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Gronbladh, A.

Publications and source records attributed to Gronbladh, A..

3 recordsLinked to original sources

A Symmetric Systemic Challenge Elicits a Right-Biased Response Mediated by Vasopressin Signaling

Bilaterian animals exhibit operational (functional) asymmetry--population-level, directional left-right differences in physiology and behavior, including responses to spatially symmetric environmental challenges. Whether such symmetry-to-asymmetry conversion can be driven at the systems level by neurohormonal regulators remains unclear. Here we tested whether a spatially symmetric neuroendocrine challenge--water deprivation (WD)--can elicit a directional left-right physiological response in rats using hindlimb postural asymmetry (HL-PA), a binary readout that quantifies left- versus right-sided hindlimb flexion. Twenty-four hours of WD induced robust HL-PA with right hindlimb flexion, revealed under anesthesia. The asymmetry persisted after complete thoracic spinal cord transection, suggesting that humoral signaling, rather than descending neural commands, may maintain the postural bias. Because dehydration recruits the hypothalamic-neurohypophysial arginine vasopressin (AVP) system, we next tested AVP receptor involvement. Both a V1B antagonist (SSR-149415) and a V1A/V2 antagonist (conivaptan) abolished WD-induced HL-PA, supporting an AVP-dependent mechanism that likely operates at least two anatomical sites. AVP signaling may involve pituitary V1B-dependent endocrine output and spinal V1A actions; consistent with the latter, expression of AVP V1A receptors is right-biased in lumbar spinal cord. Together, these findings identify WD as a symmetric systemic challenge capable of imposing a directional peripheral set-point, and implicate vasopressin signaling in symmetry breaking and left-right physiological regulation. Visual summary O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=133 SRC="FIGDIR/small/708998v1_ufig1.gif" ALT="Figure 1"> View larger version (36K): org.highwire.dtl.DTLVardef@10d6b3corg.highwire.dtl.DTLVardef@1fb4b5aorg.highwire.dtl.DTLVardef@11003c0org.highwire.dtl.DTLVardef@66671c_HPS_FORMAT_FIGEXP M_FIG C_FIG

neuroscience↗

Hypothalamic asymmetry in hemisphere-specific neuroendocrine signaling

Brain lesions classically cause contralateral sensorimotor and postural deficits, attributed to the decussation of descending neural pathways. However, recent findings reveal that, beyond neural mechanisms, contralateral effects can also be mediated by the neuroendocrine system via humoral pathways. This raises the possibility that the brain regulates left- and right-sided peripheral processes through hypothalamic neurohormones released into the bloodstream. For such spatially targeted endocrine signaling to occur, hemisphere-specific neural activity must be encoded into side-specific hormonal output--requiring a lateralized organization of hypothalamic neuroendocrine systems. Here, we report molecular asymmetries in the rat hypothalamus that support this mechanism. Transcriptomic analysis revealed asymmetric expression of eleven neurohormonal genes, including Gnrh1, Cck, and Trh, along with distinct left-right side-specific gene co-expression networks. Chemogenetic stimulation of Arg-vasopressin neurons in vasopressin-hM3Dq-mCherry transgenic rats produced generalized changes in these networks--predominantly in the right hypothalamus--suggesting that hypothalamic neurohormonal circuits function as integrated, lateralized ensembles. Stereological analysis revealed asymmetric coordination of vasopressin neurons within the paraventricular nucleus, with the left rostral region decoupled from the right rostral and caudal subregions. Functionally, gonadotropin-releasing hormone, cholecystokinin-8, and thyrotropin-releasing hormone--administered intracisternally in rats with complete spinal cord transection--elicited side-specific peripheral responses, measured as hindlimb postural asymmetry in a binary left-right output model. These neurohormonal effects were therefore transmitted via the humoral route. These findings suggest that multiple hypothalamic neurohormones and their integrated networks are asymmetrically organized, and that their lateralization may be necessary for hemisphere-specific hormonal regulation of peripheral systems.

neuroscience↗

GABA-induced Ca2+ signaling in the primary cilium of neurons

The complex signaling processing in neurons requires establishment of autonomous compartments. The compartment that is unique for neurons and crucial for neuron-neuron signaling is the synapse. Another compartment, that neurons share with all other cells in the body, is the primary cilium. The primary cilium is a solitary organelle, present in almost every neuronal cell type, that extends into the extracellular space for detection of signals. Several GPCRs have been identified as ciliary receptors, and here we show that the metabotropic GABA receptor subtype 1 localizes to primary cilia of neurons across different regions of the mouse brain and that activation of these receptors initiates Ca2+ signaling that is restricted to this organelle. The excitatory nature of GABAergic signaling in primary cilia is opposite to GABA action in other neuronal domains, indicating distinct modes of action of this universal inhibitory neurotransmitter even within the same neuron.

neuroscience↗