» Articles » PMID: 8990119

In Vivo Dendritic Calcium Dynamics in Neocortical Pyramidal Neurons

Overview
Journal Nature
Specialty Science
Date 1997 Jan 9
PMID 8990119
Citations 267
Authors
Affiliations
Soon will be listed here.
Abstract

The dendrites of mammalian pyramidal neurons contain a rich collection of active conductances that can support Na+ and Ca2+ action potentials (for a review see ref. 1). The presence, site of initiation, and direction of propagation of Na+ and Ca2+ action potentials are, however, controversial, and seem to be sensitive to resting membrane potential, ionic composition, and degree of channel inactivation, and depend on the intensity and pattern of synaptic stimulation. This makes it difficult to extrapolate from in vitro experiments to the situation in the intact brain. Here we show that two-photon excitation laser scanning microscopy can penetrate the highly scattering tissue of the intact brain. We used this property to measure sensory stimulus-induced dendritic [Ca2+] dynamics of layer 2/3 pyramidal neurons of the rat primary vibrissa (Sm1) cortex in vivo. Simultaneous recordings of intracellular voltage and dendritic [Ca2+] dynamics during whisker stimulation or current injection showed increases in [Ca2+] only in coincidence with Na+ action potentials. The amplitude of these [Ca2+] transients at a given location was approximately proportional to the number of Na+ action potentials in a short burst. The amplitude for a given number of action potentials was greatest in the proximal apical dendrite and declined steeply with increasing distance from the soma, with little Ca2+ accumulation in the most distal branches, in layer 1. This suggests that widespread Ca2+ action potentials were not generated, and any significant [Ca2+] increase depends on somatically triggered Na+ action potentials.

Citing Articles

TWINKLE: An open-source two-photon microscope for teaching and research.

Schottdorf M, Rich P, Diamanti E, Lin A, Tafazoli S, Nieh E PLoS One. 2025; 20(2):e0318924.

PMID: 39946384 PMC: 11824991. DOI: 10.1371/journal.pone.0318924.


Window into the Brain: In Vivo Multiphoton Imaging.

Latifi S, DeVries A ACS Photonics. 2025; 12(1):1-15.

PMID: 39830859 PMC: 11741162. DOI: 10.1021/acsphotonics.4c00958.


In vivo dual-plane 3-photon microscopy: spanning the depth of the mouse neocortex.

Cloves M, Margrie T Biomed Opt Express. 2024; 15(12):7022-7034.

PMID: 39679389 PMC: 11640578. DOI: 10.1364/BOE.544383.


TWINKLE: An open-source two-photon microscope for teaching and research.

Schottdorf M, Rich P, Diamanti E, Lin A, Tafazoli S, Nieh E bioRxiv. 2024; .

PMID: 39386506 PMC: 11463478. DOI: 10.1101/2024.09.23.612766.


NeuroART: Real-Time Analysis and Targeting of Neuronal Population Activity during Calcium Imaging for Informed Closed-Loop Experiments.

Bowen Z, De Zoysa D, Shilling-Scrivo K, Aghayee S, Di Salvo G, Smirnov A eNeuro. 2024; 11(10).

PMID: 39266327 PMC: 11485737. DOI: 10.1523/ENEURO.0079-24.2024.