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Ion Channels in Analgesia Research

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Analgesia

Part of the book series: Methods in Molecular Biology ((MIMB,volume 617))

Abstract

Several recent techniques have allowed us to pinpoint the receptors responsible for the detection of nociceptive stimuli. Among these receptors, ion channels play a fundamental role in the recognition and transduction of stimuli that can cause pain. During the last decade, compelling evidence has been gathered on the role of the TRPV1 channel in inflammatory and neuropathic states. Activation of TRPV1 in nociceptive neurons results in the release of neuropeptides and transmitters, leading to the generation of action potentials that will be sent to higher CNS areas, where they will often be perceived as pain. Its activation will also evoke the peripheral release of pro-inflammatory compounds that may sensitize other neurons to physical, thermal, or chemical stimuli. For these reasons, and because its continuous activation causes analgesia, TRPV1 is now considered a viable drug target for clinical use in the management of pain. Using the TRPV1 channel as an example, here we describe some basic biophysical approaches used to study the properties of ion channels involved in pain and in analgesia.

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References

  1. Binshtok AM, Bean BP, Woolf CJ (2007) Inhibition of nociceptors by TRPV1-mediated entry of impermeant sodium channel blockers. Nature 449:607–10

    Article  PubMed  CAS  Google Scholar 

  2. Colquhoun D, Sigworth F (1995) Fitting and statistical analysis of single-channel records. In: Sakmann B, Neher E (eds) Single-channel recording. Plenum, NY, pp 191–263

    Google Scholar 

  3. Sigworth FJ (1980) The variance of sodium current fluctuations at the node of Ranvier. J Physiol 307:97–129

    PubMed  CAS  Google Scholar 

  4. Conti F, Hille B, Neumcke B, Nonner W, Stampfli R (1976) Conductance of the sodium channel in myelinated nerve fibres with modified sodium inactivation. J Physiol 262:729–742

    PubMed  CAS  Google Scholar 

  5. Conti F, Hille B, Neumcke B, Nonner W, Stampfli R (1976) Measurement of the conductance of the sodium channel from current fluctuations at the node of Ranvier. J Physiol 262:699–727

    PubMed  CAS  Google Scholar 

  6. Aldrich RW, Yellen G (1983) Analysis of nonstationary chanel kinetics. In: Sakmann B, Neher E (eds) Single-channel recording. Plenum, NY, pp 287–299

    Chapter  Google Scholar 

  7. Hoshi T, Zagotta WN, Aldrich RW (1994) Shaker potassium channel gating. I: Transitions near the open state. J Gen Physiol 103:249–78

    Article  PubMed  CAS  Google Scholar 

  8. Moczydlowski E, Latorre R (1983) Gating kinetics of Ca2+-activated K+ channels from rat muscle incorporated into planar lipid bilayers. Evidence for two voltage-dependent Ca2+ binding reactions. J Gen Physiol 82:511–42

    Article  PubMed  CAS  Google Scholar 

  9. Islas LD, Sigworth FJ (1999) Voltage sensitivity and gating charge in Shaker and Shab family potassium channels. J Gen Physiol 114:723–42

    Article  PubMed  CAS  Google Scholar 

  10. Schoppa NE, Sigworth FJ (1998) Activation of shaker potassium channels. I. Characterization of voltage-dependent transitions. J Gen Physiol 111:271–94

    Article  PubMed  CAS  Google Scholar 

  11. Zagotta WN, Hoshi T, Dittman J, Aldrich RW (1994) Shaker potassium channel gating. II: Transitions in the activation pathway. J Gen Physiol 103:279–319

    Article  PubMed  CAS  Google Scholar 

  12. Hirschberg B, Rovner A, Lieberman M, Patlak J (1995) Transfer of twelve charges is needed to open skeletal muscle Na+ channels. J Gen Physiol 106:1053–68

    Article  PubMed  CAS  Google Scholar 

  13. Horn R (1991) Diffusion of nystatin in plasma membrane is inhibited by a glass-membrane seal. Biophys J 60:433–39

    Article  PubMed  CAS  Google Scholar 

  14. Oseguera AJ, Islas LD, Garcia-Villegas R, Rosenbaum T (2007) On the mechanism of TBA block of the TRPV1 channel. Biophys J 92:3901–3914

    Article  PubMed  CAS  Google Scholar 

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Acknowledgments

TR is supported by grant CONACyT No. 58038 and DGAPA-UNAM IN200308. SAS is supported in part by grants NIH Grants GM27278, DC-01065 and by grants from Philip Morris USA and Philip Morris International Inc. LDI is supported by CONACyT grant No. 48990 and DGAPA-UNAM grant IN202006-3.

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Correspondence to Tamara Rosenbaum .

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Rosenbaum, T., Simon, S.A., Islas, L.D. (2010). Ion Channels in Analgesia Research. In: Szallasi, A. (eds) Analgesia. Methods in Molecular Biology, vol 617. Humana Press, Totowa, NJ. https://doi.org/10.1007/978-1-60327-323-7_18

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  • DOI: https://doi.org/10.1007/978-1-60327-323-7_18

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  • Publisher Name: Humana Press, Totowa, NJ

  • Print ISBN: 978-1-60327-322-0

  • Online ISBN: 978-1-60327-323-7

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