Repository logo
  • English
  • Deutsch
  • Español
  • Français
  • Log In
    New user? Click here to register.Have you forgotten your password?

  • English
  • Deutsch
  • Español
  • Français
  • Log In
    New user? Click here to register.Have you forgotten your password?
Repository logo
  • Communities & Collections
  • Research Outputs
  • Fundings & Projects
  • Researchers
  • Statistics
  1. Home
  2. Current Research Information System UV
  3. Publicaciones
  4. Gap Junctions Coordinate The Propagation Of Glycogenolysis Induced By Norepinephrine In The Pineal Gland
 
  • Details
Options

Gap Junctions Coordinate The Propagation Of Glycogenolysis Induced By Norepinephrine In The Pineal Gland

Journal
Journal of Neurochemistry
Date Issued
2019-08-05
Author(s)
Eliseo A. Eugenin
Silvana Valdebenito
Anna Maria Gorska
Marcela Bitran
Martínez, Agustín  
Facultad de Ciencias  
Saez, Juan  
Facultad de Ciencias  
DOI
10.1111/jnc.14846
WoS ID
WOS:000503169900002
Abstract
Abstract Chemical and electrical synapses are the two major communication systems that permit cell‐to‐cell communication within the nervous system. Although most studies are focused on chemical synapses (glutamate, γ‐aminobutyric acid, and other neurotransmitters), clearly both types of synapses interact and cooperate to allow the coordination of several cell functions within the nervous system. The pineal gland has limited independent axonal innervation and not every cell has access to nerve terminals. Thus, additional communication systems, such as gap junctions, have been postulated to coordinate metabolism and signaling. Using acutely isolated glands and dissociated cells, we found that gap junctions spread glycogenolytic signals from cells containing adrenoreceptors to the entire gland lacking these receptors. Our data using glycogen and lactate quantification, electrical stimulation, and high‐performance liquid chromatography with electrochemical detection, demonstrate that gap junctional communication between cells of the rat pineal gland allows cell‐to‐cell propagation of norepinephrine‐induced signal that promotes glycogenolysis throughout the entire gland. Thus, the interplay of both synapses is essential for coordinating glycogen metabolism and lactate production in the pineal gland. image
Subjects

Biochemistry And Mole...

Biochemistry

Cellular And Molecula...

Neurosciences

OCDE Subjects

Medical And Health Sc...

Quartile (Date Issued)
Q2
License
acceso abierto

  • Cookie settings
  • Privacy policy
  • End User Agreement
  • Send Feedback

Hosting & Support by

Built with DSpace-CRIS software - Extension maintained and optimized by 4Science