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GPCR-Mediated Nutrient Sensing in Enteroendocrine Cells

Specialized epithelial cells, enteroendocrine cells (EEC), form the basis of the largest endocrine system in the body. They secrete multiple regulatory molecules which control physiological and homeostatic functions, particularly postprandial secretion and motility. Chemosensation in the gut is considered to occur in EECs and tuft cells, more reminiscent of the relatively short-lived taste-responsive cells on the mammalian tongue....

GPCR-Mediated Nutrient Sensing in Enteroendocrine Cells

Pathway Summary

Specialized epithelial cells, enteroendocrine cells (EEC), form the basis of the largest endocrine system in the body. They secrete multiple regulatory molecules which control physiological and homeostatic functions, particularly postprandial secretion and motility. Chemosensation in the gut is considered to occur in EECs and tuft cells, more reminiscent of the relatively short-lived taste-responsive cells on the mammalian tongue.G-protein-coupled receptors (GPCRs) responsive to a range of nutrients and other food components have been identified, and many are localized to intestinal chemosensory cells, eliciting hormonal and neuronal signaling to the brain and periphery.Extracellular ligand-binding to GPCRs induces conformational changes that alter a receptor's interface with cytosolic effectors, primarily the membrane-bound heterotrimeric guanine nucleotide-binding G-proteins, alpha, beta, and gamma, which, once activated, dissociate and stimulate their respective effector pathways. The G-proteins are encoded by at least 16 different alpha subunit genes, 4 beta subunit genes, and 11 gamma subunit genes. They are primarily classified based upon their alpha subunits and the corresponding downstream signaling pathways they recruit and can be grouped into four families: G alpha s, G alpha i, G alpha q, and G alpha 12/13. G alpha s stimulates adenylate cylase (AC) and consequently elevates the concentration of cyclic adenosine monophosphate (cAMP) within a cell. G alpha i inhibits AC and decreases intracellular cAMP. G alpha q stimulates phospholipase C (PLC), leading to the generation of diacylglycerol (DAG) and inositol triphosphate (IP3), which respectively activate protein kinase (PK) C and trigger Ca2+ release from intracellular stores. The consequent elevation of cytoplasmic Ca2+ activates the Ca2+-sensitive transient receptor potential channel M5 (TRPM5) triggering membrane depolarization and activation of voltage-gated Ca2+ channels thereby triggering the influx of Ca2+ Members of the T1R family of taste receptors function as molecular complexes. For instance, the heterodimeric T1R2/T1R3 sweet taste receptor binds sweet stimuli, whereas T1R1/T1R3 recognizes amino acids. TRPM5, has been specifically linked to bitter and sweet signal transduction. TRPM5 has been identified as a voltage-modulated, Ca2+-activated, monovalent cation channel that activates and deactivates rapidly, thereby inducing transient membrane depolarization.There are four principal GPCRs identified to respond to free fatty acids, FFAR1-FFAR3 and GPR120 FFAR1 (GPR40) and GPR120 respond to medium-chain fatty acids to LCFA and are predominantly G alpha q coupled, whereas FFAR2 and FFAR3 are stimulated by SCFA, produced in the distal gut by fermentation of dietary fiber.Among the GPCRs, the strongest candidate amino acid sensor in EECs is currently CaSR. This receptor was originally identified as the Ca2+ sensor in the parathyroid gland, but is also found throughout the GI tract in a number of cell types where it has been linked to numerous physiological responses, including motility.Both GPCR-dependent and -independent pathways have been implicated in peptide and amino acid detection. Some amino acids, like glutamine, have been shown to depolarize EECs as a direct consequence of their electrogenic uptake via sodium-coupled transporters, resulting in voltage-gated Ca2+ entry and Ca2+- dependent stimulation of secretion and in turn the release of gastrointestinal (GI) peptides.

GPCR-Mediated Nutrient Sensing in Enteroendocrine Cells Genes list

Explore Genes related to GPCR-Mediated Nutrient Sensing in Enteroendocrine Cells
ADCY1
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Human
adenylate cyclase 1
ADCY10
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Human
adenylate cyclase 10
ADCY2
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Human
adenylate cyclase 2
ADCY3
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Human
adenylate cyclase 3
ADCY4
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Human
adenylate cyclase 4
ADCY5
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Human
adenylate cyclase 5
ADCY6
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Human
adenylate cyclase 6
ADCY7
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Human
adenylate cyclase 7
ADCY8
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Human
adenylate cyclase 8
ADCY9
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Human
adenylate cyclase 9
CACNA1A
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Human
calcium voltage-gated channel subunit alpha1 A
CACNA1B
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Human
calcium voltage-gated channel subunit alpha1 B
CACNA1C
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Human
calcium voltage-gated channel subunit alpha1 C
CACNA1D
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Human
calcium voltage-gated channel subunit alpha1 D
CACNA1E
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Human
calcium voltage-gated channel subunit alpha1 E
CACNA1F
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Human
calcium voltage-gated channel subunit alpha1 F
CACNA1G
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Human
calcium voltage-gated channel subunit alpha1 G
CACNA1H
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Human
calcium voltage-gated channel subunit alpha1 H
CACNA1I
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Human
calcium voltage-gated channel subunit alpha1 I
CACNA1S
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Human
calcium voltage-gated channel subunit alpha1 S
CACNA2D1
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Human
calcium voltage-gated channel auxiliary subunit alpha2delta 1
CACNA2D2
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Human
calcium voltage-gated channel auxiliary subunit alpha2delta 2
CACNA2D3
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Human
calcium voltage-gated channel auxiliary subunit alpha2delta 3
CACNA2D4
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Human
calcium voltage-gated channel auxiliary subunit alpha2delta 4
CACNB1
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Human
calcium voltage-gated channel auxiliary subunit beta 1
CACNB2
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Human
calcium voltage-gated channel auxiliary subunit beta 2
CACNB3
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Human
calcium voltage-gated channel auxiliary subunit beta 3
CACNB4
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Human
calcium voltage-gated channel auxiliary subunit beta 4
CACNG1
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Human
calcium voltage-gated channel auxiliary subunit gamma 1
CACNG2
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Human
calcium voltage-gated channel auxiliary subunit gamma 2
CACNG3
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Human
calcium voltage-gated channel auxiliary subunit gamma 3
CACNG4
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Human
calcium voltage-gated channel auxiliary subunit gamma 4
CACNG5
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Human
calcium voltage-gated channel auxiliary subunit gamma 5
CACNG6
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Human
calcium voltage-gated channel auxiliary subunit gamma 6
CACNG7
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Human
calcium voltage-gated channel auxiliary subunit gamma 7
CACNG8
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Human
calcium voltage-gated channel auxiliary subunit gamma 8
CAMP
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Human
cathelicidin antimicrobial peptide
CASR
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Human
calcium sensing receptor
CATSPER1
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Human
cation channel sperm associated 1
CATSPER2
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Human
cation channel sperm associated 2
CATSPER3
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Human
cation channel sperm associated 3
CATSPER4
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Human
cation channel sperm associated 4
CCK
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Human
cholecystokinin
FFAR1
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Human
free fatty acid receptor 1
FFAR2
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Human
free fatty acid receptor 2
FFAR3
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Human
free fatty acid receptor 3
FFAR4
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Human
free fatty acid receptor 4
GAST
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Human
gastrin
GIP
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Human
gastric inhibitory polypeptide
GNA11
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Human
G protein subunit alpha 11
GNA14
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Human
G protein subunit alpha 14
GNA15
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Human
G protein subunit alpha 15
GNAI1
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Human
G protein subunit alpha i1
GNAI2
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Human
G protein subunit alpha i2
GNAI3
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Human
G protein subunit alpha i3
GNAQ
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Human
G protein subunit alpha q
GNAS
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Human
GNAS complex locus
GNG10
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Human
G protein subunit gamma 10
GNG11
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Human
G protein subunit gamma 11
GNG12
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Human
G protein subunit gamma 12
GNG13
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Human
G protein subunit gamma 13
GNG2
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Human
G protein subunit gamma 2
GNG3
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Human
G protein subunit gamma 3
GNG4
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Human
G protein subunit gamma 4
GNG5
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Human
G protein subunit gamma 5
GNG7
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Human
G protein subunit gamma 7
GPBAR1
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Human
G protein-coupled bile acid receptor 1
GPR119
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Human
G protein-coupled receptor 119
GUCY1A1
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Human
guanylate cyclase 1 soluble subunit alpha 1
GUCY1B1
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Human
guanylate cyclase 1 soluble subunit beta 1
ITPR1
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Human
inositol 1,4,5-trisphosphate receptor type 1
ITPR2
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Human
inositol 1,4,5-trisphosphate receptor type 2
ITPR3
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Human
inositol 1,4,5-trisphosphate receptor type 3
LPAR5
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Human
lysophosphatidic acid receptor 5
NOTUM
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Human
notum, palmitoleoyl-protein carboxylesterase
OPN1SW
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Human
opsin 1, short wave sensitive
PDIA3
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Human
protein disulfide isomerase family A member 3
PLCB1
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Human
phospholipase C beta 1
PLCB2
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Human
phospholipase C beta 2
PLCB3
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Human
phospholipase C beta 3
PLCB4
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Human
phospholipase C beta 4
PLCD1
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Human
phospholipase C delta 1
PLCD3
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Human
phospholipase C delta 3
PLCD4
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Human
phospholipase C delta 4
PLCE1
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Human
phospholipase C epsilon 1
PLCG1
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Human
phospholipase C gamma 1
PLCG2
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Human
phospholipase C gamma 2
PLCH1
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Human
phospholipase C eta 1
PLCH2
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Human
phospholipase C eta 2
PLCL1
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Human
phospholipase C like 1 (inactive)
PLCL2
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Human
phospholipase C like 2
PLCZ1
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Human
phospholipase C zeta 1
PRKACA
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Human
protein kinase cAMP-activated catalytic subunit alpha
PRKACB
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Human
protein kinase cAMP-activated catalytic subunit beta
PRKACG
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Human
protein kinase cAMP-activated catalytic subunit gamma
PRKAG1
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Human
protein kinase AMP-activated non-catalytic subunit gamma 1
PRKAG2
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Human
protein kinase AMP-activated non-catalytic subunit gamma 2
PRKAR1A
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Human
protein kinase cAMP-dependent type I regulatory subunit alpha
PRKAR1B
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Human
protein kinase cAMP-dependent type I regulatory subunit beta
PRKAR2A
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Human
protein kinase cAMP-dependent type II regulatory subunit alpha
PRKAR2B
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Human
protein kinase cAMP-dependent type II regulatory subunit beta
PRKCA
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Human
protein kinase C alpha
PRKCB
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Human
protein kinase C beta
PRKCD
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Human
protein kinase C delta
PRKCE
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Human
protein kinase C epsilon
PRKCG
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Human
protein kinase C gamma
PRKCH
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Human
protein kinase C eta
PRKCI
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Human
protein kinase C iota
PRKCQ
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Human
protein kinase C theta
PRKCZ
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Human
protein kinase C zeta
PRKD1
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Human
protein kinase D1
PRKD3
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Human
protein kinase D3
PYY
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Human
peptide YY
RAPGEF4
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Human
Rap guanine nucleotide exchange factor 4
TAS1R1
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Human
taste 1 receptor member 1
TAS1R3
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Human
taste 1 receptor member 3
TRPM5
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Human
transient receptor potential cation channel subfamily M member 5

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