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Tattersall, J. E. H.

Publications and source records attributed to Tattersall, J. E. H..

2 recordsLinked to original sources

Organophosphate intoxication in C. elegans reveals a new route to mitigate poisoning through the modulation of determinants responsible for nicotinic acetylcholine receptor function

Plasticity is a reactive mechanism that allows the adaptation of organisms to changing environmental cues. The exploitation of this physiological process has a clear benefit to promote the recovery from a wide range of neurological disorders. Here, we show that plasticity-promoting regimes provide candidate mechanisms to supplement the classically used antidotes for anti-cholinesterase poisoning. These neurotoxins inhibit acetylcholinesterase, causing the overstimulation of cholinergic transmission at synapses and neuromuscular junctions. The model organism C. elegans exhibits organophosphate-induced mitigating plasticity that impacts on the recovery of neuromuscular phenotypes, initially impaired by the drug. This is underpinned by overstimulation of nicotinic receptors at the neuromuscular junction. Intrinsic determinants of receptors location and sensitivity modulate the extent of plasticity in the context of persistent cholinergic stimulation. Our results indicate that pharmacological intervention of nicotinic receptors and/or scaffolding proteins that support receptor function might provide a novel treatment route for anti-cholinesterase poisoning.

neuroscience

Cholinergic signalling at the body wall neuromuscular junction couples to distal inhibition of feeding in C. elegans

Complex biological functions within organisms are frequently orchestrated by systemic communication between tissues. In the model organism C. elegans, the pharyngeal and body wall neuromuscular junctions are two discrete structures that control feeding and locomotion, respectively. These distinct tissues are controlled by separate, well-defined neural circuits. Nonetheless, the emergent behaviours, feeding and locomotion, are coordinated to guarantee the efficiency of food intake. We show that pharmacological hyperactivation of cholinergic transmission at the body wall muscle reduces the rate of pumping behaviour. This was evidenced by a systematic screening of the cholinesterase inhibitor aldicarbs effect on the rate of pharyngeal pumping on food in mutant worms. The screening revealed that the key determinant of the inhibitory effect of aldicarb on pharyngeal pumping is the L-type nicotinic acetylcholine receptor expressed in body wall muscle. This idea was reinforced by the observation that selective hyperstimulation of the body wall muscle L-type receptor by the agonist levamisole inhibited pumping. Overall, our results reveal that body wall cholinergic transmission controls locomotion and simultaneously couples a distal inhibition of feeding.

neuroscience