Conserved basal lamina proteins, laminin and nidogen, are repurposed to organize mechanosensory complexes responsible for touch sensation.
Das, A.; Franco, J. A.; Mulcahy, B.; Wang, L.; Chapman, D.; Jaisinghani, C.; Pruitt, B. L.; Zhen, M.; Goodman, M. B.
Show abstract
The sense of touch is conferred by the conjoint function of somatosensory neurons and skin cells. These cells meet across a gap filled by a basal lamina, an ancient structure found in metazoans. Using Caenorhabditis elegans, we show that membrane-matrix complexes containing laminin, nidogen, and the MEC-4 mechano-electrical transduction channel reside at this interface and are instrumental for proper touch sensation. These complexes fail to coalesce in touch-insensitive extracellular matrix mutants and in dissociated neurons. MEC-4, but not laminin or nidogen, is destabilized by point mutations in the C-terminal Kunitz domain of the extracellular matrix component, MEC-1. Thus, neuron-epithelial cell interfaces are instrumental in mechanosensory complex assembly and function. Loss of nidogen reduces the density of mechanoreceptor complexes and the amplitude of the touch-evoked currents they carry. These findings imply that somatosensory neurons secrete proteins that actively repurpose the basal lamina to generate special-purpose mechanosensory complexes responsible for vibrotactile sensing.
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