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1.
J Biol Chem ; 298(1): 101466, 2022 01.
Artículo en Inglés | MEDLINE | ID: mdl-34864060

RESUMEN

Complex biological functions within organisms are frequently orchestrated by systemic communication between tissues. In the model organism Caenorhabditis elegans, the pharyngeal and body wall neuromuscular junctions are two discrete structures that control feeding and locomotion, respectively. Separate, the well-defined neuromuscular circuits control these distinct tissues. Nonetheless, the emergent behaviors, feeding and locomotion, are coordinated to guarantee the efficiency of food intake. Here, we show that pharmacological hyperactivation of cholinergic transmission at the body wall muscle reduces the rate of pumping behavior. This was evidenced by a systematic screening of the effect of the cholinesterase inhibitor aldicarb on the rate of pharyngeal pumping on food in mutant worms. The screening revealed that the key determinants of the inhibitory effect of aldicarb on pharyngeal pumping are located at the body wall neuromuscular junction. In fact, the selective stimulation of the body wall muscle receptors with the agonist levamisole inhibited pumping in a lev-1-dependent fashion. Interestingly, this response was independent of unc-38, an alpha subunit of the nicotinic receptor classically expressed with lev-1 at the body wall muscle. This implies an uncharacterized lev-1-containing receptor underpins this effect. Overall, our results reveal that body wall cholinergic transmission not only controls locomotion but simultaneously inhibits feeding behavior.


Asunto(s)
Proteínas de Caenorhabditis elegans , Inhibidores de la Colinesterasa , Conducta Alimentaria , Unión Neuromuscular , Aldicarb/farmacología , Animales , Caenorhabditis elegans , Proteínas de Caenorhabditis elegans/química , Proteínas de Caenorhabditis elegans/genética , Inhibidores de la Colinesterasa/farmacología , Conducta Alimentaria/efectos de los fármacos , Conducta Alimentaria/fisiología , Levamisol/farmacología , Unión Neuromuscular/efectos de los fármacos , Unión Neuromuscular/metabolismo , Transducción de Señal
2.
Neurogenetics ; 14(3-4): 233-42, 2013 Nov.
Artículo en Inglés | MEDLINE | ID: mdl-24100941

RESUMEN

Neuroligins are neuronal and neuromuscular transmembrane proteins that have been implicated in autism spectrum disorder and other cognitive diseases. The nlg-1 gene from Caenorhabditis elegans is orthologous to human neuroligin genes. In the nematode, the locomotory rate is mediated by dopaminergic and serotonergic pathways, which result in two different behavioral responses known as basal slowing response (BSR) and enhanced slowing response (ESR), respectively. We report that nlg-1-deficient mutants are defective in both the BSR and ESR behaviors. In addition, we demonstrate that methylphenidate (a dopamine reuptake inhibitor) and fluoxetine (a serotonin reuptake inhibitor), two drugs widely used for the treatment of behavioral disorders in humans, are able to restore the BSR and ESR wild type phenotypes, respectively, in nlg-1 defective mutant nematodes. The abnormal locomotory behavior patterns were rescued in nlg-1-deficient mutant by expressing a cDNA from the human NLGN1 gene under the C. elegans nlg-1 promoter. However, human NLGN1 (R453C) and NLGN1 (D432X) mutant alleles did not rescue any of the two mutant phenotypes. The results indicate that neuroligin is involved in modulating the action of dopamine and serotonin in the nematode and suggest that the functional mechanism underpinning both methylphenidate and fluoxetine in C. elegans might be comparable to that in humans. The neuroligin-deficient mutants may undergo inefficient synaptic transmissions which could affect different traits in the nervous system. In particular, neuroligin might be required for normal neurotransmitters release. The understanding of the mechanisms by which methylphenidate and fluoxetine are able to restore the behavior of these mutants could help to explain the etiology of some human neurological diseases.


Asunto(s)
Moléculas de Adhesión Celular Neuronal/fisiología , Dopamina/metabolismo , Locomoción/fisiología , Serotonina/metabolismo , Animales , Caenorhabditis elegans , Moléculas de Adhesión Celular Neuronal/genética , Inhibidores de Captación de Dopamina/farmacología , Fluoxetina/farmacología , Locomoción/efectos de los fármacos , Metilfenidato/farmacología , Vías Nerviosas/fisiología , Inhibidores Selectivos de la Recaptación de Serotonina/farmacología
3.
PLoS One ; 18(4): e0284786, 2023.
Artículo en Inglés | MEDLINE | ID: mdl-37083685

RESUMEN

Organophosphate intoxication via acetylcholinesterase inhibition executes neurotoxicity via hyper stimulation of acetylcholine receptors. Here, we use the organophosphate paraoxon-ethyl to treat C. elegans and use its impact on pharyngeal pumping as a bio-assay to model poisoning through these neurotoxins. This assay provides a tractable measure of acetylcholine receptor mediated contraction of body wall muscle. Investigation of the time dependence of organophosphate treatment and the genetic determinants of the drug-induced inhibition of pumping highlight mitigating modulation of the effects of paraoxon-ethyl. We identified mutants that reduce acetylcholine receptor function protect against the consequence of intoxication by organophosphates. Data suggests that reorganization of cholinergic signalling is associated with organophosphate poisoning. This reinforces the under investigated potential of using therapeutic approaches which target a modulation of nicotinic acetylcholine receptor function to treat the poisoning effects of this important class of neurotoxins.


Asunto(s)
Intoxicación por Organofosfatos , Receptores Nicotínicos , Animales , Intoxicación por Organofosfatos/tratamiento farmacológico , Paraoxon/uso terapéutico , Paraoxon/toxicidad , Inhibidores de la Colinesterasa/uso terapéutico , Caenorhabditis elegans/genética , Caenorhabditis elegans/metabolismo , Acetilcolinesterasa/metabolismo , Receptores Nicotínicos/genética , Neurotoxinas , Organofosfatos/toxicidad , Organofosfatos/uso terapéutico
4.
Neurotoxicology ; 82: 50-62, 2021 01.
Artículo en Inglés | MEDLINE | ID: mdl-33176172

RESUMEN

Inhibition of acetylcholinesterase by either organophosphates or carbamates causes anti-cholinesterase poisoning. This arises through a wide range of neurotoxic effects triggered by the overstimulation of the cholinergic receptors at synapses and neuromuscular junctions. Without intervention, this poisoning can lead to profound toxic effects, including death, and the incomplete efficacy of the current treatments, particularly for oxime-insensitive agents, provokes the need to find better antidotes. Here we show how the non-parasitic nematode Caenorhabditis elegans offers an excellent tool for investigating the acetylcholinesterase intoxication. The C. elegans neuromuscular junctions show a high degree of molecular and functional conservation with the cholinergic transmission that operates in the autonomic, central and neuromuscular synapses in mammals. In fact, the anti-cholinesterase intoxication of the worm's body wall neuromuscular junction has been unprecedented in understanding molecular determinants of cholinergic function in nematodes and other organisms. We extend the use of the model organism's feeding behaviour as a tool to investigate carbamate and organophosphate mode of action. We show that inhibition of the cholinergic-dependent rhythmic pumping of the pharyngeal muscle correlates with the inhibition of the acetylcholinesterase activity caused by aldicarb, paraoxons and DFP exposure. Further, this bio-assay allows one to address oxime dependent reversal of cholinesterase inhibition in the context of whole organism recovery. Interestingly, the recovery of the pharyngeal function after such anti-cholinesterase poisoning represents a sensitive and easily quantifiable phenotype that is indicative of the spontaneous recovery or irreversible modification of the worm acetylcholinesterase after inhibition. These observations highlight the pharynx of C. elegans as a new tractable approach to explore anti-cholinesterase intoxication and recovery with the potential to resolve critical genetic determinants of these neurotoxins' mode of action.


Asunto(s)
Antídotos/uso terapéutico , Bioensayo/métodos , Caenorhabditis elegans/efectos de los fármacos , Inhibidores de la Colinesterasa/envenenamiento , Faringe/efectos de los fármacos , Aldicarb/farmacología , Animales , Intoxicación por Organofosfatos/diagnóstico , Faringe/fisiología
5.
Invert Neurosci ; 18(2): 4, 2018 03 12.
Artículo en Inglés | MEDLINE | ID: mdl-29532181

RESUMEN

Synapses are specialized contact sites that mediate information flow between neurons and their targets. Important physical interactions across the synapse are mediated by synaptic adhesion molecules. These adhesions regulate formation of synapses during development and play a role during mature synaptic function. Importantly, genes regulating synaptogenesis and axon regeneration are conserved across the animal phyla. Genetic screens in the nematode Caenorhabditis elegans have identified a number of molecules required for synapse patterning and assembly. C. elegans is able to survive even with its neuronal function severely compromised. This is in comparison with Drosophila and mice where increased complexity makes them less tolerant to impaired function. Although this fact may reflect differences in the function of the homologous proteins in the synapses between these organisms, the most likely interpretation is that many of these components are equally important, but not absolutely essential, for synaptic transmission to support the relatively undemanding life style of laboratory maintained C. elegans. Here, we review research on the major group of synaptic proteins, involved in the presynaptic machinery in C. elegans, showing a strong conservation between higher organisms and highlight how C. elegans can be used as an informative tool for dissecting synaptic components, based on a simple nervous system organization.


Asunto(s)
Caenorhabditis elegans/citología , Neuronas/fisiología , Terminales Presinápticos/fisiología , Sinapsis/metabolismo , Animales , Proteínas de Caenorhabditis elegans/metabolismo , Transmisión Sináptica
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