Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Neuropeptidergic regulation of locomotion inhibition in C. elegans

View through CrossRef
Locomotion, the way animals independently move through space by active muscle contractions, is one of the most apparent animal behaviors. However, in many situations it is more beneficial for animals to actively prevent locomotion, for instance to briefly stop before reorienting with the aim of avoiding predators, or to save energy and recuperate from stress during sleep. The molecular and cellular mechanisms underlying such locomotion inhibition still remain elusive. So, the aim of this study was to utilize the practical genetic model organism Caenorhabditis elegans to efficiently tackle relevant questions on how animals are capable of suppressing locomotion. Nerve cells, mostly called neurons, are known to control locomotion patterns by activating some and inhibiting other muscle groups in a spatiotemporal manner via local secretion of molecules known as neurotransmitters. This study particularly focuses on whether neuropeptides modulate such neurotransmission to prevent locomotion. Neuropeptides are small protein-like molecules that are secreted by specific neurons and that act in the brain by activating G protein-coupled receptors (GPCRs) expressed in other target neurons. They can act as hormones, neuromodulators or neurotransmitters. DNA sequences coding for neuropeptides and their cognate receptors are similar across diverse species and thus indicate evolutionary conservation of their molecular signaling pathways. This could potentially also imply that regulatory functions of specific neuropeptides are also similar across species and are thus meaningful to unravel more general mechanisms for instance underlying locomotion inhibition. Specifically, we find that the modulatory interneuron RIS constitutes a dedicated stop neuron of which the activity is sufficient to initiate rapid locomotion arrest in C. elegans while maintaining its body posture. Similar to its known function in larval sleep, RIS requires RFamide neuropeptides encoded by the flp 11 gene for this activity, in addition to GABA. Furthermore, we find that spontaneous calcium activity transients in RIS are compartmentalized and correlated with locomotion stop. These findings illustrate that a single neuron can regulate both stopping and sleeping phenotypes. Secondly, we show that C. elegans RPamide neuropeptides encoded by nlp-22 and nlp-2 regulate sleep and wakefulness, respectively. We unexpectedly find that these peptides activate gonadotropin-releasing hormone (GnRH)-like receptors dose dependently and we highlight their sequence resemblance to other bilaterian GnRH-like neuropeptides. In addition, we show that these receptors are expressed in distinct subsets of neurons that are associated with motor behavior. Finally, we show that nlp 22 encoded peptides signal through GNNR 6 receptors to regulate larval sleep and that nlp 2 encoded peptides require both GNRR 3 and GNRR 6 receptors to promote wakefulness. In sum, we find that locomotion inhibition in C. elegans is regulated by multiple, but evolutionary conserved RFamide and GnRH-like RPamide neuropeptidergic signaling pathways.
University Library J. C. Senckenberg
Title: Neuropeptidergic regulation of locomotion inhibition in C. elegans
Description:
Locomotion, the way animals independently move through space by active muscle contractions, is one of the most apparent animal behaviors.
However, in many situations it is more beneficial for animals to actively prevent locomotion, for instance to briefly stop before reorienting with the aim of avoiding predators, or to save energy and recuperate from stress during sleep.
The molecular and cellular mechanisms underlying such locomotion inhibition still remain elusive.
So, the aim of this study was to utilize the practical genetic model organism Caenorhabditis elegans to efficiently tackle relevant questions on how animals are capable of suppressing locomotion.
Nerve cells, mostly called neurons, are known to control locomotion patterns by activating some and inhibiting other muscle groups in a spatiotemporal manner via local secretion of molecules known as neurotransmitters.
This study particularly focuses on whether neuropeptides modulate such neurotransmission to prevent locomotion.
Neuropeptides are small protein-like molecules that are secreted by specific neurons and that act in the brain by activating G protein-coupled receptors (GPCRs) expressed in other target neurons.
They can act as hormones, neuromodulators or neurotransmitters.
DNA sequences coding for neuropeptides and their cognate receptors are similar across diverse species and thus indicate evolutionary conservation of their molecular signaling pathways.
This could potentially also imply that regulatory functions of specific neuropeptides are also similar across species and are thus meaningful to unravel more general mechanisms for instance underlying locomotion inhibition.
Specifically, we find that the modulatory interneuron RIS constitutes a dedicated stop neuron of which the activity is sufficient to initiate rapid locomotion arrest in C.
elegans while maintaining its body posture.
Similar to its known function in larval sleep, RIS requires RFamide neuropeptides encoded by the flp 11 gene for this activity, in addition to GABA.
Furthermore, we find that spontaneous calcium activity transients in RIS are compartmentalized and correlated with locomotion stop.
These findings illustrate that a single neuron can regulate both stopping and sleeping phenotypes.
Secondly, we show that C.
elegans RPamide neuropeptides encoded by nlp-22 and nlp-2 regulate sleep and wakefulness, respectively.
We unexpectedly find that these peptides activate gonadotropin-releasing hormone (GnRH)-like receptors dose dependently and we highlight their sequence resemblance to other bilaterian GnRH-like neuropeptides.
In addition, we show that these receptors are expressed in distinct subsets of neurons that are associated with motor behavior.
Finally, we show that nlp 22 encoded peptides signal through GNNR 6 receptors to regulate larval sleep and that nlp 2 encoded peptides require both GNRR 3 and GNRR 6 receptors to promote wakefulness.
In sum, we find that locomotion inhibition in C.
elegans is regulated by multiple, but evolutionary conserved RFamide and GnRH-like RPamide neuropeptidergic signaling pathways.

Related Results

Auditory cortex ensembles jointly encode sound and locomotion speed to support sound perception during movement
Auditory cortex ensembles jointly encode sound and locomotion speed to support sound perception during movement
The ability to process and act upon incoming sounds during locomotion is critical for survival and adaptive behavior. Despite the established role that the auditory cortex (AC) pla...
Locomotion analysis identifies roles of mechanosensory neurons in governing locomotion dynamics of C. elegans
Locomotion analysis identifies roles of mechanosensory neurons in governing locomotion dynamics of C. elegans
Summary The simple and well-characterized nervous system of C. elegans facilitates analysis of mechanisms controlling behavior. Locomotion is a major behavioral outp...
Integration of sound and locomotion information by auditory cortical neuronal ensembles
Integration of sound and locomotion information by auditory cortical neuronal ensembles
Abstract The ability to process and act upon incoming sounds during locomotion is critical for survival. Intriguingly, sound responses of auditory cortical neurons ...
Evaluation of Known Human PDE Inhibitors Against Nematode PDE4s
Evaluation of Known Human PDE Inhibitors Against Nematode PDE4s
Abstract Parasitic nematodes are responsible for more than one and a half billion infections world-wide. The drugs developed against these infect...
The evolution of femoral specializations in dinosaurs and their cousins in relation to their locomotor habit and body mass
The evolution of femoral specializations in dinosaurs and their cousins in relation to their locomotor habit and body mass
L'évolution des spécialisations du fémur des dinosaures et de leurs cousins en fonction de leur mode de locomotion et masse corporelle. Les archosaures actuels, rep...
Neuronal IL-17 controls C. elegans developmental diapause through CEP-1/p53
Neuronal IL-17 controls C. elegans developmental diapause through CEP-1/p53
Abstract During metazoan development, how cell division and metabolic programs are coordinated with nutrient availability remains unclear. Here, ...

Back to Top