Highly specific σ 2 R/TMEM97 ligand FEM-1689 alleviates neuropathic pain and inhibits the integrated stress response

Author:

Yousuf Muhammad Saad12ORCID,Sahn James J.23,Yang Hongfen3,David Eric T.1,Shiers Stephanie1ORCID,Mancilla Moreno Marisol1,Iketem Jonathan1,Royer Danielle M.1,Garcia Chelsea D.1,Zhang Jennifer1,Hong Veronica M.1ORCID,Mian Subhaan M.1ORCID,Ahmad Ayesha1,Kolber Benedict J.1,Liebl Daniel J.4,Martin Stephen F.23ORCID,Price Theodore J.12ORCID

Affiliation:

1. Center for Advanced Pain Studies and Department of Neuroscience, School of Behavioral and Brain Sciences, University of Texas at Dallas, Richardson, TX 75080

2. NuvoNuro Inc., Austin, TX 78712

3. Department of Chemistry, University of Texas at Austin, Austin, TX 78712

4. The Miami Project to Cure Paralysis, Department of Neurosurgery, University of Miami Miller School of Medicine, Miami, FL 33136

Abstract

The sigma 2 receptor (σ 2 R) was described pharmacologically more than three decades ago, but its molecular identity remained obscure until recently when it was identified as transmembrane protein 97 (TMEM97). We and others have shown that σ 2 R/TMEM97 ligands alleviate mechanical hypersensitivity in mouse neuropathic pain models with a time course wherein maximal antinociceptive effect is approximately 24 h following dosing. We sought to understand this unique antineuropathic pain effect by addressing two key questions: do these σ 2 R/TMEM97 compounds act selectively via the receptor, and what is their downstream mechanism on nociceptive neurons? Using male and female conventional knockout mice for Tmem97, we find that a σ 2 R/TMEM97 binding compound, FEM-1689, requires the presence of the gene to produce antinociception in the spared nerve injury model in mice. Using primary mouse dorsal root ganglion neurons, we demonstrate that FEM-1689 inhibits the integrated stress response (ISR) and promotes neurite outgrowth via a σ 2 R/TMEM97-specific action. We extend the clinical translational value of these findings by showing that FEM-1689 reduces ISR and p-eIF2α levels in human sensory neurons and that it alleviates the pathogenic engagement of ISR by methylglyoxal. We also demonstrate that σ 2 R/TMEM97 is expressed in human nociceptors and satellite glial cells. These results validate σ 2 R/TMEM97 as a promising target for further development for the treatment of neuropathic pain.

Funder

HHS | NIH | National Institute of Neurological Disorders and Stroke

HHS | National Institutes of Health

HHS | NIH | National Institute of Mental Health

Welch Foundation

HHS | NIH | National Institute of Diabetes and Digestive and Kidney Diseases

Publisher

Proceedings of the National Academy of Sciences

Subject

Multidisciplinary

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