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Exposito, S.

Publications and source records attributed to Exposito, S..

2 recordsLinked to original sources

Microglial SIRT2 deficiency aggravates cognitive decline and amyloid pathology in Alzheimer's disease

Sirtuin 2 (SIRT2), a NAD+-dependent deacetylase, has been implicated in aging and neurodegenerative diseases such as Alzheimers disease (AD). While global SIRT2 inhibition has shown promise in reducing amyloid-beta pathology and cognitive deficits in different mouse models of AD, peripheral SIRT2 inhibition has been associated with adverse effects, such as increased inflammation. This suggests that targeted inhibition of specific cellular populations within the brain may represent a more precise and effective approach for the treatment of AD. To explore this hypothesis, we generated a conditional microglial SIRT2 knockout mouse model in the context of AD. Our results reveal that microglial SIRT2 reduction does not confer protective effects in the APP/PS1 model; rather, it aggravates cognitive decline, accelerates amyloid plaque deposition, and increases levels of pro-inflammatory cytokines at early stages of AD pathology. Transcriptomic analysis further indicates that SIRT2-deficient microglia exhibit altered expression of genes associated with aging and synaptic dysfunction. This phenotype was accompanied by increased phagocytosis of synaptic elements and impaired long-term potentiation. These findings suggest that while SIRT2 inhibition in some contexts may be beneficial, targeted inhibition within microglia could accelerate AD progression, underscoring the need for cell-specific approaches when considering SIRT2 as a therapeutic target.

neuroscience↗

Astrocytes tune neuronal excitability through the calcium-activated potassium current sIAHP

Neurons have the unique ability to integrate synaptic information by modulating the function of the voltage-gated membrane ion channels, which govern their excitability. Astrocytes play active roles in synaptic function, from synapse formation and maturation to plasticity processes. However, it remains elusive whether astrocytes can impact the neuronal activity by regulating membrane ion conductances that control the intrinsic firing properties. Here, we found that astrocytes, by releasing adenosine, enhance the slow Ca2+-activated K+ current (sIAHP) in CA1 hippocampal pyramidal neurons. Remarkably, we showed that interneuron activity was involved in the astrocyte-mediated sIAHP modulation. Indeed, both synaptically activated and optogenetically stimulated hippocampal interneurons evoked coordinated signaling in astrocytes and pyramidal neurons, which relied on GABAB and adenosine A1 receptors activation. In addition, the selective genetic ablation of GABAB receptors in CA1 astrocytes prevented the spike frequency adaptation in pyramidal cells after interneuron activation. Therefore, our data reveal the astrocyte capability to modulate the intrinsic membrane properties that dictate neuronal firing rate and hippocampal networks activity.

neuroscience↗