Stimfit: quantifying electrophysiological data with Python

Intracellular electrophysiological recordings provide crucial insights into elementary neuronal signals such as action potentials and synaptic currents. Analyzing and interpreting these signals is essential for a quantitative understanding of neuronal information processing, and requires both fast d...

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Published inFrontiers in neuroinformatics Vol. 8; p. 16
Main Authors Guzman, Segundo J., Schlögl, Alois, Schmidt-Hieber, Christoph
Format Journal Article
LanguageEnglish
Published Switzerland Frontiers Research Foundation 21.02.2014
Frontiers Media S.A
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ISSN1662-5196
1662-5196
DOI10.3389/fninf.2014.00016

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Abstract Intracellular electrophysiological recordings provide crucial insights into elementary neuronal signals such as action potentials and synaptic currents. Analyzing and interpreting these signals is essential for a quantitative understanding of neuronal information processing, and requires both fast data visualization and ready access to complex analysis routines. To achieve this goal, we have developed Stimfit, a free software package for cellular neurophysiology with a Python scripting interface and a built-in Python shell. The program supports most standard file formats for cellular neurophysiology and other biomedical signals through the Biosig library. To quantify and interpret the activity of single neurons and communication between neurons, the program includes algorithms to characterize the kinetics of presynaptic action potentials and postsynaptic currents, estimate latencies between pre- and postsynaptic events, and detect spontaneously occurring events. We validate and benchmark these algorithms, give estimation errors, and provide sample use cases, showing that Stimfit represents an efficient, accessible and extensible way to accurately analyze and interpret neuronal signals.
AbstractList Intracellular electrophysiological recordings provide crucial insights into elementary neuronal signals such as action potentials and synaptic currents. Analyzing and interpreting these signals is essential for a quantitative understanding of neuronal information processing, and requires both fast data visualization and ready access to complex analysis routines. To achieve this goal, we have developed Stimfit, a free software package for cellular neurophysiology with a Python scripting interface and a built-in Python shell. The program supports most standard file formats for cellular neurophysiology and other biomedical signals through the Biosig library. To quantify and interpret the activity of single neurons and communication between neurons, the program includes algorithms to characterize the kinetics of presynaptic action potentials and postsynaptic currents, estimate latencies between pre- and postsynaptic events, and detect spontaneously occurring events. We validate and benchmark these algorithms, give estimation errors, and provide sample use cases, showing that Stimfit represents an efficient, accessible and extensible way to accurately analyze and interpret neuronal signals.
Intracellular electrophysiological recordings provide crucial insights into elementary neuronal signals such as action potentials and synaptic currents. Analyzing and interpreting these signals is essential for a quantitative understanding of neuronal information processing, and requires both fast data visualization and ready access to complex analysis routines. To achieve this goal, we have developed Stimfit, a free software package for cellular neurophysiology with a Python scripting interface and a built-in Python shell. The program supports most standard file formats for cellular neurophysiology and other biomedical signals through the Biosig library. To quantify and interpret the activity of single neurons and communication between neurons, the program includes algorithms to characterize the kinetics of presynaptic action potentials and postsynaptic currents, estimate latencies between pre- and postsynaptic events, and detect spontaneously occurring events. We validate and benchmark these algorithms, give estimation errors, and provide sample use cases, showing that Stimfit represents an efficient, accessible and extensible way to accurately analyze and interpret neuronal signals.Intracellular electrophysiological recordings provide crucial insights into elementary neuronal signals such as action potentials and synaptic currents. Analyzing and interpreting these signals is essential for a quantitative understanding of neuronal information processing, and requires both fast data visualization and ready access to complex analysis routines. To achieve this goal, we have developed Stimfit, a free software package for cellular neurophysiology with a Python scripting interface and a built-in Python shell. The program supports most standard file formats for cellular neurophysiology and other biomedical signals through the Biosig library. To quantify and interpret the activity of single neurons and communication between neurons, the program includes algorithms to characterize the kinetics of presynaptic action potentials and postsynaptic currents, estimate latencies between pre- and postsynaptic events, and detect spontaneously occurring events. We validate and benchmark these algorithms, give estimation errors, and provide sample use cases, showing that Stimfit represents an efficient, accessible and extensible way to accurately analyze and interpret neuronal signals.
Author Guzman, Segundo J.
Schmidt-Hieber, Christoph
Schlögl, Alois
AuthorAffiliation 2 Wolfson Institute for Biomedical Research, University College London London, UK
3 Department of Neuroscience, Physiology and Pharmacology, University College London London, UK
1 Institute of Science and Technology Austria Klosterneuburg, Austria
AuthorAffiliation_xml – name: 1 Institute of Science and Technology Austria Klosterneuburg, Austria
– name: 2 Wolfson Institute for Biomedical Research, University College London London, UK
– name: 3 Department of Neuroscience, Physiology and Pharmacology, University College London London, UK
Author_xml – sequence: 1
  givenname: Segundo J.
  surname: Guzman
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  givenname: Alois
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  fullname: Schlögl, Alois
– sequence: 3
  givenname: Christoph
  surname: Schmidt-Hieber
  fullname: Schmidt-Hieber, Christoph
BackLink https://www.ncbi.nlm.nih.gov/pubmed/24600389$$D View this record in MEDLINE/PubMed
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Keywords C++
data analysis
electrophysiology
patch-clamp
biosignal data formats
free software
Python
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Reviewed by: Szymon Leski, Nencki Institute of Experimental Biology, Poland; Srikanth Ramaswamy, École polytechnique fédérale de Lausanne, Switzerland
Edited by: Eilif B. Muller, École polytechnique fédérale de Lausanne, Switzerland
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Snippet Intracellular electrophysiological recordings provide crucial insights into elementary neuronal signals such as action potentials and synaptic currents....
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SubjectTerms Algorithms
C++
Communication
Data analysis
Electrophysiology
Information processing
Libraries
Neurons
Neurophysiology
Neuroscience
Neurosciences
patch-clamp
python
Signal processing
Synaptic Transmission
University colleges
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Title Stimfit: quantifying electrophysiological data with Python
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