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Intercellular Arc Signaling Regulates Vasodilation

June Bryan de la Peña, Paulino Barragán‐Iglesias, Tzu‐Fang Lou, Nikesh Kunder, Sarah Loerch, Tarjani Shukla, Lokesh Basavarajappa, Jane Song, Dominique James, Salim Megat, Jamie K. Moy, Andi Wanghzou, Pradipta Ray, Kenneth Hoyt, Oswald Steward

Journal of Neuroscience · 2021 · ▲ 27 citations

Abstract

Injury responses require communication between different cell types in the skin. Sensory neurons contribute to inflammation and can secrete signaling molecules that affect non-neuronal cells. Despite the pervasive role of translational regulation in nociception, the contribution of activity-dependent protein synthesis to inflammation is not well understood. To address this problem, we examined the landscape of nascent translation in murine dorsal root ganglion (DRG) neurons treated with inflammatory mediators using ribosome profiling. We identified the activity-dependent gene, Arc, as a target of translation <i>in vitro</i> and <i>in vivo</i>. Inflammatory cues promote local translation of Arc in the skin. Arc-deficient male mice display exaggerated paw temperatures and vasodilation in response to an inflammatory challenge. Since Arc has recently been shown to be released from neurons in extracellular vesicles (EVs), we hypothesized that intercellular Arc signaling regulates the inflammatory response in skin. We found that the excessive thermal responses and vasodilation observed in Arc defective mice are rescued by injection of Arc-containing EVs into the skin. Our findings suggest that activity-dependent production of Arc in afferent fibers regulates neurogenic inflammation potentially through intercellular signaling. <b>SIGNIFICANCE STATEMENT</b> Nociceptors play prominent roles in pain and inflammation. We examined rapid changes in the landscape of nascent translation in cultured dorsal root ganglia (DRGs) treated with a combination of inflammatory mediators using ribosome profiling. We identified several hundred transcripts subject to rapid preferential translation. Among them is the immediate early gene (IEG) Arc. We provide evidence that Arc is translated in afferent fibers in the skin. Arc-deficient mice display several signs of exaggerated inflammation which is normalized on injection of Arc containing extracellular vesicles (EVs). Our work suggests that noxious cues can trigger Arc production by nociceptors which in turn constrains neurogenic inflammation in the skin.

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Provenance

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OpenAlex
DOI
10.1523/jneurosci.0440-21.2021
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2026-08-01 MST

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APA
Peña, J.B.D.L., Barragán‐Iglesias, P., Lou, T., Kunder, N., Loerch, S., Shukla, T., Basavarajappa, L., Song, J., James, D., Megat, S., Moy, J.K., Wanghzou, A., Ray, P., Hoyt, K., Steward, O., Price, T.J., Shepherd, J.D., &amp; Campbell, Z.T. (2021). Intercellular Arc Signaling Regulates Vasodilation. <em>Journal of Neuroscience</em>. https://doi.org/10.1523/jneurosci.0440-21.2021
Vancouver
Peña JBDL, Barragán‐Iglesias P, Lou T, Kunder N, Loerch S, Shukla T, et al. Intercellular Arc Signaling Regulates Vasodilation. Journal of Neuroscience. 2021. doi:10.1523/jneurosci.0440-21.2021.
BibTeX
@article{june2021Interc, title = {Intercellular Arc Signaling Regulates Vasodilation}, author = {June Bryan de la Peña and Paulino Barragán‐Iglesias and Tzu‐Fang Lou and Nikesh Kunder and Sarah Loerch and Tarjani Shukla and Lokesh Basavarajappa and Jane Song and Dominique James and Salim Megat and Jamie K. Moy and Andi Wanghzou and Pradipta Ray and Kenneth Hoyt and Oswald Steward and Theodore J. Price and Jason D. Shepherd and Zachary T. Campbell}, journal = {Journal of Neuroscience}, year = {2021}, doi = {10.1523/jneurosci.0440-21.2021}, }

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