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G. Izquierdo, P.

Publications and source records attributed to G. Izquierdo, P..

3 recordsLinked to original sources

Confounds of using the unc-58 selection marker highlights the importance of genotyping co-CRISPR genes

Multiple advances have been made to increase the efficiency of CRISPR/Cas9 editing using the model genetic organism Caenorhabditis elegans (C. elegans). Here we report on the use of co-CRISPR marker genes: worms in which co-CRISPR events have occurred have overt, visible phenotypes which facilitates the selection of worms that harbour CRISPR events in the target gene. Mutation in the co-CRISPR gene is then removed by outcrossing to wild type but this can be challenging if the CRISPR and co-CRISPR gene are hard to segregate. However, outcrossing can be avoided by selecting worms of wild type appearance from a jackpot brood. These are broods in which a high proportion of the progeny of a single injected worm display the co-CRISPR phenotype suggesting high CRISPR efficiency. This can deliver worms that harbour the desired mutation in the target gene locus without the co-CRISPR mutation. We have successfully generated a discrete mutation in the C. elegans nlg-1 gene using this method. However, in the process of sequencing to authenticate editing in the nlg-1 gene we discovered genomic rearrangements that arise at the co-CRISPR gene unc-58 that by visual observation were phenotypically silent but nonetheless resulted in a significant reduction in motility scored by thrashing behaviour. This highlights that careful consideration of the hidden consequences of co-CRISPR mediated genetic changes should be taken before downstream analysis of gene function. Given this, we suggest sequencing of co-CRISPR genes following CRISPR procedures that utilise phenotypic selection as part of the pipeline.

genetics

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

C. elegans pharyngeal pumping provides a whole organism bio-assay to investigate anti-cholinesterase intoxication and antidotes

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.Competing Interest StatementThe authors have declared no competing interest.View Full Text

pharmacology and toxicology