Patch-Clamp Methods and Protocols
| Autor Corporativo: | |
|---|---|
| Outros autores: | , | 
| Summary: | XI, 321 p. 71 illus. text  | 
| Idioma: | inglés | 
| Publicado: | 
        Totowa, NJ :
          Humana Press : Imprint: Humana,
    
        2007.
     | 
| Edición: | 1st ed. 2007. | 
| Series: | Methods in Molecular Biology,
              403             | 
| Subjects: | |
| Acceso en liña: | https://doi.org/10.1007/978-1-59745-529-9 | 
| Formato: | Electrónico Libro | 
                Table of Contents: 
            
                  - Pharmacology
 - Pharmacological Analysis of Recombinant NR1a/2A and NR1a/2B NMDA Receptors Using the Whole-Cell Patch-Clamp Method
 - Memantine as an Example of a Fast, Voltage-Dependent, Open Channel N-Methyl-d-Aspartate Receptor Blocker
 - Methods for Evaluation of Positive Allosteric Modulators of Glutamate AMPA Receptors
 - Automated Voltage-Clamp Technique
 - Flip-the-Tip
 - The Roboocyte
 - Physiology
 - Infrared-Guided Laser Stimulation as a Tool for Elucidating the Synaptic Site of Expression of Long-Term Synaptic Plasticity
 - Single-Cell RT–PCR, a Technique to Decipher the Electrical, Anatomical, and Genetic Determinants of Neuronal Diversity
 - Mechanosensitive Ion Channels Investigated Simultaneously by Scanning Probe Microscopy and Patch Clamp
 - Synaptic Connectivity in Engineered Neuronal Networks
 - Modeling of Action Potential Generation in NG108-15 Cells
 - Whole-Cell Voltage Clamp on Skeletal Muscle Fibers With the Silicone-Clamp Technique
 - Determination of Channel Properties at the Unitary Level in Adult Mammalian Isolated Cardiomyocytes
 - Electrophysiological Properties of Embryonic Stem Cells During Differentiation Into Cardiomyocyte-Like Cell Types
 - Hybrid Neuronal Network Studies Under Dynamic Clamp
 - Cardiac Channelopathies Studied With the Dynamic Action Potential-Clamp Technique
 - Biophysics
 - Principles of Single-Channel Kinetic Analysis
 - Use of Xenopus Oocytes to Measure Ionic Selectivity of Pore-Forming Peptides and Ion Channels
 - Estimation of Quantal Parameters With Multiple-Probability Fluctuation Analysis.