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Membrane potential instabilities in sensory neurons: mechanisms and pathophysiological relevance.
Velasco, Enrique; Alvarez, Julio L; Meseguer, Victor M; Gallar, Juana; Talavera, Karel.
Affiliation
  • Velasco E; Instituto de Neurociencias, Universidad Miguel Hernández-CSIC, San Juan de Alicante, Spain.
  • Alvarez JL; Laboratory of Ion Channel Research, Department of Cellular and Molecular Medicine, KU Leuven, VIB Center for Brain & Disease Research, Leuven, Belgium.
  • Meseguer VM; Instituto de Neurociencias, Universidad Miguel Hernández-CSIC, San Juan de Alicante, Spain.
  • Gallar J; Instituto de Neurociencias, Universidad Miguel Hernández-CSIC, San Juan de Alicante, Spain.
  • Talavera K; Instituto de Investigación Sanitaria y Biomédica de Alicante, San Juan de Alicante, Spain.
Pain ; 163(1): 64-74, 2022 Jan 01.
Article in En | MEDLINE | ID: mdl-34086629
ABSTRACT
ABSTRACT Peripheral sensory neurons transduce physicochemical stimuli affecting somatic tissues into the firing of action potentials that are conveyed to the central nervous system. This results in conscious perception, adaptation, and survival, but alterations of the firing patterns can result in pain and hypersensitivity conditions. Thus, understanding the molecular mechanisms underlying action potential firing in peripheral sensory neurons is essential in sensory biology and pathophysiology. Over the past 30 years, it has been consistently reported that these cells can display membrane potential instabilities (MPIs), in the form of subthreshold membrane potential oscillations or depolarizing spontaneous fluctuations. However, research on this subject remains sparse, without a clear conductive thread to be followed. To address this, we here provide a synthesis of the description, molecular bases, mathematical models, physiological roles, and pathophysiological implications of MPIs in peripheral sensory neurons. Membrane potential instabilities have been reported in trigeminal, dorsal root, and Mes-V ganglia, where they are believed to support repetitive firing. They are proposed to have roles also in intercellular communication, ectopic firing, and responses to tonic and slow natural stimuli. We highlight how MPIs are of great interest for the study of sensory transduction physiology and how they may represent therapeutic targets for many pathological conditions, such as acute and chronic pain, itch, and altered sensory perceptions. We identify future research directions, including the elucidation of the underlying molecular determinants and modulation mechanisms, their relation to the encoding of natural stimuli and their implication in pain and hypersensitivity conditions.
Subject(s)

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Sensory Receptor Cells / Ganglia, Spinal Limits: Humans Language: En Journal: Pain Year: 2022 Document type: Article Affiliation country:

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Sensory Receptor Cells / Ganglia, Spinal Limits: Humans Language: En Journal: Pain Year: 2022 Document type: Article Affiliation country: