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Peirson, S.

Publications and source records attributed to Peirson, S..

2 recordsLinked to original sources

Cryptochrome Stabilization Ameliorates Chronic Pain

Physiological and pathological pain exhibits striking diurnal variation, but the underlying mechanisms are largely unknown. We now describe an independent molecular clock in peripheral sensory neurons and satellite glial cells of sensory ganglia. We show that it is the sensory neuron transcription-translation feedback loops (TTFLs) that are responsible for diurnal pain behaviors. This clock regulates diurnal neurophysiological responses to a range of ligands, as well as synaptic activities of primary nociceptors. Furthermore, we find that loss of Cry1 and Cry2, the repressive arm of the core TTFLs, intensifies pain responses associated with increased voltage-gated sodium channel currents. Conversely, stabilization of CRY1 and CRY2 using the small molecule KL001, reduces pain sensitivity. Our results highlight novel opportunities to address chronic pain by directly harnessing circadian mechanisms. One-Sentence SummaryA peripheral pain clock governs daily pain fluctuations, which can be harnessed for treating pain disorders.

neuroscience↗

Light-regulated SIK1 remodels the synaptic phosphoproteome to induce sleep

The sleep and circadian systems act in concert to regulate sleep-wake timing, yet the molecular mechanisms that underpin their interaction to induce sleep remain unknown. Synaptic protein phosphorylation, driven by the kinase SIK3, correlates with sleep pressure, however it is unclear whether these phosphoproteome changes are causally responsible for inducing sleep. Here we show that the light-dependent activity of SIK1 controls the phosphorylation of a subset of the brain phosphoproteome to induce sleep in a manner that is independent of sleep pressure. By uncoupling phosphorylation and sleep induction from sleep pressure, we establish that synaptic protein phosphorylation provides a causal mechanism for the induction of sleep under different environmental contexts. Furthermore, we propose a framework that details how the salt-inducible kinases regulate the synaptic phosphoproteome to integrate exogenous and endogenous stimuli, thereby providing the molecular basis upon which the sleep and circadian systems interact to control the sleep-wake cycle.

neuroscience↗