Project Grant K99CA293001
- GRANT SUMMARY The National Cancer Institute awarded Weill Medical College of Cornell University a $607,849 Project Grant on August 15, 2025, under the Cancer Treatment Research program (CFDA 93.395) to conduct a five-year research initiative examining mechanisms of genetic and non-genetic resistance to KRAS (Kirsten Rat Sarcoma) inhibition in lung adenocarcinoma and colorectal cancer. The research aims to identify why patients develop resistance to newly emerged mutant-selective and pan-KRAS...
- Federal Project Grant Award Summary The National Cancer Institute awarded the University of California, San Francisco a Project Grant totaling $675,009 under the Cancer Treatment Research program (CFDA 93.395) effective August 1, 2026, through July 31, 2031. The award supports research to develop covalent inhibitors targeting RAS Q61 mutations in cancer, specifically focusing on K-RASQ61X and N-RASQ61X oncoproteins that account for nearly 90% of RAS Q61 mutations. The research team, led by...
- Federal Grant Award Summary New York University School of Medicine received a $435,827 Project Grant award from the National Cancer Institute under the Cancer Treatment Research program (CFDA 93.395) effective June 4, 2025, with completion targeted for May 31, 2027. The grant supports research entitled "Exploiting Synthetic Lethality to Enhance KRAS Inhibitor Therapy of Cancer," which investigates combination therapeutic strategies to overcome intrinsic and emergent resistance to...
- Federal Grant Award Summary The National Cancer Institute, under the Cancer Treatment Research program (CFDA 93.395), awarded The Trustees of Columbia University in the City of New York a $682,673 Project Grant effective May 1, 2026, through April 30, 2031. This award supports research investigating the development and mechanisms of resistance to pan-RAS inhibition in pancreatic ductal adenocarcinoma (PDAC). The research builds upon preclinical findings demonstrating that RMC-7977, a novel...
- Federal Grant Award Summary The National Cancer Institute (NCI) awarded a Project Grant of $375,150 to The Regents of the University of California, San Francisco under the Cancer Treatment Research program (CFDA 93.395) to fund a five-year research initiative (September 1, 2025 – August 31, 2030). The research addresses innate resistance mechanisms to KRAS inhibitors in cancer treatment, focusing on the role of the RhoA-ROCK-Myosin IIA cytoskeletal axis in promoting drug-tolerant persister...
- The National Cancer Institute awarded MD Anderson Cancer Center a $141,195 Project Grant under the Cancer Research Manpower program (CFDA 93.398) on May 15, 2026, with completion targeted for April 30, 2028. This K99/R00 mentored research award supports biomedical training and cancer research workforce development focused on elucidating how tumor suppressor gene (TSG) deficiencies—specifically CDKN2A and SMAD4 alterations—modulate pancreatic ductal adenocarcinoma (PDAC) response to oncogenic...
- Federal Grant Award Summary The National Cancer Institute (NCI) awarded The Ohio State University a Project Grant of $463,692 under the Cancer Biology Research program (CFDA 93.396) to conduct fundamental structural and dynamic research on human K-RAS (Kirsten Rat Sarcoma viral oncogene homolog) and its interactions with binding partners and small-molecule ligands. The five-year project, active from June 1, 2026 through May 31, 2031, will utilize state-of-the-art experimental and computational...
- Federal Project Grant Award Summary Augusta University Research Institute, Inc. received a $154,000 Project Grant from the National Cancer Institute under the Cancer Treatment Research program (CFDA 93.395) effective July 1, 2026 through June 30, 2028. The award supports research investigating ADT-007, a first-in-class pan-RAS inhibitor, for the treatment of metastatic melanoma patients harboring NRAS mutations. Approximately 25% of cutaneous melanoma patients present with driver mutations in...
- Federal Grant Award Summary Duke University's Office of Research Administration received a $411,152 Project Grant from the National Cancer Institute under the Cancer Treatment Research program (CFDA 93.395) awarded September 5, 2025, with completion targeted for August 31, 2027. This research initiative focuses on identifying and validating noncovalent protein interactions of mutant KRAS (MKRAS) inhibitors, addressing a critical gap in understanding off-target effects of recently FDA-approved...
- Federal Project Grant Award Summary Award Overview Rockefeller University received a $100,228 Project Grant from the National Cancer Institute (NCI) under the Cancer Research Manpower program (CFDA 93.398), awarded December 1, 2026, with a completion date of June 30, 2029. The award supports basic cancer research focused on identifying genes that fuel RAS-driven squamous cell carcinomas (SCCs), specifically investigating the genetic and environmental factors that enable cancer stem cells...
DE NOVO DESIGNED RAS TOOLS TO UNCOVER THE MECHANISMS UNDERLYING DRUG RESISTANCE - THE RAS FAMILY OF PROTEINS CONTAIN FOUR MAJOR ISOFORMS, AND ALTOGETHER THESE PROTEINS ARE CONSTITUTIVELY ACTIVATED IN A THIRD OF CANCERS. IN THE PAST DECADE, INHIBITORS TO MUTANT RAS (RASG12C) HAVE BEEN DEVELOPED, BUT MOST PATIENTS ADMINISTERED RASG12C INHIBITORS (RASG12CI) RELAPSE. INTERESTINGLY, THESE RAS INHIBITOR RESISTANT TUMORS HAVE RAS SIGNALING REACTIVATED AND THE SIGNALING MECHANISMS UNDERLYING THIS DRUG RESISTANCE ARE UNKNOWN. TO UNCOVER THESE DRUG RESISTANCE MECHANISMS, I DEVELOPED RAS ACTIVITY SENSORS AND RAS ACTIVITY DEPENDENT PROXIMITY LABELERS, APPLIED THEM TO RASG12C-ADDICTED CANCER CELLS TREATED WITH RASG12CI, AND OBSERVED THAT RASG12CI BLOCKED MUTANT RAS SIGNALING AT THE PLASMA MEMBRANE WHILE WILDTYPE (WT) RAS IS ACTIVATED AT ENDOMEMBRANES TO FUEL ONCOGENIC SIGNALING AND CELL GROWTH. WHILE THESE RESULTS ARE PRELIMINARY AS THESE STUDIES WERE DONE IN 2D CELL CULTURE AND DO NOT DELINEATE WHICH PARTICULAR RAS ISOFORMS ENABLE RASG12CI RESISTANCE, THESE EXCITING FINDINGS BEG THE QUESTION OF WHETHER CANCER CELLS CAN EVADE OTHER RECENTLY DEVELOPED RAS INHIBITORS TARGETING RASG12C, G12D, G12R, OR G12S BY ALSO REACTIVATING RAS SIGNALING. THEREFORE, THE OBJECTIVE OF THIS K99/R00 PROPOSAL IS TO EXPAND THE MOLECULAR TOOLKIT FOR RAS AND UTILIZE THESE TOOLS TO PROFILE AND UNCOVER THE MOLECULAR MECHANISMS DRIVING RAS INHIBITOR RESISTANCE. THE CENTRAL HYPOTHESIS DRIVING THIS WORK IS THAT WT RAS COMPENSATION FOR MUTANT RAS INHIBITION IS A GENERAL FEATURE CANCER CELLS EMPLOY TO EVADE RAS INHIBITORS. PROFILING THE SUBCELLULAR RAS ACTIVITIES DURING RAS INHIBITOR TREATMENT AND UNCOVERING THE MOLECULAR COMPONENTS DRIVING THIS REORGANIZATION OF RAS SIGNALING WILL ALLOW BETTER UNDERSTANDING OF RAS INHIBITOR RESISTANCE AND ILLUMINATION OF NEW THERAPEUTIC TARGETS. TO INVESTIGATE THIS HYPOTHESIS, THE FOLLOWING SPECIFIC AIMS WILL BE ADDRESSED: (1) DEVELOPING AND APPLYING RAS SENSORS IN COMPLEX CANCER CELL MODELS (K99); (2) DE NOVO DESIGN OF RAS ISOFORM SELECTIVE TOOLS (K99/R00); AND (3) PROFILING AND DISSECTING THE MECHANISMS UNDERPINNING RAS INHIBITOR RESISTANCE (R00). IN THE PROPOSED RESEARCH, I WILL PROTEIN ENGINEER CURRENT AND NEW RAS TOOLS (SENSORS, PROXIMITY LABELERS, PERTURBATORS) ALONG WITH MICROSCOPY AND PROTEOMIC TECHNIQUES TO DETERMINE HOW RAS INHIBITORS IMPACT COMPARTMENTALIZED RAS SIGNALING. THE EXPECTED OUTCOMES ARE (1) AN EXPANSION OF TOOLS THAT CAN BE APPLIED TO IN VIVO MODELS AND PROBE SPECIFIC RAS ISOFORMS AND (2) A BETTER UNDERSTANDING OF HOW RAS INHIBITORS OPERATE AND HOW DRUG RESISTANCE CAN OCCUR. OF NOTE, I BELIEVE THESE NEW RAS TOOLS WILL BE OF GREAT INTEREST TO THE CANCER COMMUNITY (E.G. NCI'S RAS INITIATIVE) AND CAN BE USEFUL FOR OTHER APPLICATIONS BEYOND THE SCOPE OF THIS PROPOSAL SUCH AS DIAGNOSTICS AND THERAPEUTICS. TOWARDS COMPLETION OF THE PROPOSED WORK, I WILL BE TRAINED IN PROTEIN DESIGN METHODS AND COMPLEX CANCER MODELS AND GUIDED BY AN ADVISORY COMMITTEE COMPOSED OF EXPERTS IN CANCER, RAS SIGNALING, AND CELL CULTURE. THE LONG-TERM GOAL OF THIS PROJECT IS TO DEVELOP AN INDEPENDENT RESEARCH PROGRAM THAT BRIDGES PROTEIN DESIGN WITH CANCER CELL BIOLOGY TO UNDERSTAND HOW ONCOGENIC SIGNALING PATHWAYS REWIRE THEMSELVES DURING ONCOGENESIS AND DRUG RESISTANCE.
Mod # | Description | ReasonForModification | Federal Obligation | Date |
|---|---|---|---|---|
| Not listed | $0 | 4/3/26 | ||
| Not listed | $0 | 7/11/25 | ||
| Not listed | $109.9k | 7/17/24 |