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Narushima, M.

Publications and source records attributed to Narushima, M..

3 recordsLinked to original sources

A preoptic circuit triggers rewarming from torpor

Torpor is an adaptive hypometabolic state that enables homeotherm to survive periods of energetic challenge. This strategy ranges from short bouts of daily torpor to prolonged hibernation. During torpor, animals markedly suppress metabolic rate, body temperature, heart rate, and respiration, while retaining the ability to rewarm. Torpor therefore comprises two critical transitions -entry into a hypometabolic state and active rewarming-both essential for organismal viability. Although neural mechanisms controlling torpor entry have begun to emerge, the circuits that initiate active rewarming and restore euthermia remain poorly defined. Here we identify corticotropin-releasing hormone (Crh)-expressing neurons in the anterodorsal preoptic area (ADP) as a key population for rewarming from fasting-induced torpor in mice. These neurons become active around natural rewarming and are selectively required to limit the depth and duration of torpor. Unlike pathways mediating acute cold defence, stress hyperthermia, or LPS-induced fever, this circuit is dedicated to promoting timely recovery to euthermia. Closed-loop optogenetic activation of ADPCrh neurons during torpor entry rapidly initiates rewarming, and thermographic recordings show that brown adipose tissue (BAT) thermogenesis precedes locomotor arousal. ADPCrh neurons are predominantly GABAergic and project monosynaptically to the lateral preoptic area, whose terminal activation is sufficient to increase body temperature and locomotor activity. Finally, we find robust activation of ADPCrh neurons during rewarming in a hibernator, suggesting conserved logic for exiting deep torpor. Together, our results define a discrete preoptic circuit that drives recovery from torpor and provide a framework for understanding and potentially controlling timely rewarming from profound hypothermia.

neuroscience↗

Astrocyte stimulation reopens the window of the critical period for the experience-dependent plasticity of retinogeniculate synapses

A specific time window during which neural circuits undergo dramatic changes in response to individual experiences is known as the critical period (CP). Developing methods to reopen the CP after its closure could lead to the establishment of effective treatment approaches. The retinogeniculate (RG) synapses in the dorsal lateral geniculate nucleus (dLGN) undergo experience-dependent remodeling only during the limited period of development. We investigated the effects of astrocyte manipulation on the restoration of RG synapse plasticity after the CP termination. Astrocytic stimulation with the designer receptors exclusively activated by designer drugs (DREADD) after the CP closure caused RG synapse remodeling in the dark-reared mice but not in those reared in normal conditions. Single-nucleus RNA sequencing (snRNA-seq) of dLGN astrocytes implicated the underlying mechanisms of astrocyte-induced RG synaptic plasticity. Therefore, astrocytes can regulate the susceptibility of RG synapses to experience-dependent plasticity after CP termination.

neuroscience↗

Embryological cellular origins and hypoxia-mediated mechanisms in PIK3CA-Driven refractory vascular malformations

Congenital vascular malformations, affecting 0.5% of the population, often occur in the head and neck, complicating treatment due to the critical functions in these regions. Our previous research identified distinct developmental origins for blood and lymphatic vessels in these areas, tracing them to the cardiopharyngeal mesoderm (CPM), which contributes to the development of the head, neck, and cardiovascular system in both mouse and human embryos. In this study, we investigated the pathogenesis of these malformations by expressing Pik3caH1047R in the CPM. Mice expressing Pik3caH1047R in the CPM developed vascular abnormalities restricted to the head and neck. Single-cell RNA sequencing revealed that Pik3caH1047R upregulates Vegf-a expression in endothelial cells through HIF-mediated hypoxia signaling. Human samples supported these findings, showing elevated HIF-1 and VEGF-A in malformed vessels. Notably, inhibition of HIF-1 and VEGF-A in the mouse model significantly reduced abnormal vasculature. These results highlight the role of embryonic origins and hypoxia-driven mechanisms in vascular malformations, providing a foundation for the development of therapies targeting these difficult-to-treat conditions.

molecular biology↗