svatoš A, Kai M, et al. (2014) Dopamine drives Drosophila sechellia adaptation to its toxic host. Elife. 3
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