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Activation of ASIC3 in nociceptors induces itch without overt pain in a novel mouse model of acid-evoked itch.

OBJECTIVE: Acid-sensing ion channel 3 (ASIC3), a proton-gated cation channel predominantly expressed in primary afferent nociceptors, is an acidosis-related pain generator. Previous experiments suggested that ASIC3 is also involved in the generation of itch. However, mechanistic links between ASIC3 and itch, including the expression of ASIC3 in itch-mediating primary sensory neurons, remain unclear. We examined ASIC3 expression in these sensory neurons and then investigated whether mild acid stimulation could induce ASIC3-dependent itch without overt pain in mice. METHODS: Immunohistochemical analyses were performed using ASIC3-FLAG-enhanced green fluorescent protein-FLAG (FEF) expressing mice. Citric acid was applied with a brush to shaved skin of the nape of the neck or cheek in wild-type and ASIC3 knockout (ASIC3 -/- ) mice. Hindlimb scratching and, in the cheek model, forelimb facial wiping were recorded. RESULTS: ASIC3-expressing neurons and plexin C1-positive/tachykinin 1-negative itch-mediating neurons essentially belonged to distinct subpopulations in dorsal root and trigeminal ganglia. Application of 0.2 M citric acid to the nape induced hindlimb scratching directed toward the citric acid-applied area in wild-type mice, and this response was significantly attenuated in ASIC3 -/- mice. Application of 0.5 M citric acid to the cheek induced ASIC3-dependent itch behavior (hindlimb scratching), accompanied by minimal or no pain behavior (forelimb wiping). CONCLUSION: Given the absence of ASIC3 in typical itch-mediating primary sensory neurons, citric acid-induced ASIC3 activation in nociceptive skin afferents primarily involved in pain likely underlies the observed itch behavior. As 0.5 M citric acid likely represents a weak noxious stimulus, weak activation of these pain-mediating afferents can evoke itch, supporting the intensity theory of itch.

Animals

Modification of salivary duct electrolyte transport in rat and rabbit by physalaemin, VIP, GIP and other enterohormones.

The effects of various polypeptide enterohormones and the tachykinin secretogogue, physalaemin, on electrolyte transport by the main excretory duct of the mandibular gland of the rabbit were studied in vitro. Vasoactive intestinal peptide (VIP, 2 X 10(-11) mol 1(-1)) and gastric inhibitory polypeptide (GIP, 10(-11) mol 1(-1)) reduced nett Na+ movement from lumen to interstitium and VIP also reduced the transepithelial potential difference; the effective concentrations of the two hormones lay within the range of normal plasma concentrations. Gastrin (5 x 10(-7) mol 1(-1)) and synthetic secretin (2 x 10(-7) mol 1(-1)) had similar effects but only at concentrations well above the normal plasma levels. Caerulein, an analogue of the octapeptide of cholecystokinin, had no effect on duct function even at a concentration of 10(-6) mol 1(-1). The potent salivary secretogogue, physalaemin (4 x 10(-8) mol 1(-1)), which is an analogue of Substance P, a putative mammalian enterohormone and neurotransmitter substance, caused a marked increase in ductal Na transport (in rat as well as rabbit). It is concluded that VIP and GIP would normally play a role in determining salivary electrolyte composition and it is postulated that their action may be antagonized by a tachykinin such as Substance P.

Animals