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Prolactin Receptor in Regulation of Neuronal Excitability and Channels

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Specialty Biochemistry
Date 2014 Apr 25
PMID 24758841
Citations 33
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Abstract

Prolactin (PRL) activates PRL receptor isoforms to exert regulation of specific neuronal circuitries, and to control numerous physiological and clinically-relevant functions including; maternal behavior, energy balance and food intake, stress and trauma responses, anxiety, neurogenesis, migraine and pain. PRL controls these critical functions by regulating receptor potential thresholds, neuronal excitability and/or neurotransmission efficiency. PRL also influences neuronal functions via activation of certain neurons, resulting in Ca(2+) influx and/or electrical firing with subsequent release of neurotransmitters. Although PRL was identified almost a century ago, very little specific information is known about how PRL regulates neuronal functions. Nevertheless, important initial steps have recently been made including the identification of PRL-induced transient signaling pathways in neurons and the modulation of neuronal transient receptor potential (TRP) and Ca(2+) -dependent K(+) channels by PRL. In this review, we summarize current knowledge and recent progress in understanding the regulation of neuronal excitability and channels by PRL.

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References
1.
Crest M, Gola M . Large conductance Ca(2+)-activated K+ channels are involved in both spike shaping and firing regulation in Helix neurones. J Physiol. 1993; 465:265-87. PMC: 1175429. DOI: 10.1113/jphysiol.1993.sp019676. View

2.
Mann P, Bridges R . Prolactin receptor gene expression in the forebrain of pregnant and lactating rats. Brain Res Mol Brain Res. 2002; 105(1-2):136-45. DOI: 10.1016/s0169-328x(02)00401-1. View

3.
Montell C . The TRP superfamily of cation channels. Sci STKE. 2005; 2005(272):re3. DOI: 10.1126/stke.2722005re3. View

4.
Eljarmak D, Lis M, Cantin M, Carriere P, Collu R . Effects of chronic bromocriptine treatment of an estrone-induced, prolactin-secreting rat pituitary adenoma. Horm Res. 1985; 21(3):160-7. DOI: 10.1159/000180041. View

5.
Pathipati P, Gorba T, Scheepens A, Goffin V, Sun Y, Fraser M . Growth hormone and prolactin regulate human neural stem cell regenerative activity. Neuroscience. 2011; 190:409-27. DOI: 10.1016/j.neuroscience.2011.05.029. View