4.8 Article

An extracellular scaffolding complex confers unusual rectification upon an ionotropic acetylcholine receptor in C. elegans

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NATL ACAD SCIENCES
DOI: 10.1073/pnas.2113545119

关键词

acetylcholine receptor; C. elegans; clustering; rectification

资金

  1. NIH Office of Research Infrastructure Programs [P40 OD010440]
  2. European Research Council (ERC_Adg C.NAPSE) [695295, ANR-11-LABX-0042, ANR-11-IDEX-0007]
  3. AFM Telethon (Alliance MyoNeurALP)
  4. Marie Sklodowska-Curie Individual Fellowship (H2020-MSCA-IF2017 LEVADAPT) [794400]
  5. University of Lyon
  6. Societe Francaise de Myologie
  7. AFM-Telethon
  8. Marie Curie Actions (MSCA) [794400] Funding Source: Marie Curie Actions (MSCA)
  9. European Research Council (ERC) [695295] Funding Source: European Research Council (ERC)

向作者/读者索取更多资源

The properties of Caenorhabditis elegans levamisole-sensitive acetylcholine receptors (L-AChRs) can be modified by their clustering machinery, which is important for the receptors' functionality in their native environment.
Biophysical properties of ligand-gated receptors can be profoundly modified by auxiliary subunits or by the lipid microenvironment of the membrane. Hence, it is sometimes challenging to relate the properties of receptors reconstituted in heterologous expression systems to those of their native counterparts. Here we show that the properties of Caenorhabditis elegans levamisole-sensitive acetylcholine receptors (L-AChRs), the ionotropic acetylcholine receptors targeted by the cholinergic anthelmintic levamisole at neuromuscular junctions, can be profoundly modified by their clustering machinery. We uncovered that L-AChRs exhibit a strong outward rectification in vivo, which was not previously described in heterologous systems. This unusual feature for an ionotropic AChR is abolished by disrupting the interaction of the receptors with the extracellular complex required for their synaptic clustering. When recorded at 260 mV, levamisole-induced currents are similar in the wild type and in L-AChR-clustering-defective mutants, while they are halved in these mutants at more depolarized physiological membrane potentials. Consequently, levamisole causes a strong muscle depolarization in the wild type, which leads to complete inactivation of the voltage-gated calcium channels and to an irreversible flaccid paralysis. In mutants defective for L-AChR clustering, the levamisole-induced depolarization is weaker, allowing voltage-gated calcium channels to remain partially active, which eventually leads to adaptation and survival of the worms. This explains why historical screens for C. elegans mutants resistant to levamisole identified the components of the L-AChR clustering machinery, in addition to proteins required for receptor biosynthesis or efficacy. This work further emphasizes the importance of pursuing ligand-gated channel characterization in their native environment.

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