bioRxiv · 10.1101/2020.10.02.324111
Fast recovery of disrupted tip links induced by mechanical displacement of hair bundles
Abstract
Hearing and balance rely on the capacity of mechanically sensitive hair bundles to transduce vibrations into electrical signals that are forwarded to the brain. Hair bundles possess tip links that interconnect the mechanosensitive stereocilia and convey force to the transduction channels. A dimer of dimers, each of these links comprises two molecules of protocadherin 15 (PCDH15) joined to two of cadherin 23 (CDH23). The "handshake" that conjoins the four molecules can be disrupted in vivo by intense stimulation and in vitro by exposure to Ca2+ chelators. Using hair bundles from the rats cochlea and the bullfrogs sacculus, we observed that extensive recovery of mechanoelectrical transduction, hair-bundle stiffness, and spontaneous bundle oscillation can occur within seconds after Ca2+ chelation, especially if hair bundles are deflected towards their short edges. Investigating the phenomenon in a two-compartment ionic environment that mimics natural conditions, we combined iontophoretic application of a Ca2+ chelator to selectively disrupt the tip links of individual frog hair bundles with displacement clamping to control hair-bundle motion and measure forces. Our observations suggest that, after the normal Ca2+ concentration has been restored, mechanical stimulation facilitates the reconstitution of functional tip links. Significance StatementEach of the sensory receptors responsible for hearing or balance--a hair cell--has a mechanosensitive hair bundle. Mechanical stimuli pull upon molecular filaments--the tip links--that open ionic channels in the hair bundle. Loud sounds can damage hearing by breaking the tip links; recovery by replacement of the constituent proteins then requires several hours. We disrupted the tip links in vitro by removing the calcium ions that stabilize them, then monitored the electrical response or stiffness of hair bundles to determine whether the links could recover. We found that tip links recovered within seconds if their ends were brought back into contact. This form of repair might occur in normal ears to restore sensitivity after damage.
Source connections
Explore related subjects
Keep this discovery
Explore connections, maps & timelines
Alonso, R. G., Tobin, M., Martin, P., Hudspeth, A. J.. 2020-10-04. Fast recovery of disrupted tip links induced by mechanical displacement of hair bundles. https://doi.org/10.1101/2020.10.02.324111
Cite the original work for its findings. Save a collection to share your selection of sources.