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Voltage- and Calcium-Gated Membrane Currents Tune the Plateau Potential Properties of Multiple Neuron Types. | LitMetric

Voltage- and Calcium-Gated Membrane Currents Tune the Plateau Potential Properties of Multiple Neuron Types.

J Neurosci

Department of Neurobiology and Anatomy, W.M. Keck Center for the Neurobiology of Learning and Memory, McGovern Medical School at the University of Texas Health Science Center, Houston, Texas 77030

Published: November 2023

AI Article Synopsis

  • Neurons can be categorized based on their firing patterns, with some exhibiting regular firing that depends on stimulus strength, while others show all-or-nothing plateau potentials that maintain activity independent of the stimulus.
  • In a study of three identified neurons (B51, B64, and B8), B51 and B64 generated plateau potentials, while B8 fired regularly without producing plateau potentials, despite having similar types of electrical currents.
  • Key factors influencing the generation of plateau potentials include the interaction between incoming currents (like persistent Na) and outgoing currents (like delayed outward current), rather than the presence of any single type of ion channel; techniques for predicting neuronal properties were also developed.

Article Abstract

Many neurons exhibit regular firing that is limited to the duration and intensity of depolarizing stimuli. However, some neurons exhibit all-or-nothing plateau potentials that, once elicited, can lead to prolonged activity that is independent of stimulus intensity or duration. To better understand this diversity of information processing, we compared the voltage-gated and Ca-gated currents of three identified neurons from hermaphroditic Two of these neurons, B51 and B64, generated plateau potentials and a third neuron, B8, exhibited regular firing and was incapable of generating a plateau potential. With the exception of the Ca-gated potassium current ( ), all three neuron types expressed a similar array of outward and inward currents, but with distinct voltage-dependent properties for each neuron type. Inhibiting voltage-gated Ca channels with Ni prolonged the plateau potential, indicating is important for plateau potential termination. In contrast, inhibiting persistent Na ( ) blocked plateau potentials, empirically and in simulations. Surprisingly, the properties and level of expression of were similar in all three neurons, indicating that the presence of does not distinguish between regular-firing neurons and neurons capable of generating plateau potentials. Rather, the key distinguishing factor is the relationship between and outward currents such as the delayed outward current ( ), and We then demonstrated a technique for predicting complex physiological properties such as plateau duration, plateau amplitude, and action potential duration as a function of parameter values, by fitting a curve in parameter space and projecting the curve beyond the tested values. Plateau potentials are intrinsic properties of neurons that are important for information processing in a wide variety of nervous systems. We examined three identified neurons in with different propensities to generate a plateau potential. No single conductance was found to distinguish plateau generating neurons. Instead, plateau generation depended on the ratio between persistent Na current ( ), which favored plateaus, and outward currents such as , which facilitated plateau termination. Computational models revealed a relationship between the individual currents that predicted the features of simulated plateau potentials. These results provide a more solid understanding of the conductances that mediate plateau generation.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10634553PMC
http://dx.doi.org/10.1523/JNEUROSCI.0789-23.2023DOI Listing

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