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The cellular basis of protease-activated receptor 2–evoked mechanical and affective pain
Shayne N. Hassler, Moeno Kume, Juliet M. Mwirigi, Ayesha Ahmad, Stephanie Shiers, Andi Wangzhou, Pradipta R. Ray, Serge N. Belugin, Dhananjay K. Naik, Michael D. Burton, Josef Vagner, Scott Boitano, Armen N. Akopian, Gregory Dussor, Theodore J. Price
Shayne N. Hassler, Moeno Kume, Juliet M. Mwirigi, Ayesha Ahmad, Stephanie Shiers, Andi Wangzhou, Pradipta R. Ray, Serge N. Belugin, Dhananjay K. Naik, Michael D. Burton, Josef Vagner, Scott Boitano, Armen N. Akopian, Gregory Dussor, Theodore J. Price
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Research Article Neuroscience

The cellular basis of protease-activated receptor 2–evoked mechanical and affective pain

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Abstract

Protease-activated receptor 2 (PAR2) has long been implicated in inflammatory and visceral pain, but the cellular basis of PAR2-evoked pain has not been delineated. Although PAR2-evoked pain has been attributed to sensory neuron expression, RNA-sequencing experiments show ambiguous F2rl1 mRNA detection. Moreover, many pharmacological tools for PAR2 are nonspecific, acting also on the Mas-related GPCR family (Mrg) that are highly enriched in sensory neurons. We sought to clarify the cellular basis of PAR2-evoked pain. We developed a PAR2–conditional knockout mouse and specifically deleted PAR2 in all sensory neurons using the PirtCre mouse line. Our behavioral findings show that PAR2 agonist–evoked mechanical hyperalgesia and facial grimacing, but not thermal hyperalgesia, are dependent on PAR2 expression in sensory neurons that project to the hind paw in male and female mice. F2rl1 mRNA is expressed in a discrete population (~4%) of mostly small-diameter sensory neurons that coexpress the Nppb and IL31ra genes. This cell population has been implicated in itch, but our work shows that PAR2 activation in these cells causes clear pain-related behaviors from the skin. Our findings show that a discrete population of DRG sensory neurons mediate PAR2-evoked pain.

Authors

Shayne N. Hassler, Moeno Kume, Juliet M. Mwirigi, Ayesha Ahmad, Stephanie Shiers, Andi Wangzhou, Pradipta R. Ray, Serge N. Belugin, Dhananjay K. Naik, Michael D. Burton, Josef Vagner, Scott Boitano, Armen N. Akopian, Gregory Dussor, Theodore J. Price

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Figure 2

F2rl1 is expressed by a small subset of sensory neurons.

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F2rl1 is expressed by a small subset of sensory neurons.
DRG neurons (A...
DRG neurons (A–E) and hind paw skin (F) from F2rl1floxPirt+/+ and F2rl1floxPirtCre mice were dissected and prepared for RNAscope in situ hybridization. White arrows indicate cells positive for F2rl1 mRNA. (A) Representative original magnification ×20 images of Calca (green), P2rx3 (red), and F2rl1 (white) mRNA signal in the DRG of F2rl1floxPirt+/+ and F2rl1floxPirtCre mice. These images show that the F2rl1floxPirtCre mice do not express F2rl1 mRNA in sensory neurons while the F2rl1floxPirt+/+ mice do. Scale bar: 50 μm. (B) Original magnification ×40 overlay image showing RNAscope signal at the cellular level. Scale bar: 10 μm. (C) Percentage of Calca+ and P2rx3+ neurons that coexpress F2rl1. Around 2% of Calca+ neurons express F2rl1 mRNA while around 6% of P2rx3+ neurons express F2rl1 mRNA. (D) Histogram illustrating the diameter of neurons expressing F2rl1. F2rl1+ neurons are small- to medium-diameter neurons (16–46 μm). (E) Pie chart illustration of the percentage of F2rl1+ cells that colocalize with Calca+ and P2rx3+ neurons. About 3%–4% of DRG neurons are F2rl1+, of which almost all are P2rx3+ neurons. (F) Representative hind paw skin images of F2rl1 (white) and DAPI (blue) signal from a F2rl1floxPirt+/+ mouse and a F2rl1floxPirtCre mouse. The last image shows hind paw skin from a F2rl1floxPirt+/+ mouse stained with a negative probe control (bacterial dapB). These images show the specificity of conditional knockout of F2rl1 expression is restricted to only sensory neurons and not skin cells. Scale bar: 20 μm.

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