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Paulusch, S.

Publications and source records attributed to Paulusch, S..

2 recordsLinked to original sources

Deep FLASH-seq profiling of purified canine sensory neurons uncovers species-specific signatures relevant to pain and itch

Naturally occurring pain and itch disorders in the domestic dog represent an important and underexploited opportunity for translational sensory neuroscience. These conditions largely mirror human disease, highlighting the need for detailed comparative understanding of canine somatosensory neurobiology. Here, we present a single-cell transcriptomic characterisation of the canine dorsal root ganglion (DRG), providing molecular insights into sensory neuron diversity in a species of direct veterinary and biomedical relevance. We develop a novel mechanical dissociation and fluorescence-activated cell sorting strategy enabling purification of intact whole neurons from adult canine DRG, followed by deep, full-length RNA sequencing using FLASH-seq. This approach yields high-quality transcriptional profiles with molecular depth analogous to deep neuronal profiling in human DRG, enabling resolution of neuronal identities and subtype-specific gene programs. Using these data, we identify canine sensory neuron clusters conforming to conserved principles of DRG molecular organization observed across species, including peptidergic and non-peptidergic nociceptors, low-threshold mechanoreceptors, proprioceptors, and thermosensory populations. Cross-species comparisons with human and mouse DRG datasets reveal broad conservation of pain- and itch-relevant pathways and therapeutic targets, alongside biologically meaningful divergence. We further identify species-specific differences in subtype-restricted expression of the pharmacologically relevant receptors IL31RA and SSTR2, which we validate using in situ hybridization and contextualize with human spatial transcriptomic data. Finally, we provide evidence that domestication-associated genes are non-randomly enriched in specific sensory neuron populations, suggesting that evolutionary history may have shaped somatosensory function. These data represent a resource for comparative sensory neuroscience and inform translational interpretation of pain and itch therapeutics across species.

neuroscience↗

Dysregulation of gene expression during gastrulation results in impaired primitive erythropoiesis and vascular development in Trim71-KO embryos

The transition of an embryo from gastrulation to organogenesis requires precisely coordinated changes in gene expression. The RNA-binding protein Trim71 is essential for embryonic survival, but its exact role in mammalian development in vivo remains poorly defined. Here we show that murine Trim71-KO embryos appear normal until embryonic day (E)8.5 but display severe defects in primitive erythropoiesis, yolk sac vasculature and heart function during the onset of organogenesis at E9.5 and E10.5. This led to an impaired vascular translocation of yolk sac-derived macrophage progenitors to the embryo head, independent of Trim71 expression in erythro-myeloid progenitors. The cardiovascular and erythropoiesis defects explain the embryonic lethality upon global Trim71-KO. Targeting Trim71 in hematoendothelial progenitors did not induce strong developmental defects, indicating an earlier developmental origin of these phenotypes in Trim71-KO embryos. ScRNA-seq of E7.5 Trim71-KO embryos revealed that transcriptomic changes arise already at gastrulation, showing a strong upregulation of the transcription factor Eomes. We identify Eomes as a direct target of Trim71-mediated mRNA repression via the NHL domain, demonstrating a functional link of Trim71 to a key regulator of mesodermal development. Taken together, our data suggest that Trim71-dependent control of gene expression at gastrulation establishes a framework for proper development during organogenesis.

developmental biology↗