Project Grant R01CA282176
- The Mayo Clinic will identify novel protein biomarkers and targets to overcome PARP inhibitor resistance under a $954,000 project grant from the Department of the Army Medical Command. The grant was awarded on June 15, 2021 with a completion date of June 14, 2025 under the Military Medical Research and Development program (CFDA 12.420). This program supports basic, applied, and advanced biomedical research to transform military and public health care through innovative medical solutions for...
- This federal Project Grant award of $607,849 from the National Cancer Institute (CFDA 93.395 - Cancer Treatment Research) supports research to investigate the mechanisms of genetic and non-genetic resistance to KRAS inhibition in lung adenocarcinoma and colorectal cancer. The project aims to define the mechanisms underlying acquired resistance to KRAS-targeted therapies, in order to guide the development of more effective treatment strategies and prevent or reverse drug resistance. Key...
- This National Institutes of Health National Cancer Institute Project Grant of $470,532 provides funding from July 1, 2022 to June 30, 2027 to Brigham and Women's Hospital Inc., a subsidiary of Partners Healthcare System Incorporated, to characterize immunometabolic pathways enabled by PARP inhibition in breast cancer. The grant aims to (1) define the mechanisms by which PARP inhibitors induce lipogenic tumor-associated macrophage development, (2) determine how lipogenic macrophages suppress...
- This Project Grant award of $395,509 from the National Cancer Institute's Cancer Biology Research Program (CFDA 93.396) supports research by the Beth Israel Deaconess Medical Center, Inc. (Bidmc) in Boston, Massachusetts. The project aims to investigate the regulatory mechanisms and pathological roles of the SKP2 oncogenic E3 ubiquitin ligase in melanoma development and progression. Specifically, the research seeks to: 1) understand how SKP2 protein stability is regulated by its upstream E3...
- This federal Project Grant award, funded by the National Cancer Institute (CFDA 93.395 - Cancer Treatment Research), supports research to identify and validate non-covalent interacting proteins of mutant KRAS inhibitors. The grant, totaling $411,152 and effective from September 5, 2025 to August 31, 2027, will be performed by Duke University in North Carolina. The key objectives are to utilize mass spectrometry-based proteomics techniques to measure the protein folding stability and identify...
- This Project Grant from the National Cancer Institute, part of the Department of Health and Human Services, provided $136,080 under the Cancer Research Manpower federal grant program (CFDA 93.398) to Dana-Farber Cancer Institute from May 3, 2021 through July 15, 2021. The grant supported research aimed at determining the three-dimensional protein structures of phosphatase 2A holoenzyme complexes formed in response to perphenazine and related small molecules, to elucidate the mechanisms by...
- This Project Grant award from the National Institute of General Medical Sciences (CFDA 93.859 - Biomedical Research and Research Training program) provides $422,173 to the University of Massachusetts Boston to advance the understanding of cellular signaling networks that control organ growth and tissue patterning. The key research objectives are to investigate three signaling systems: 1) downstream effects of the receptor tyrosine kinase (RTK)/extracellular signal-regulated kinase (ERK) pathway,...
- This Project Grant award of $151,920 from the National Cancer Institute (CFDA 93.396 - Cancer Biology Research) supports research to develop NMR (nuclear magnetic resonance) strategies to investigate the allosteric effects of inhibitor binding on SRC-family kinases associated with acute myeloid leukemia (AML). The project, led by the University of Pittsburgh, aims to characterize conformational changes induced by both ATP-site and allosteric inhibitors on the SRC-family kinase HCK, which has...
- The U.S. Department of Defense's Military Medical Research and Development program (CFDA 12.420) awarded a $799,107 Project Grant to the Dana-Farber Cancer Institute, Inc. in Boston, MA to conduct research on using genomic biomarkers and decision analysis frameworks to guide treatment decisions for stage III melanoma patients. The grant will fund a collaborative project involving researchers from Dana-Farber and Brigham & Women's Hospital to develop methods for translating genomic and...
- This federal Project Grant award of $1,336,477 from the National Cancer Institute (CFDA 93.395 - Cancer Treatment Research) supports a research program at New York University School of Medicine aimed at understanding and disrupting the adeno-to-squamous transition (AST) observed in non-small cell lung cancer patients who develop resistance to KRAS inhibitor therapy. The key objectives are to identify the specific chromatin regulators driving the AST process through a high-throughput screen,...
ALLOSTERIC MECHANISMS DRIVING PARADOXICAL ACTIVATION OF RAF KINASES - ABSTRACT MUTATIONS IN THE BRAF PROTEIN KINASE ARE KEY DRIVERS OF MELANOMA, THYROID CANCER, AND COLON CANCER. EXISTING DRUGS, LIKE VEMURAFENIB, THAT TARGET THE MOST COMMON BRAF MUTANT (V600E) ARE INITIALLY EFFECTIVE IN PATIENTS, BUT CLINICAL RESISTANCE INVARIABLY DEVELOPS AFTER A FEW MONTHS. V600E BRAF NORMALLY SIGNALS AS A MONOMERIC KINASE, WHICH IS READILY INHIBITED BY THESE FIRST-GENERATION DRUGS. RESISTANCE TO THESE DRUGS IS MEDIATED BY BRAF DIMERIZATION, WHICH TRIGGERS A CONFORMATIONAL CHANGE OF THE KINASE FROM AN "C-OUT TO AN "C-IN" STATE AND BLOCKS DRUG BINDING. NEW INHIBITORS HAVE BEEN DEVELOPED TO RECOGNIZE THE C-IN STATE AND THEREBY TARGET BRAF DIMERS, BUT THESE MOLECULES EXHIBIT A MYSTERIOUS PHENOMENON CALLED PARADOXICAL ACTIVATION IN WHICH THEY CAN INCREASE BRAF ACTIVITY UNDER SOME CONDITIONS, RATHER THAN INHIBIT IT. PARADOXICAL ACTIVATION IS LINKED TO INDUCTION OF BRAF DIMERS BY INHIBITORS, BUT THE UNDERLYING MOLECULAR MECHANISM IS NOT WELL UNDERSTOOD, RENDERING IT CHALLENGING TO DESIGN NEW INHIBITORS THAT AVOID IT. USING AN INTEGRATED BIOPHYSICAL APPROACH, WE BUILT A MODEL FOR PARADOXICAL ACTIVATION THAT DESCRIBES THE ALLOSTERIC COUPLING BETWEEN INHIBITOR BINDING AND BRAF DIMERIZATION IN QUANTITATIVE THERMODYNAMIC TERMS. IN OUR APPROACH, A DATASET OF FRET MEASUREMENTS THAT QUANTIFY INHIBITOR-DRIVEN BRAF DIMERIZATION ARE GLOBALLY FIT TO OUR DIMERIZATION MODEL, YIELDING THERMODYNAMIC PARAMETERS THAT DESCRIBE THE ALLOSTERIC COUPLING MECHANISMS UNDERLYING DRUG-DRIVEN BRAF DIMERIZATION. REMARKABLY, THE RESULTS SHOW THAT INHIBITOR-DRIVEN DIMERIZATION IS ASYMMETRICAL, WITH THE FIRST DRUG BINDING EVENT TRIGGERING DIMERIZATION STRONGLY, AND THE SECOND BINDING EVENT CONTRIBUTING LITTLE ADDITIONAL DIMERIZATION AFFINITY. THIS MODEL ACCURATELY PREDICTS THE SHAPE OF BRAF KINASE ACTIVATION CURVES MEASURED AS A FUNCTION OF INHIBITOR CONCENTRATION, DEMONSTRATING THAT IT PROVIDES A REALISTIC PHYSICAL FRAMEWORK FOR UNDERSTANDING PARADOXICAL ACTIVATION. WE PLAN TO USE THIS APPROACH TO EXPAND OUR UNDERSTANDING OF PARADOXICAL ACTIVATION IN RAF KINASES. IN AIM 1, WE CLASSIFY A LARGE SET OF RAF INHIBITORS BASED ON THEIR ALLOSTERIC COUPLING STRENGTHS AND THE CONFORMATION OF THE C-HELIX THEY PROMOTE, UNRAVELING THE MECHANISTIC CONNECTION BETWEEN INHIBITOR BINDING, CONFORMATIONAL CHANGE, AND BRAF DIMERIZATION. IN AIM 2, WE APPLY THIS APPROACH TO ONCOGENIC MUTATIONS OF BRAF TO UNDERSTAND HOW THESE MUTATIONS ARE COUPLED TO INHIBITOR-DRIVEN DIMERIZATION AND ACTIVATION. IN AIM 3, WE EXTEND OUR STUDIES TO HIGHER-ORDER COMPLEXES OF BRAF, INCLUDING THE SCAFFOLDING PROTEIN 14-3-3, WHICH CAN EITHER WEAKEN OR ENHANCE BRAF DIMERIZATION DEPENDING ON THE MODE OF INTERACTION, AND BRAF/CRAF HETERODIMERS, WHICH ARE AN IMPORTANT SIGNALING SPECIES IN CELLS WITH CATALYTICALLY-INACTIVE ONCOGENIC BRAF MUTATIONS. COLLECTIVELY THIS WORK WILL REVEAL THE MOLECULAR MECHANISMS UNDERLYING PARADOXICAL ACTIVATION OF RAF COMPLEXES AND AID THE DESIGN OF NEW INHIBITORS THAT AVOID TRIGGERING PARADOXICAL ACTIVATION.
Mod # | Description | ReasonForModification | Federal Obligation | Date |
|---|---|---|---|---|
| Not listed | $473.0k | 7/1/25 | ||
| Not listed | $470.5k | 6/24/24 |