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Physiological features of parvalbumin-expressing GABAergic interneurons contributing to high-frequency oscillations in the cerebral cortex.
Milicevic, Katarina D; Barbeau, Brianna L; Lovic, Darko D; Patel, Aayushi A; Ivanova, Violetta O; Antic, Srdjan D.
Afiliação
  • Milicevic KD; University of Connecticut Health, School of Medicine, Institute for Systems Genomics, Farmington, CT, 06030, USA.
  • Barbeau BL; University of Belgrade, Faculty of Biology, Center for Laser Microscopy, Belgrade, 11000, Serbia.
  • Lovic DD; University of Connecticut Health, School of Medicine, Institute for Systems Genomics, Farmington, CT, 06030, USA.
  • Patel AA; University of Connecticut Health, School of Medicine, Institute for Systems Genomics, Farmington, CT, 06030, USA.
  • Ivanova VO; University of Belgrade, Faculty of Biology, Center for Laser Microscopy, Belgrade, 11000, Serbia.
  • Antic SD; University of Connecticut Health, School of Medicine, Institute for Systems Genomics, Farmington, CT, 06030, USA.
Curr Res Neurobiol ; 6: 100121, 2024.
Article em En | MEDLINE | ID: mdl-38616956
ABSTRACT
Parvalbumin-expressing (PV+) inhibitory interneurons drive gamma oscillations (30-80 Hz), which underlie higher cognitive functions. In this review, we discuss two groups/aspects of fundamental properties of PV+ interneurons. In the first group (dubbed Before Axon), we list properties representing optimal synaptic integration in PV+ interneurons designed to support fast oscillations. For example [i] Information can neither enter nor leave the neocortex without the engagement of fast PV+ -mediated inhibition; [ii] Voltage responses in PV+ interneuron dendrites integrate linearly to reduce impact of the fluctuations in the afferent drive; and [iii] Reversed somatodendritic Rm gradient accelerates the time courses of synaptic potentials arriving at the soma. In the second group (dubbed After Axon), we list morphological and biophysical properties responsible for (a) short synaptic delays, and (b) efficient postsynaptic outcomes. For example [i] Fast-spiking ability that allows PV+ interneurons to outpace other cortical neurons (pyramidal neurons). [ii] Myelinated axon (which is only found in the PV+ subclass of interneurons) to secure fast-spiking at the initial axon segment; and [iii] Inhibitory autapses - autoinhibition, which assures brief biphasic voltage transients and supports postinhibitory rebounds. Recent advent of scientific tools, such as viral strategies to target PV cells and the ability to monitor PV cells via in vivo imaging during behavior, will aid in defining the role of PV cells in the CNS. Given the link between PV+ interneurons and cognition, in the future, it would be useful to carry out physiological recordings in the PV+ cell type selectively and characterize if and how psychiatric and neurological diseases affect initiation and propagation of electrical signals in this cortical sub-circuit. Voltage imaging may allow fast recordings of electrical signals from many PV+ interneurons simultaneously.
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Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2024 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2024 Tipo de documento: Article