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Dkhissi-Benyahya, O.

Publications and source records attributed to Dkhissi-Benyahya, O..

2 recordsLinked to original sources

Dopamine desynchronizes the retinal clock through a melanopsin-dependent regulation of acetylcholine retinal waves during development

Dopamine (DA) plays a critical role in retinal physiology, including resetting of the retinal circadian clock that in turn regulates DA release. DA acts on major classes of retinal cells by reconfiguring electrical and chemical synapses. Although a bidirectional regulation between intrinsically photosensitive melanopsin ganglion cells (ipRGCs) and dopaminergic cells has been demonstrated during development and adulthood, DA involvement in the ontogeny of the retinal clock is still unknown. Using wild-type Per2Luc and melanopsin knockout (Opn4-/-::Per2Luc) mice at different postnatal stages, we found that the retina can generate self-sustained circadian rhythms from postnatal day 5 that emerge in the absence of external time cues in both genotypes. Intriguingly, DA lengthens the endogenous period only in wild-type retinas, suggesting that this desynchronizing effect requires melanopsin. Furthermore, blockade of cholinergic retinal waves in wild-type retinas induces a shortening of the period, similarly to Opn4-/-::Per2Luc explants. Altogether, these data suggest that DA desynchronizes the retinal clock through a melanopsin-dependent regulation of acetylcholine retinal waves, thus offering a new role of melanopsin in setting the period of the retinal clock during development.

neuroscience

Astroglia in lateral habenula is essential for antidepressant efficacy of light

Successful antidepressant (AD) treatments are still difficult to achieve. Recently, bright light stimulation (BLS) was shown effective in non-seasonal depression but its mode of action remains elusive. We demonstrate here, using a new mouse model of depression resistant to ADs including ketamine, that chemogenetic activation of lateral habenula (LHb) astroglia prevented the potentiating effect of BLS on the AD response. Additionally, the beneficial action of BLS was associated with upregulation of a specific part of the prefrontal cortex opioid system. These results show that improved behavioral outcome produced by BLS requires habenular astroglia and endogenous opioids as crucial buffer systems.

neuroscience