[HTML][HTML] A role for Piezo2 in EPAC1-dependent mechanical allodynia

N Eijkelkamp, JE Linley, JM Torres, L Bee… - Nature …, 2013 - nature.com
N Eijkelkamp, JE Linley, JM Torres, L Bee, AH Dickenson, M Gringhuis, MS Minett, GS Hong…
Nature communications, 2013nature.com
Aberrant mechanosensation has an important role in different pain states. Here we show
that Epac1 (cyclic AMP sensor) potentiation of Piezo2-mediated mechanotransduction
contributes to mechanical allodynia. Dorsal root ganglia Epac1 mRNA levels increase
during neuropathic pain, and nerve damage-induced allodynia is reduced in Epac1−/− mice.
The Epac-selective cAMP analogue 8-pCPT sensitizes mechanically evoked currents in
sensory neurons. Human Piezo2 produces large mechanically gated currents that are …
Abstract
Aberrant mechanosensation has an important role in different pain states. Here we show that Epac1 (cyclic AMP sensor) potentiation of Piezo2-mediated mechanotransduction contributes to mechanical allodynia. Dorsal root ganglia Epac1 mRNA levels increase during neuropathic pain, and nerve damage-induced allodynia is reduced in Epac1−/− mice. The Epac-selective cAMP analogue 8-pCPT sensitizes mechanically evoked currents in sensory neurons. Human Piezo2 produces large mechanically gated currents that are enhanced by the activation of the cAMP-sensor Epac1 or cytosolic calcium but are unaffected by protein kinase C or protein kinase A and depend on the integrity of the cytoskeleton. In vivo, 8-pCPT induces long-lasting allodynia that is prevented by the knockdown of Epac1 and attenuated by mouse Piezo2 knockdown. Piezo2 knockdown also enhanced thresholds for light touch. Finally, 8-pCPT sensitizes responses to innocuous mechanical stimuli without changing the electrical excitability of sensory fibres. These data indicate that the Epac1–Piezo2 axis has a role in the development of mechanical allodynia during neuropathic pain.
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