Javascript must be enabled to continue!
The PACAP/PAC1 Receptor System and Feeding
View through CrossRef
Pituitary adenylyl cyclase activating polypeptide (PACAP) belongs to the vasoactive intestinal polypeptide (VIP)/secretin/glucagon superfamily. PACAP is present in two forms, PACAP-38 and PACAP-27, and binds to three guanine-regulatory (G) protein-coupled receptors (PAC1, VPAC1, and VPAC2). PACAP is expressed in the central and peripheral nervous systems with high PACAP levels found in the hypothalamus, a brain region involved in feeding and energy homeostasis. PAC1 receptors are high-affinity and PACAP-selective receptors, while VPAC1 and VPAC2 receptors show a comparable affinity to PACAP and VIP. PACAP and its receptors are expressed in the central and peripheral nervous systems, with moderate to high expression in the hypothalamus, amygdala, and other limbic structures. Consistent with their expression, PACAP is involved in several physiological responses and pathological states. A growing body of literature suggests that PACAP regulates food intake in laboratory animals. However, there is no comprehensive review of the literature on this topic. Thus, the purpose of this article is to review the literature regarding the role of PACAP and its receptors in food intake regulation and to synthesize how PACAP exerts its anorexic effects in different brain regions. To achieve this goal, we searched PubMed and reviewed 68 articles regarding the regulatory action of PACAP on food intake. Here, we present the literature regarding the effect of exogenous PACAP on feeding and the role of endogenous PACAP in this process. We also provide evidence regarding the effect of PACAP on the homeostatic and hedonic aspects of food intake, the neuroanatomical sites where PACAP exerts its regulatory action, which PACAP receptors may be involved, and the role of various signaling pathways and neurotransmitters in hypophagic effects of PACAP.
Title: The PACAP/PAC1 Receptor System and Feeding
Description:
Pituitary adenylyl cyclase activating polypeptide (PACAP) belongs to the vasoactive intestinal polypeptide (VIP)/secretin/glucagon superfamily.
PACAP is present in two forms, PACAP-38 and PACAP-27, and binds to three guanine-regulatory (G) protein-coupled receptors (PAC1, VPAC1, and VPAC2).
PACAP is expressed in the central and peripheral nervous systems with high PACAP levels found in the hypothalamus, a brain region involved in feeding and energy homeostasis.
PAC1 receptors are high-affinity and PACAP-selective receptors, while VPAC1 and VPAC2 receptors show a comparable affinity to PACAP and VIP.
PACAP and its receptors are expressed in the central and peripheral nervous systems, with moderate to high expression in the hypothalamus, amygdala, and other limbic structures.
Consistent with their expression, PACAP is involved in several physiological responses and pathological states.
A growing body of literature suggests that PACAP regulates food intake in laboratory animals.
However, there is no comprehensive review of the literature on this topic.
Thus, the purpose of this article is to review the literature regarding the role of PACAP and its receptors in food intake regulation and to synthesize how PACAP exerts its anorexic effects in different brain regions.
To achieve this goal, we searched PubMed and reviewed 68 articles regarding the regulatory action of PACAP on food intake.
Here, we present the literature regarding the effect of exogenous PACAP on feeding and the role of endogenous PACAP in this process.
We also provide evidence regarding the effect of PACAP on the homeostatic and hedonic aspects of food intake, the neuroanatomical sites where PACAP exerts its regulatory action, which PACAP receptors may be involved, and the role of various signaling pathways and neurotransmitters in hypophagic effects of PACAP.
Related Results
Design of peptide-based PAC1 antagonists combining molecular dynamics simulations and a biologically relevant cell-based assay
Design of peptide-based PAC1 antagonists combining molecular dynamics simulations and a biologically relevant cell-based assay
Abstract
The PACAP receptor PAC1 is a G
s
-coupled family B1 GPCR for which the highest-affinity endogenous p...
VIP and PACAP receptors in GtoPdb v.2023.1
VIP and PACAP receptors in GtoPdb v.2023.1
Vasoactive intestinal peptide (VIP) and pituitary adenylate cyclase-activating peptide (PACAP) receptors (nomenclature as agreed by the NC-IUPHAR Subcommittee on Vasoactive Intesti...
Lateral septal PACAP signaling regulates stress and anxiety reactions
Lateral septal PACAP signaling regulates stress and anxiety reactions
Abstract
Severe and/or repeated stress exposure can lead to a number of maladaptive physiological and behavioral changes that contribute to psychiatric illnesses....
Spinal astrocyte-neuron lactate shuttle contributes to the pituitary adenylate cyclase-activating polypeptide/PAC1 receptor-induced nociceptive behaviors in mice
Spinal astrocyte-neuron lactate shuttle contributes to the pituitary adenylate cyclase-activating polypeptide/PAC1 receptor-induced nociceptive behaviors in mice
Abstract
We have previously showed that spinal pituitary adenylate cyclase-activating polypeptide (PACAP)/PACAP type 1 (PAC1) receptor signaling triggered long-lasting noci...
Time-Dependent Effects of the Neuropeptide PACAP on Catecholamine Secretion
Time-Dependent Effects of the Neuropeptide PACAP on Catecholamine Secretion
Abstract
—Pituitary adenylyl cyclase-activating polypeptide (PACAP) is a potent endogenous secretagogue for chromaffin cells. We previously reported that PACAP coupled ...
PACAP‐regulated phenylethanolamineN‐methyltransferase gene expression
PACAP‐regulated phenylethanolamineN‐methyltransferase gene expression
J. Neurochem.(2010)115, 1195–1205.AbstractPituitary adenylate cyclase activating polypeptide (PACAP) induces the proximal −893 bp of rat phenylethanolamineN‐methyltransferase (PNMT...
Spinal astrocyte-neuron lactate shuttle contributes to the PACAP/PAC1 receptor-induced nociceptive behaviors
Spinal astrocyte-neuron lactate shuttle contributes to the PACAP/PAC1 receptor-induced nociceptive behaviors
Abstract
Previously, we showed that spinal pituitary adenylate cyclase-activating polypeptide (PACAP)/PAC1 receptor signaling triggers long-lasting pain behaviors t...
Feeding and Metabolism in Mice Lacking Pituitary Adenylate Cyclase-Activating Polypeptide
Feeding and Metabolism in Mice Lacking Pituitary Adenylate Cyclase-Activating Polypeptide
Disruption of the pituitary adenylate cyclase-activating polypeptide (PACAP) gene in mice has demonstrated a role for this highly conserved neuropeptide in the regulation of metabo...

