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Gendrel, M.

Publications and source records attributed to Gendrel, M..

3 recordsLinked to original sources

Constitutive sodium permeability in a C. elegans two-pore domain potassium channel

Two-pore domain potassium (K2P) channels play a central role in modulating cellular excitability and neuronal function. The unique structure of the selectivity filter in K2P and other potassium channels determines their ability to allow the selective passage of potassium ions across cell membranes. The nematode C. elegans has one of the largest K2P families, with 47 subunit-coding genes. This remarkable expansion has been accompanied by the evolution of atypical selectivity filter sequences that diverge from the canonical TxGYG motif. Whether and how this sequence variation may impact the function of K2P channels has not been investigated so far. Here we show that the UNC-58 K2P channel is constitutively permeable to sodium ions and that a cysteine residue in its selectivity filter is responsible for this atypical behavior. Indeed, by performing in vivo electrophysiological recordings and Ca2+ imaging experiments, we demonstrate that UNC-58 has a depolarizing effect in muscles and sensory neurons. Consistently, unc-58 gain-of-function mutants are hypercontracted, unlike the relaxed phenotype observed in hyperactive mutants of many neuromuscular K2P channels. Finally, by combining molecular dynamics simulations with functional studies in Xenopus laevis oocytes, we show that the atypical cysteine residue plays a key role in the unconventional sodium permeability of UNC-58. As predicting the consequences of selectivity filter sequence variations in silico remains a major challenge, our study illustrates how functional experiments are essential to determine the contribution of such unusual potassium channels to the electrical profile of excitable cells. SIGNIFICANCEPotassium channels play a central role in modulating cellular excitability, particularly of neuronal cells. Their unique structure determines their ability to let ions pass selectively through cell membranes. The impact of pathological or evolutionary variations in this selectivity filter remains difficult to predict. Here, we reveal that UNC-58, a member of the two-pore domain potassium channel family of C. elegans, exhibits an unusual sodium permeability due to a unique cysteine residue in its selectivity filter. Our findings underscore the importance of functional studies to determine how sequence variation in potassium channel selectivity filters can shape the electrical profiles of excitable cells.

physiology↗

Distinct dystrophin and Wnt/Ror-dependent pathways establish planar-polarized membrane compartments in C. elegans muscles

Cell polarity mechanisms allow the formation of specialized membrane domains with unique protein compositions, signalling properties, and functional characteristics. By analysing the localization of potassium channels and proteins belonging to the dystrophin-associated protein complex, we reveal the existence of distinct planar-polarized membrane compartments at the surface of C. elegans muscle cells. We find that muscle polarity is controlled by a non-canonical Wnt signalling cascade involving the ligand EGL-20/Wnt, the receptor CAM-1/Ror, and the intracellular effector DSH-1/Dishevelled. Interestingly, classical planar cell polarity proteins are not required for this process. Using time-resolved protein degradation, we demonstrate that -while it is essentially in place by the end of embryogenesis- muscle polarity is a dynamic state, requiring continued presence of DSH-1 throughout post-embryonic life. Our results reveal the unsuspected complexity of the C. elegans muscle membrane and establish a novel genetically tractable model system to study cellular polarity and membrane compartmentalization in vivo.

cell biology↗

A descending interneuron with depolarized resting membrane potential controls C. elegans motor states

Continuity of behaviors requires animals to make smooth transitions between successive and mutually exclusive behavioral states. Neural principles that govern these transitions are not well understood. C. elegans spontaneously switch between two opposite motor states, forward and backward movement, a phenomenon long thought to reflect the reciprocal inhibition between two interneurons that separately gate the forward and backward motor circuits, AVB and AVA. Combining experimental data and mathematical modeling, we report that spontaneous forward and backward locomotion and their corresponding motor circuits are not separately controlled. AVA and AVB are neither functionally equivalent nor strictly reciprocally inhibitory. Instead, while AVA phasically inhibits the forward promoting interneuron AVB at a fast timescale, it maintains a tonic, extrasynaptic excitation on AVB over the longer timescale. AVAs depolarized spontaneous membrane potential is necessary for this tonic excitation. We propose a new, master neuron model for locomotion. AVA, with tonic and phasic activity of opposite polarities on different time scales, acts as a master neuron to break the symmetry between the underlying forward and backward motor circuits. This offers a parsimonious solution for sustained locomotion consisted of mutually exclusive motor states. TeaserA tonically active C. elegans premotor interneuron functions as the master neuron that underlies continuous modulation of forward and backward movement to ensure smooth transitions between the two opposing motor states.

neuroscience↗