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U19NS138975

Cooperative Agreement

Overview

Grant Description
Developing small molecules to engage an analgesic GPCR in pain unpleasantness neural circuits - For millions of patients who suffer from a variety of painful conditions, opioid analgesics can provide decisive pain relief in part by decreasing the aversion normally associated with pain perception (i.e., the characteristic unpleasant quality of pain experience, regardless of etiology).

Mechanistically, this analgesia against pain unpleasantness is associated with the binding of opioids to specific G protein-coupled receptors (GPCRs), the mu opioid receptors, particularly in brain pathways that contribute to the affective-motivational dimension of pain.

However, mu opioid receptors are also broadly expressed outside of pain circuits, where opioids produce unacceptably dangerous side effects including addiction and potentially fatal respiratory depression.

Crucially, the human genome contains hundreds of other GPCRs with distinct expression profiles.

Thus, because GPCRs are highly druggable proteins, developing small molecules that engage non-opioid, non-addictive GPCRs in affective-motivational pain circuits is an attractive strategy to develop safer analgesics that reduce pain unpleasantness more safely and across all pain conditions.

We have assembled a multidisciplinary team comprising pain biologists, neuroscientists, physicians, GPCR pharmacologists, and medicinal chemists; advisors with pharmaceutical industry, drug development, intellectual property, and commercialization experience; and representatives from patient advocacy groups.

In our previous work, we discovered an ensemble of neurons in the amygdala that encodes pain unpleasantness and demonstrated that interfering with amygdalar neural activity using artificially expressed GPCRs (DREADDs) significantly diminished pain affective-motivational behaviors in mice.

We next launched an analgesic target discovery project combining mouse genetic tools, single-cell RNA sequencing, and bioinformatics methods to catalog GPCRs present in the amygdalar neurons active during pain.

After generating this catalog, we histologically validated expression of these GPCRs and conducted preliminary antinociceptive efficacy tests, using known GPCR ligands.

This work identified an amygdalar GPCR with antinociceptive properties.

Furthermore, engagement of this target is not reinforcing in rodents.

Although existing ligands were sufficient to demonstrate the antinociceptive potential of this GPCR, our next objective is to develop small molecules with optimized physical, PD, and PK properties.

Toward this aim, our team proposes to use medicinal chemistry and computational docking techniques as in our previous study based on the recent resolution of several cryo-EM structures.

Further, given that translational efforts can fail due to insufficient understanding of the target biology and its conservation in humans, we will expand our understanding of this GPCR biology by investigating signaling and its distribution in human tissues.
Funding Goals
NOT APPLICABLE
Place of Performance
North Carolina United States
Geographic Scope
State-Wide
Analysis Notes
Amendment Since initial award the End Date has been extended from 08/31/26 to 08/31/27.
University Of North Carolina At Chapel Hill was awarded Developing Non-Opioid Small Molecules for Safer Pain Relief Cooperative Agreement U19NS138975 worth $4,637,933 from the National Institute of Neurological Disorders and Stroke in September 2024 with work to be completed primarily in North Carolina United States. The grant has a duration of 3 years and was awarded through assistance program 93.279 Drug Abuse and Addiction Research Programs. The Cooperative Agreement was awarded through grant opportunity HEAL Initiative: Team Research for Initial Translational Efforts in Non-addictive Analgesic Therapeutics Development [Small Molecules and Biologics] (U19 Clinical Trial Not Allowed).

Status
(Ongoing)

Last Modified 9/4/26

Period of Performance
9/19/24
Start Date
8/31/27
End Date
70.0% Complete

Funding Split
$4.6M
Federal Obligation
$0.0
Non-Federal Obligation
$4.6M
Total Obligated
100.0% Federal Funding
0.0% Non-Federal Funding

Activity Timeline

Interactive chart of timeline of amendments to U19NS138975

Subgrant Awards

Disclosed subgrants for U19NS138975

Transaction History

Modifications to U19NS138975

Additional Detail

Award ID FAIN
U19NS138975
SAI Number
U19NS138975-1568164856
Award ID URI
SAI UNAVAILABLE
Awardee Classifications
Public/State Controlled Institution Of Higher Education
Awarding Office
75NQ00 NIH National Institute of Neurological Disorders and Stroke
Funding Office
75NQ00 NIH National Institute of Neurological Disorders and Stroke
Awardee UEI
D3LHU66KBLD5
Awardee CAGE
4B856
Performance District
NC-90
Senators
Thom Tillis
Ted Budd
Modified: 9/4/26