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Biology subjects

Zhang, X.-T.

Publications and source records attributed to Zhang, X.-T..

2 recordsLinked to original sources

α2A-AR-Kv dysfunction drives LC hyperactivity and early sleep disturbance in amyloidogenic mice

Disrupted sleep-wake patterns are common in neurodegenerative disorders such as Alzheimers disease (AD), can emerge early, and are proposed as potent risk factors for disease onset and progression. However, the underlying mechanisms remain poorly understood. Here, we report that 5xFAD transgenic mice exhibit hyperarousal and reduced brain-state transitions, particularly during the dark phase, as early as two months of age. The Locus Coeruleus (LC), a key regulator of arousal and brain-state transitions and a region highly vulnerable in AD, shows time-specific hyperactivity during this phase. This increased tonic LC activity is mediated by heightened neuronal excitability due to impaired Kv4 and Kv7 potassium channel conductance. Pharmacological activation of 2A adrenergic receptors restored Kv4 and Kv7 function and normalized LC activity. Furthermore, local administration of the 2A agonist guanfacine or the Kv7 positive allosteric modulator retigabine substantially rescued the sleep-wake disturbances in young 5xFAD mice. These findings identify dark-phase-selective LC hyperexcitability as a key driver of early-onset sleep disruption in AD mice and implicate 2A adrenergic receptors and Kv7 channels as promising targets for early intervention.

neuroscience↗

Mechanism and consequence of daily modulation of cortical parvalbumin-positive inhibitory neurons

Parvalbumin-positive (PV) neurons, the main class of inhibitory neurons in the neocortex, play critical roles in maintaining normal brain function and are implicated in a variety of brain disorders. Here we found that their function is modulated in a time- and sleep-dependent manner naturally during the day. We first show that PV-evoked inhibition is stronger by the end of the light (ZT12) compared to the end of dark (ZT0) cycle. In addition, both PVs excitatory and inhibitory synaptic transmission slowly oscillate but in the opposite directions during the light/dark cycle. Whereas excitatory synapses are predominantly regulated by experience, inhibitory synapses are regulated by sleep. Mechanistically, we found that the daily regulation of PVs inhibitory synapses is mediated by acetylcholine activating M1 receptors. Consistent with our ex vivo findings, we show in vivo that PVs spontaneous activity display clear oscillation, which is opposite to that of the pyramidal neurons. Finally, we demonstrate that the daily changes in PV neural activity negatively correlate with the dLGN-evoked responses in V1, underscoring the physiological significance of PVs daily regulation.

neuroscience↗