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Biology subjects

Gupta, R. A.

Publications and source records attributed to Gupta, R. A..

3 recordsLinked to original sources

GPR35 inhibits TRPA1-mediated colonic afferent hypersensitivity through suppression of Substance P release

The development of non-opioid analgesics for the treatment of chronic abdominal pain is a pressing area of unmet clinical need. To address this, we examined the expression of Gi/o-coupled receptors in colonic sensory neurons, which, like opioid receptors, have the potential to inhibit nociceptor activation due to their inhibitory G protein coupling. This led to the identification of the orphan receptor GPR35 as a visceral analgesic drug target due to its marked co-expression with TRPA1, a mediator of noxious mechanotransduction in the bowel. Consistent with in silico docking studies which identified binding sites for the mast cell stabiliser cromolyn and phosphodiesterase inhibitor zaprinast at GPR35, we demonstrated, using GPR35 knockout mice, that the antinociceptive effects of these drugs on TRPA1-mediated colonic nociceptor activation and mechanosensitisation were GPR35-dependent. Further work showed these antinociceptive effects occurred through the inhibition of substance P (SP) release. This confirmed both the pronociceptive effect of SP on colonic afferents, and the contribution of SP to TRPA1-mediated colonic nociceptor activation and sensitisation. We also found that TRPA1-induced contraction of the colon was mediated by SP signalling and could be inhibited by cromolyn in a GPR35-dependent manner. Our data identify GPR35, through its inhibition of SP-mediated colonic contractility and nociceptor activation and sensitisation, as a putative mechanism for the reported clinical efficacy of cromolyn in the treatment of irritable bowel syndrome. These findings highlight the potential utility of GPR35 agonists to deliver non-opioid analgesia for the treatment of abdominal pain associated with gastrointestinal diseases such as irritable bowel syndrome and inflammatory bowel disease.

physiology↗

Transcriptomic profiling reveals a pro-nociceptive role for Angiotensin II in inflammatory bowel disease

ObjectiveVisceral pain is a leading cause of morbidity in inflammatory bowel disease (IBD), contributing significantly to reduced quality of life. Currently available analgesics often lack efficacy or have intolerable side-effects, driving the need for a more complete understanding of the mechanisms causing pain. MethodsWhole transcriptome gene expression analysis was performed by bulk RNA sequencing of colonic biopsies from patients with ulcerative colitis (UC) and Crohns disease (CD) reporting abdominal pain and compared with non-inflamed control biopsies. Putative pro-nociceptive mediators were identified based on pathway analysis of differentially expressed genes in IBD tissue and single cell gene expression in colonic neurons. Pro-nociceptive activity of identified mediators was assessed in assays of sensory neuron and colonic afferent activity. ResultsRNA sequencing analysis highlighted a 7.6-fold increase in the expression of angiotensinogen transcripts, Agt, the precursor to angiotensin II (Ang II), in samples from UC patients (p = 3.2x10-8). Consistent with the marked expression of the angiotensin AT1 receptor in colonic neurons, Ang II elicited an increase in intracellular Ca2+ in capsaicin-sensitive, voltage gated sodium channel subtype NaV1.8-positive sensory neurons. Ang II also evoked action potential discharge in high-threshold colonic nociceptors. These effects were inhibited by the AT1 receptor antagonist valsartan. ConclusionFindings from our study identify AT1 receptor-mediated colonic nociceptor activation as a novel pathway of visceral nociception in IBD patients with UC. This work highlights the potential utility of angiotensin receptor blockers, such as valsartan, as treatments for pain in IBD.

neuroscience↗

KV7 but not dual SK/IK channel openers inhibit the activation of colonic afferents by noxious stimuli

In numerous subtypes of central and peripheral neurons, small and intermediate conductance Ca2+-activated K+ (SK and IK, respectively) channels are important regulators of neuronal excitability. Transcripts encoding SK channel subunits, as well as the closely related IK subunit, are co-expressed in the soma of colonic afferent neurons with receptors for the algogenic mediators adenosine triphosphate (ATP) and bradykinin, P2X3 and B2, highlighting the potential utility of these channels as drug targets for the treatment of abdominal pain in gastrointestinal diseases such as irritable bowel syndrome. Despite this, pre-treatment with the dual SK/IK channel opener SKA-31 had no effect on the colonic afferent response to ATP, bradykinin or noxious ramp distention of the colon. Inhibition of SK or IK channels with apamin or TRAM-34, respectively, yielded no change in spontaneous baseline afferent activity, indicating these channels are not tonically active. In contrast to its lack of effect in electrophysiological experiments, comparable concentrations of SKA-31 abolished ongoing peristaltic activity in the colon ex vivo. Treatment with the KV7 channel opener retigabine blunted the colonic afferent response to all applied stimuli. Our data therefore highlight the potential utility of KV7, but not SK/IK, channel openers as analgesic agents for the treatment of abdominal pain.

neuroscience↗