Zobrazeno 1 - 5
of 5
pro vyhledávání: '"Logesh Dharmar"'
Autor:
Cengiz Günay, Fred H Sieling, Logesh Dharmar, Wei-Hsiang Lin, Verena Wolfram, Richard Marley, Richard A Baines, Astrid A Prinz
Publikováno v:
PLoS Computational Biology, Vol 11, Iss 5, p e1004189 (2015)
Studying ion channel currents generated distally from the recording site is difficult because of artifacts caused by poor space clamp and membrane filtering. A computational model can quantify artifact parameters for correction by simulating the curr
Externí odkaz:
https://doaj.org/article/902bec78164e493b87159bb8fbcf69a4
Publikováno v:
The American Journal of Emergency Medicine. 35:885-888
Background Pediatric appendicitis is a common, potentially serious condition. Determining perforation status is crucial to planning effective management. Purpose Determine the efficacy of serum total bilirubin concentration [STBC] in distinguishing p
Publikováno v:
BMC Neuroscience, Vol 12, Iss Suppl 1, p P258 (2011)
BMC Neuroscience
Europe PubMed Central
BMC Neuroscience
Europe PubMed Central
Drosophila is a powerful genetic model system for investigating neuronal function. Most of the important membrane ion channel genes, such as voltage-gated sodium and potassium channels, were first identified and isolated in the fruit fly. Technical a
Publikováno v:
BMC Neuroscience
Drosophila is a powerful genetic model system for investigating neuronal function. Several important membrane ion channel genes, such as voltage-gated sodium and potassium channels, were first identified and isolated in the fruit fly. Technical advan
Autor:
Richard Marley, Fred H. Sieling, Astrid A. Prinz, Richard A. Baines, Logesh Dharmar, Wei-Hsiang Lin, Cengiz Günay
Publikováno v:
BMC Neuroscience
Europe PubMed Central
BMC Neuroscience, Vol 11, Iss Suppl 1, p P147 (2010)
Europe PubMed Central
BMC Neuroscience, Vol 11, Iss Suppl 1, p P147 (2010)
Neurons have diverse electrophysiological characteristics controlled by voltage-gated ion channels. It is not known how much of the diversity of neuronal activity is caused by differential channel gene expression as opposed to alternate splicing of t