Project Grant DP2GM149551
- This $792,498 Project Grant award from the National Institute on Aging's Aging Research program (CFDA 93.866) supports research by the Trustees of Indiana University, doing business as Indiana University Indianapolis, to investigate the role of P2X7 receptor signaling in neuroinflammation and neurodegeneration in Alzheimer's disease and related dementias (ADRD). The key objectives are to: 1) characterize mouse models of ADRD to assess neuroinflammation, synaptic density, and neuronal health...
- The federal Project Grant award R01HL177433, funded by the National Heart, Lung, and Blood Institute (CFDA 93.837 - Cardiovascular Diseases Research), supports a research project to investigate the structural dynamics and regulatory mechanisms of the Atrial Natriuretic Peptide Receptor (ANPR or GC-A) over a period of 4 years from December 2024 to November 2028. The $535,213 grant awarded to Weill Medical College of Cornell University aims to: 1) delineate the structural changes in GC-A upon...
- This Project Grant award from the National Heart, Lung, and Blood Institute (CFDA 93.837 Cardiovascular Diseases Research) provides $728,577 to The Regents of the University of California, San Francisco (UCSF) to conduct research on the role of purinergic signaling in fibroblast activation and lung fibrosis. The research aims to investigate the mechanisms by which the ATP receptor P2RX4 influences profibrotic pathways in fibroblasts, a key driver of idiopathic pulmonary fibrosis (IPF)...
- This $385,191 Project Grant awarded by the National Institute of General Medical Sciences (NIGMS) Biomedical Research and Research Training Program (CFDA 93.859) supports research to study the structure, function, and regulation of ATP-sensitive potassium (KATP) channels. The project aims to develop novel spectroscopic tools to simultaneously probe KATP channel structure and function, with the goal of understanding how ligand binding and long-range communication between subunits in the...
- The National Institute of Neurological Disorders and Stroke (NINDS) awarded a $650,079 Project Grant to Northeastern University under the Extramural Research Programs in the Neurosciences and Neurological Disorders (CFDA 93.853) program. The grant supports the development and optimization of novel small-molecule probes targeting the alpha9 nicotinic acetylcholine receptor (α9*-nAChR) subunit, with the goal of exploring its potential for pain management. The 5-year project aims to advance...
- The National Institute of General Medical Sciences (NIGMS) awarded a $377,123 Project Grant under the Biomedical Research and Research Training program (CFDA 93.859) to the Research Foundation for the State University of New York (RF SUNY), doing business as SUNY at Binghamton, with a performance period from September 1, 2025 to June 30, 2030. The project aims to provide structural and mechanistic insights into the ligand specificity of A1-adrenergic receptors (A1-ARs) using cryo-electron...
- This Project Grant award from the National Heart, Lung, and Blood Institute (NHLBI), under the Cardiovascular Diseases Research federal grant program (CFDA 93.837), supports the development of a lesion-targeted nanotherapeutic to address vascular smooth muscle cell (VSMC) dysfunction and mitigate neointimal hyperplasia (NIH), which is a significant issue arising from vascular damage during interventions. The project aims to integrate in vitro transcribed CARMN RNA (a long non-coding RNA critical...
- This $304,119 Project Grant award from the National Heart, Lung, and Blood Institute (NHLBI) under the Cardiovascular Diseases Research program (CFDA 93.837) supports the development of innovative in vitro 3D atherosclerosis models and high-throughput drug screening assays by Endomimetics LLC. The key objectives are to create an automated, precise approach for fabricating advanced 3D vascular sheet and atherosclerosis models, which will enable efficient, high-throughput testing of drug...
- This federal Project Grant award of $552,413.00 was provided by the National Heart, Lung, and Blood Institute (NHLBI) under the Cardiovascular Diseases Research program (CFDA 93.837) to Thomas Jefferson University's Sidney Kimmel Medical College. The grant will support research over a period of 4 years, from April 1, 2025 to January 31, 2029, with the goal of investigating siRNA-mediated in vivo knockdown of key regulators of platelet and megakaryocyte function, including the P2Y12 receptor,...
- This federal Project Grant award of $350,000.00 from the National Institute of General Medical Sciences (NIGMS), under the Biomedical Research and Research Training program (CFDA 93.859), is supporting the development of allosteric uncouplers as potential therapeutics for chronic pain. The award aims to address the significant public health crisis of opioid addiction by developing new non-opioid pain treatment alternatives that target the protease-activated receptor 2 (PAR2) implicated in...
ELUCIDATION OF P2X7 RECEPTOR SIGNALING AND DEVELOPMENT OF NOVEL SMALL MOLECULE AND APTAMER LIGAND THERAPIES - PROJECT SUMMARY: P2X PURINERGIC RECEPTORS ARE TRIMERIC, NON-SELECTIVE CATION CHANNELS ACTIVATED BY EXTRACELLULAR ATP TO MODULATE PROCESSES IN THE CARDIOVASCULAR AND IMMUNE SYSTEMS. THE P2X7 RECEPTOR, THE MOST STRUCTURALLY AND FUNCTIONALLY DISTINCT P2X RECEPTOR SUBTYPE, IS INVOLVED IN SIGNALING PATHWAYS FOR APOPTOSIS AND INFLAMMATION, AND IS PREDICTED TO PLAY A KEY ROLE IN THE LINK BETWEEN INFLAMMATORY DISEASE AND ATHEROSCLEROSIS.IN A MOUSE MODEL OF CORONARY ARTERY DISEASE, GENE KNOCK-OUT P2X7 RECEPTOR DEFICIENCY ABOLISHED ATHEROSCLEROSIS, SUGGESTING THAT DEVELOPMENT OF P2X7-SPECIFIC ANTAGONISTS TO INHIBIT P2X7-SIGNALING COULD RESULT IN A NOVEL THERAPY FOR THE PREVENTION OF CORONARY ARTERY DISEASE. HOWEVER, DESPITE BEING AN ACTIVELY PURSUED PHARMACOLOGIC TARGET, THERE ARE NO FDA-APPROVED DRUGS TARGETING THE P2X7 RECEPTOR. UTILIZING P2X RECEPTORS AS A TARGET FOR THERAPY HAS BEEN HAMPERED BY A LACK OF INFORMATION DEFINING THE RECEPTOR'S STRUCTURE AND MOLECULAR MECHANISMS OF FUNCTION. RECENTLY, MY GROUP PUBLISHED THE FIRST ATOMIC-RESOLUTION STRUCTURES OF FULL-LENGTH P2X7 RECEPTOR USING SINGLE PARTICLE CRYOGENIC ELECTRON MICROSCOPY, CHANGING THIS OUTLOOK. MY STRUCTURES DEMONSTRATED WHY THE P2X7 RECEPTOR SUBTYPE DOES NOT UNDERGO DESENSITIZATION AND REVEALED THAT THE CYTOPLASMIC DOMAIN OF P2X7 RECEPTOR HAS A NOVEL FOLD WITHOUT STRUCTURAL HOMOLOGY TO ANY FOLD IN THE PROTEIN DATA BANK, CONTAINING A HIGH-AFFINITY (NANOMOLAR) GUANOSINE NUCLEOTIDE BINDING SITE. THIS SURPRISING FINDING IN THE CYTOPLASMIC DOMAIN MAY BEGIN TO EXPLAIN HOW ACTIVATION OF THE IONOTROPIC P2X7 RECEPTOR RECRUITS METABOTROPIC SECONDARY MESSENGER SYSTEMS, WITH THE LOCATION OF THE GUANOSINE NUCLEOTIDE BINDING SITE REVEALING WHERE THE RECEPTOR INTERFACES WITH INTRACELLULAR SIGNALING PARTNERS. UNDERSTANDING THESE PROCESSES AND MOLECULAR INTERACTIONS WOULDEXPAND PHARMACEUTICAL STRATEGIES BEYOND ANTAGONISM OF P2X7 RECEPTOR AT THE EXTRACELLULAR DOMAIN TO INCLUDE MODULATING SIGNALING AT THE CYTOPLASMIC DOMAIN. THE MAJOR AIM OF THIS GRANT IS TO USE MY STRUCTURES OF P2X7 RECEPTOR AS A PLATFORM TO INVESTIGATE ITS UNIQUE SIGNAL TRANSDUCTION PATHWAYS AND, USING STRUCTURE-BASED DRUG DESIGN, TO DEVELOP NOVEL LIGANDS TO MODULATE P2X7 RECEPTOR FUNCTION FOR THERAPEUTIC PURPOSES. A TRANSFORMATIVE ASPECT OF THIS PROPOSAL IS EXPANDING THE SEARCH OF LIGANDS TARGETING P2X7 RECEPTOR BEYOND SMALL-MOLECULES TO INCLUDE NUCLEIC ACID APTAMERS, A IDENTIFICATION OF LIGANDS (EITHER SMALL MOLECULE OR APTAMER) THAT SUCCESSFULLY INHIBIT P2X7 RECEPTOR ACTIVATION OR MODULATE P2X7 RECEPTOR INTRACELLULAR SIGNALING WILL PROVIDE INVALUABLE RESEARCH TOOLS FOR STUDYING P2X RECEPTORS WITH THE POTENTIAL TO BE DEVELOPED INTO THERAPIES FOR VASCULAR INFLAMMATION AND TO PREVENT ATHEROSCLEROSIS. PROMISING PARADIGM HERETOFORE UNEXPLORED IN P2X RECEPTORS.
Mod # | Description | ReasonForModification | Federal Obligation | Date |
|---|---|---|---|---|
| Not listed | $936.0k | 8/12/25 | ||
| Not listed | $1.3m | 8/15/22 | ||
| Not listed | $1.3m | 8/15/22 |