Project Grant R44CA287693
- This $398,728 Project Grant awarded by the National Cancer Institute (NCI) under the Cancer Treatment Research program (CFDA 93.395) supports the development of a novel homologous recombination (HR) inhibitor, CP-8, to sensitize triple-negative breast cancer (TNBC) cells to DNA-damaging agents. The project aims to examine the synergy of CP-8 with various DNA-damaging therapies, including PARP inhibitors and ionizing radiation, in TNBC cell lines, patient-derived xenograft models, and in vivo...
- This Project Grant award from the National Cancer Institute (CFDA 93.398 Cancer Research Manpower) provides $150,104 to Vanderbilt University to generate small molecule inhibitors targeting the interaction between the XPA and RPA proteins, which are critical to the nucleotide excision repair (NER) pathway. The objectives are to (1) identify and optimize small molecule inhibitors of the XPA-RPA interaction using a fragment-based discovery approach, and (2) evaluate the ability of these inhibitors...
- This Project Grant award from the National Cancer Institute (CFDA 93.398 Cancer Research Manpower program) provides $125,532.00 to President and Fellows of Harvard College, doing business as Harvard Medical School, to determine the role of Replication Protein A (RPA) in Polymerase Theta-Mediated End-Joining (TMEJ), a key DNA repair pathway utilized by cancer cells. The research aims to elucidate the essential interactions between RPA and the enzyme Polymerase Theta (POLTH) that facilitate...
- This Project Grant award from the National Cancer Institute (CFDA 93.395 - Cancer Treatment Research) provides $458,051 to Temple University to conduct research aimed at understanding and targeting vulnerabilities in small cell lung cancer (SCLC). The key products and services to be delivered under this 4-year award include: Investigating whether low levels of the nuclear structural protein LMNA contribute to the high levels of replication stress observed in SCLC cells, and whether this...
- This Project Grant award of $342,569 was provided by the National Cancer Institute (CFDA 93.393 - Cancer Cause and Prevention Research) to the University of North Carolina at Charlotte (UNC Charlotte) to conduct research on the roles and regulations of the APE1 protein in ATR signaling pathways. The key objectives of this 5-year project are to elucidate the mechanisms by which APE1 forms liquid-liquid phase separations in vitro and in the nucleoli of cancer cells, and how this promotes ATR...
- This $245,504 Project Grant awarded by the National Institute of Dental and Craniofacial Research (NIDCR) under the Oral Diseases and Disorders Research program (CFDA 93.121) supports research to develop new treatment approaches for oral squamous cell carcinoma (OSCC). The project explores targeting the stress-specific functions of the essential DNA replication factor Replication Protein A (RPA) to selectively enhance OSCC treatment responses. Researchers from the University of North Carolina at...
- The National Cancer Institute (NCI) awarded a $487,393 Project Grant (CFDA 93.393 - Cancer Cause and Prevention Research) to the Sloan-Kettering Institute for Cancer Research in New York, NY, effective December 1, 2024 through November 30, 2029. The grant supports research to determine the role of RAD52, HELQ, and POLQ proteins in backup DNA double-strand break repair pathways, which are critical for the survival of homologous recombination deficient (HRD) cancer cells. The research aims to...
- This Project Grant award from the National Cancer Institute (CFDA 93.395 - Cancer Treatment Research) provides $736,168 to the Sloan-Kettering Institute for Cancer Research to develop first-in-class antibody-drug conjugates (ADCs) and payloads specifically designed for combination with external beam radiotherapy. The key products and services to be delivered include: Developing HER2-directed ADCs containing DNA damage response inhibitors as payloads, which have demonstrated efficacy in vitro and...
- This National Science Foundation (NSF) Technology, Innovation, and Partnerships (CFDA 47.084) Phase I Small Business Innovation Research (SBIR) grant for $305,000 awarded to Redpoint Oncology, Inc. aims to develop and validate a novel platform for targeted cancer therapies. The project seeks to create new cancer treatments designed to target and destroy cancer cells for a broad range of different cancers. The project's broader impact includes addressing critical unmet medical needs and...
- This Project Grant award from the National Cancer Institute (CFDA 93.395 - Cancer Treatment Research) provides funding of $186,000.00 to The Institute For Cancer Research (ICR) to conduct pilot studies on a new tumor-targeted AURKA (Aurora-A Kinase) inhibitor called NN-01-195. The goal is to investigate the feasibility and potential of this novel chimeric compound, which fuses an HSP90 inhibitor with an AURKA inhibitor, as a cancer treatment approach. The proposed research aims to evaluate the...
TARGETING THE DNA DAMAGE RESPONSE SENSOR REPLICATION PROTEIN A FOR FIRST INCLASS CANCER THERAPY - ABSTRACT THE DNA DAMAGE RESPONSE (DDR) IS AN INTEGRATED NETWORK OF DNA REPAIR AND CELL SIGNALING PATHWAYS THAT ARE CRITICAL TOWARDS MAINTAINING GENOMIC STABILITY. TARGETING THE DDR FOR CANCER THERAPY EXPLOITS TWO IMPORTANT VULNERABILITIES OF MANY CANCERS. THIS FIRST IS THAT ONCOGENIC REPLICATION STRESS INDUCES DNA DAMAGE AND GENOMIC INSTABILITY RESULTING IN THE RELIANCE ON DDR FOR CANCER CELL SURVIVAL. THE SECOND IS THAT MANY CANCERS HARBOR GENETIC DEFECTS IN DDR AND DNA REPAIR PATHWAY COMPONENTS THAT FORCE THE CANCER CELLS TO REWIRE THE DDR AND BECOME RELIANT ON COMPENSATORY PATHWAYS. THIS RESULTS IN THE OPPORTUNITY FOR SYNTHETIC LETHAL INTERACTIONS THAT CAN BE EXPLOITED TO SPECIFICALLY TARGET CANCER CELLS. THE MOST SUCCESSFUL DDR TARGETED THERAPIES INHIBIT THE DNA DAMAGE SENSOR, PARP, A PROTEIN THAT RECOGNIZES SSDNA BREAKS. WITH THE INITIAL CLINICAL SUCCESS OF PARP INHIBITORS, DEVELOPMENT OF DDR TARGETED THERAPEUTICS HAS BECOME INCREASINGLY POPULAR. HOWEVER, THE MAJORITY OF THE CURRENT APPROACHES HAVE TARGETED PROTEIN KINASES THAT ARE DOWNSTREAM OF THE DNA DAMAGE SENSORS AND THE CLINICAL OUTCOMES WITH THESE THERAPEUTICS HAVE NOT MET EXPECTATIONS. NERX BIOSCIENCES HAS DEVELOPED A NOVEL STRATEGY TO REALIZE THE FULL THERAPEUTIC PROMISE OF THE DDR, BY INTERVENING UPSTREAM OF THE DDR KINASES AND TARGETING SPECIFIC DDR SENSORS. THE HUMAN SINGLE STRANDED DNA (SSDNA) BINDING PROTEIN, REPLICATION PROTEIN A (RPA), IS A CRITICAL SENSOR FOR THE DDR AND A NOVEL TARGET FOR CANCER THERAPY. WE HAVE DISCOVERED, DEVELOPED AND CHARACTERIZED A NOVEL SMALL MOLECULE RPA INHIBITOR (RPAI) NERX-329 THAT BLOCKS THE RPA-DNA INTERACTION AND ELICITS A STATE OF CHEMICAL RPA EXHAUSTION THAT RESULTS IN IN VIVO ANTICANCER ACTIVITY. PREVIOUS WORK EMPLOYED CHEMICAL SYNTHESIS, IN VITRO ANALYSES AND IN VIVO XENOGRAFT STUDIES TO ASSESS MECHANISM OF ACTION, CELLULAR ENGAGEMENT AND THERAPEUTIC ACTIVITY OF RPA-TARGETED AGENTS. NERX-329 REPRESENTS THE FIRST CLINICALLY VIABLE AGENT TO TARGET THE DDR PATHWAY BY DISRUPTING THE RPA-DNA INTERACTION AND HOLDS THE POTENTIAL FOR SIGNIFICANT IMPACT IN CANCER TREATMENT. THE GOAL OF THIS DIRECT TO PHASE 2 APPLICATION IS TO ACCELERATE COMMERCIAL READINESS OF THIS NOVEL THERAPEUTIC TOWARD IND APPROVAL. THIS GOAL WILL BE MET THROUGH THREE AIMS INCLUDING FORMULATION FOR ORAL DELIVERY OF NERX329, ASSESSING PHARMACOKINETIC, POTENCY AND SAFETY OF NERX 329, AND INITIATING CRITICAL CMC WORK REQUIRED FOR FINAL IND. THE KEY DELIVERABLES OF EACH AIM WILL PROVIDE A COMPREHENSIVE DATA PACKAGE THAT WILL ULTIMATELY POSITION NERX BIOSCIENCES TO COMPLETE FINAL IND ENABLING STUDIES FOR FIRST-IN-CLASS AND FIRST-IN-HUMAN TRIALS OF NOVEL AGENTS TARGETING RPA.
Mod # | Description | ReasonForModification | Federal Obligation | Date |
|---|---|---|---|---|
| Not listed | $921.3k | 8/21/25 | ||
| Not listed | $1.1m | 8/1/24 |