Nathan W. Schultheiss, PhD (Emory University)

Affiliations: 
Neuroscience University of Minnesota, Twin Cities, Minneapolis, MN 
Area:
computational, cellular, and systems neuroscience; biophysical modeling, in vitro and in vivo electrophysiology
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"Nathan Schultheiss"
Mean distance: 13.66 (cluster 17)
 
SNBCP

Parents

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Dieter Jaeger grad student 2005-2010 Emory
 (Intrinsic and synaptic determinants of spike timing revealed by phase response analyses of a morphological globus pallidus neuron model.)
A. David Redish post-doc 2013- UMN
Michael E. Hasselmo post-doc 2010-2013 Boston University
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Publications

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Redish AD, Schultheiss NW, Carter EC. (2015) The Computational Complexity of Valuation and Motivational Forces in Decision-Making Processes. Current Topics in Behavioral Neurosciences
Schultheiss NW, Redish AD. (2015) The compass within. Nature Neuroscience. 18: 482-3
Brandon MP, Bogaard AR, Schultheiss NW, et al. (2013) Segregation of cortical head direction cell assemblies on alternating θ cycles. Nature Neuroscience. 16: 739-48
Tsuno Y, Schultheiss NW, Hasselmo ME. (2013) In vivo cholinergic modulation of the cellular properties of medial entorhinal cortex neurons. The Journal of Physiology. 591: 2611-27
Heys JG, Schultheiss NW, Shay CF, et al. (2012) Effects of acetylcholine on neuronal properties in entorhinal cortex. Frontiers in Behavioral Neuroscience. 6: 32
Schultheiss NW, Edgerton JR, Jaeger D. (2012) Robustness, variability, phase dependence, and longevity of individual synaptic input effects on spike timing during fluctuating synaptic backgrounds: a modeling study of globus pallidus neuron phase response properties. Neuroscience. 219: 92-110
Steuber V, Schultheiss NW, Silver RA, et al. (2011) Determinants of synaptic integration and heterogeneity in rebound firing explored with data-driven models of deep cerebellar nucleus cells. Journal of Computational Neuroscience. 30: 633-58
Schultheiss NW, Edgerton JR, Jaeger D. (2010) Phase response curve analysis of a full morphological globus pallidus neuron model reveals distinct perisomatic and dendritic modes of synaptic integration. The Journal of Neuroscience : the Official Journal of the Society For Neuroscience. 30: 2767-82
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