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Tsurutani, M.

Publications and source records attributed to Tsurutani, M..

5 recordsLinked to original sources

Stressor-Selective Sympathetic Preganglionic Modules for Organ-Biased Control

The sympathetic nervous system coordinates organ function during stress, yet the spinal organization that converts autonomic commands into selective peripheral outputs remains poorly understood. Here, we combined spatial transcriptomics, immediate early gene mapping, anatomical tracing, and functional perturbation to define the cellular logic of spinal sympathetic preganglionic neurons (SPNs) in mice. SPN transcriptomic subtypes were spatially organized by spinal segment and sex and recruited in distinct combinations by physiological stressors, revealing stressor-selective sympathetic output modules. Focusing on cold-responsive neurotensin-expressing (Nts+) SPNs in the lower thoracic spinal cord, we found that they formed a distinct output channel to the lower sympathetic trunk and aorticorenal ganglia, promoted female-biased mobilization of white adipose tissue lipids, and were required for cold tolerance when food was unavailable. These findings establish a cell-type-resolved spinal architecture that links physiological demand to organ-biased sympathetic output and identifies the preganglionic layer as a key organizer of brain-body control.

neuroscience↗

A single-nucleus and spatial transcriptomic atlas of the Syrian hamster preoptic area across hibernation states

Hibernation is an extreme physiological state in certain mammals that is characterized by a reversible reduction in metabolic and thermogenic demands. Although the preoptic area has been implicated in the regulation of hibernation, comprehensive molecular and spatial resources for this brain region in hibernating mammals remain limited. Here, we present an integrated transcriptomic resource of the preoptic area generated using single-nucleus RNA sequencing (snRNA-seq) and Xenium-based spatial transcriptomics in a mammalian hibernator, Syrian hamster. The resource includes cross-species transcriptomic annotations relative to mouse preoptic area datasets, seasonal snRNA-seq datasets obtained under non-hibernating and hibernating conditions, and spatially resolved cell-type annotations generated from Xenium profiling. Together, these datasets provide a reference framework for identifying neuronal populations, examining molecular conservation across species and conditions, and integrating transcriptomic identity with spatial organization.

neuroscience↗

Transcriptomic Landscape of Microglia in Mouse Models of Social Dysfunction and Oxytocin-Mediated Recovery

Atypical sociability is a hallmark of neurodevelopmental disorders arising from genetic susceptibility and prenatal environmental perturbations affecting diverse brain cell types. Using single-cell transcriptomics, we previously identified selective vulnerability of parvocellular oxytocin (OT) neurons in the paraventricular hypothalamus (PVH) following embryonic exposure to valproic acid (VPA), a teratogen that induces social deficits. Neonatal chemogenetic activation of OT neurons rescued these behavioral abnormalities and partially restored dysregulated gene expression. However, the effects of VPA exposure and OT neuron stimulation on non-neuronal PVH cells remained unclear. Here, we show that VPA induces transcriptional abnormalities in PVH microglia. Spatial transcriptomics revealed altered distributions of PVH microglial subtypes. Notably, neonatal OT neuron stimulation reversed a subset of VPA-induced microglial gene downregulation, while pharmacological manipulation of microglia normalized aberrant OT gene expression in putative parvocellular OT neurons. These findings support bidirectional OT neuron-microglia interactions that may underlie social dysfunction following embryonic VPA exposure. HighlightsO_LIEmbryonic VPA exposure induces potent transcriptional changes in PVH microglia C_LIO_LIPVH microglia comprise two spatially organized subtypes disrupted by VPA C_LIO_LINeonatal OT neuron stimulation restores gene expression in a microglial subtype C_LIO_LIMicroglial manipulation rescues OT ligand in parvocellular PVH neurons C_LI

neuroscience↗

Parallel Labeled-Line Organization of Sympathetic Outflow for Selective Organ Regulation in Mice

The sympathetic nervous system is vital in maintaining homeostasis and responding to environmental changes1-3. This regulation is coordinated by the spinal sympathetic preganglionic neurons (SPNs), which influence various organs both through neuronal pathways via postganglionic neurons and through endocrine processes by innervating the adrenal gland. Despite decades of research supporting the concept of selective control within this system1,4-9, the neural circuit organization responsible for the specificity of sympathetic outflow remains poorly understood. Notably, classical anatomical studies in rats have not revealed a definitive molecular code governing SPNs, nor have they confirmed the existence of SPNs strictly corresponding to specific output targets1,6,10,11. To reconcile this discrepancy, we aim to integrate recent transcriptome data of SPNs12,13 in mice with viral-genetic toolkits14 to map axonal projections and manipulate the functions of SPNs governing the gastrointestinal tract and adrenal gland. Here, we have identified two subtypes of SPNs in the lower thoracic spinal cord, defined at the molecular level, exhibiting non-overlapping patterns of innervation. Chemogenetic manipulations on these distinct SPN subtypes revealed selective impacts on the digestive functions in the gastrointestinal tracts or glucose metabolism mediated by the adrenal gland, respectively. This molecularly delineated parallel labeled-line organization in sympathetic outflows presents a potential avenue for selectively manipulating organ functions.

neuroscience↗

Selective Vulnerability of Parvocellular Oxytocin Neurons in Social Dysfunction

Selective vulnerability offers a conceptual framework for understanding neurodegenerative disorders, such as Parkinsons disease, where specific neuronal types are selectively affected while adjacent ones are spared. The applicability of this framework to neurodevelopmental disorders remains uncertain, particularly those characterized by atypical social behaviors such as autism spectrum disorder. Here, employing a single-cell transcriptome analysis in mice, we show that an embryonic disturbance known to induce social dysfunction preferentially impairs gene expressions crucial for neural functions in parvocellular oxytocin (OT) neurons--a subtype linked to social rewards--while neighboring cell types experience a lesser impact. Chemogenetic stimulation of OT neurons at the neonatal stage ameliorated social deficits in early adulthood, concurrent with a cell-type-specific sustained recovery of the pivotal gene expressions within parvocellular OT neurons. Collectively, our data shed light on the transcriptomic selective vulnerability within the hypothalamic social behavioral center and provide a potential therapeutic target through specific neonatal neurostimulation.

neuroscience↗