Project Grant R44CA285062
- The National Cancer Institute (NCI) awarded a $768,437 project grant under the Cancer Treatment Research program (CFDA 93.395) to the Sanford Burnham Prebys Medical Discovery Institute (SBP) to implement high-throughput screening assays to identify chemical compounds that inhibit the chromatin reader protein SGF29. This target is of interest as it has been identified as a regulator of oncogenic transcription factors aberrantly activated in acute myeloid leukemia (AML), a disease with poor...
- This Project Grant award from the National Cancer Institute (CFDA 93.395 - Cancer Treatment Research) provides $435,773 to the University of Maryland, Baltimore to develop an engineered prodrug that selectively delivers a potent cytotoxin to tumor cells expressing hyperactive membrane-anchored serine proteases. The goal is to create an effective therapeutic strategy to target metastatic solid tumors, including ovarian, lung, and colon cancers, which often respond poorly to current...
- This Project Grant award from the National Institutes of Health (NIH) Research Infrastructure Programs (CFDA 93.351) provides $270,428 to TEO Therapeutics Incorporated, a small disadvantaged business, to develop a biomimetic platform for more efficient pharmaceutical drug development in oncology. The key products and services to be delivered include: Refining and testing a proof-of-concept hardware product line for a Shell-Free Quail Xenograft Assay, optimizing throughput and assessing...
- This $388,673 Project Grant awarded by the National Cancer Institute (NCI) under the Cancer Detection and Diagnosis Research program (CFDA 93.394) supports the development of novel statistical methods to identify and evaluate predictive biomarkers for targeted cancer therapies using data from non-randomized Phase II clinical trials. The key products of this 2-year project, led by the University of Kentucky Research Foundation, include: Novel semiparametric statistical models to identify and...
- The National Cancer Institute (CFDA 93.396 - Cancer Biology Research) awarded a $285,599 Project Grant to Sinopia Biosciences Inc., a San Diego-based company specializing in computational drug discovery and metabolomics research. The grant will support the development of a metabolomics-enabled AI/ML platform for identifying new treatments to enhance drug sensitivity in cancer. The project aims to leverage high-throughput omics technologies, machine learning, and a chemical library of ~3,300...
- 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 93.398 - Cancer Research Manpower) provides $135,594.00 to The Leland Stanford Junior University to develop novel pharmacological approaches to rewire oncogenic gene expression and induce cancer cell death. The primary objectives are to: Develop small molecule chemical inducers of proximity (CIPs) that can potently activate pro-apoptotic gene expression and kill aggressive leukemias driven by MLL gene translocations. This will...
- This Project Grant award from the National Science Foundation (CFDA 47.084 - NSF Technology, Innovation, and Partnerships) provides $275,000 to Altay Therapeutics, Inc., a biotechnology company, to develop novel small molecule therapies that target disease-causing transcription factors for treating chronic illnesses and cancers. The key goals of this SBIR Phase I project are to: (1) determine the toxicity profile of new inhibitors across human cells, (2) measure drug specificity to the target...
- This Project Grant award from the National Institute of General Medical Sciences (NIGMS) under CFDA 93.859 Biomedical Research and Research Training Program provides $308,925 to Chemia Biosciences, Inc. to develop computational technologies for discovering novel fungal natural products with potential antimicrobial and therapeutic applications. The primary goal is to create software that can predict the molecular structures of natural products encoded in fungal genomes, leveraging high-throughput...
- This Project Grant award of $549,474, provided by the National Cancer Institute under the Cancer Treatment Research federal grant program (CFDA 93.395), aims to identify and validate specific inhibitors of the enzyme phosphoribosylformylglycinamidine synthase (PFAS) as a new class of purine antimetabolites for cancer treatment. The research seeks to address a fundamental gap in understanding how PFAS contributes to the progression of liver cancer, with the long-term goal of developing new...
ASSIGNING MODE OF ACTION TO PHENOTYPICALLY DISCOVERED ANTICANCER LEADS. - ABSTRACT. ASSIGNING THE MODE OF ACTION TO BIOACTIVE COMPOUNDS IS AN ESSENTIAL STEP IN DRUG DISCOVERY AND A MAJOR CHALLENGE IN CHEMICAL BIOLOGY. THIS PROBLEM IS PARTICULARLY ACUTE FOR DRUG DISCOVERY FROM NATURE. NATURAL PRODUCTS (NP) PROVIDE UNIQUE SCAFFOLDS NOT FOUND IN SYNTHETIC LIBRARIES, AND THE ABUNDANT NP COLLECTIONS ARE A VAST DIVERSITY RESERVOIR FOR DRUG DEVELOPMENT. HOWEVER, THE LACK OF MECHANISTIC UNDERSTANDING IS A MAJOR HINDRANCE TO PRECLINICAL DEVELOPMENT. EXISTING HTS TECHNIQUES PERMIT EFFICACIOUS SCREENING OF NP LIBRARIES, BUT THE FOLLOW-UP PURIFICATION, CHEMICAL STRUCTURE IDENTIFICATION, AND MOA ASSESSMENT OF PURIFIED METABOLITES ARE LENGTHY, COSTLY, AND TEDIOUS. WORSE, AS THE MOA IS DETERMINED ONLY AT THE END, MUCH EFFORT IS WASTED ON ISOLATING REDUNDANT AND IRRELEVANT HITS. SINCE THE PURIFICATION OF ACTIVE CONSTITUENTS REQUIRES SIGNIFICANT WORK, IT SHOULD BE PERFORMED ONLY FOR HIGH-VALUE MOLECULES WITH PHARMACOLOGICAL NOVELTY. CURRENTLY USED MOA ASSESSMENT APPROACHES EMPLOY VARIOUS PLATFORMS, INCLUDING PANELS OF CELL-BASED AND BIOCHEMICAL ASSAYS AND SYSTEMS BIOLOGY TECHNIQUES, BUT NONE PROVIDE A SATISFACTORY SOLUTION FOR THE MOA PROBLEM. HERE, WE DESCRIBE AN ALTERNATIVE MOA EVALUATION TECHNIQUE BASED ON A SYSTEMS BIOLOGY APPROACH DEVELOPED AT ATTAGENE. UNDER THIS APPROACH, CELL RESPONSE IS CHARACTERIZED BY THE ACTIVITY OF TRANSCRIPTION FACTORS (TF) THAT LINK CELLULAR SIGNALING PATHWAYS TO GENES. THE ENABLING TECHNOLOGY IS THE FACTORIAL, A PROPRIETARY ATTAGENE PLATFORM FOR QUANTITATIVE TF ACTIVITY PROFILING (TFAP). WE DEMONSTRATED THAT TFAP SIGNATURES ENABLE A STRAIGHTFORWARD MOA ASSESSMENT OF CHEMICALS BY PINPOINTING PERTURBED BIOPROCESSES AND CELL SYSTEMS. MOST IMPORTANTLY, THIS APPROACH DOES NOT INVOLVE COMPLEX BIOINFORMATIC INFERENCES. HERE, WE WILL EXTEND THE TFAP APPROACH TO ASCRIBE THE MOA TO ANTICANCER DRUG LEADS FROM NATURE. IN PILOT STUDIES, WE EXAMINED TFAP SIGNATURES OF APPROVED ANTICANCER DRUGS AND ANTICANCER FUNGAL METABOLITES. WE FOUND THAT (I) MAJOR CLASSES OF APPROVED ANTICANCER DRUGS HAVE SPECIFIC TFAP SIGNATURES; (II) ANTICANCER FUNGAL METABOLITES, TOO, HAVE DISTINCT TFAP SIGNATURES. MOREOVER, THESE SIGNATURES ALLOWED CORRECT IDENTIFICATION OF METABOLITES' MOA; (III) MOST UNEXPECTEDLY, CRUDE FUNGAL EXTRACTS AND PURIFIED ACTIVE METABOLITES SHOWED IDENTICAL TFAP SIGNATURES. THESE DATA SUGGEST A NEW APPROACH TO THE MECHANISTIC EVALUATION OF NATURE-DERIVED ANTICANCER LEADS. WE WILL DEVELOP THIS APPROACH WITH A UNC-GREENSBORO TEAM WITH OVER 700 PURIFIED ANTICANCER FUNGAL METABOLITES WITH ESTABLISHED STRUCTURES. FIRST, WE WILL OBTAIN TFAP SIGNATURES FOR ALL FDA-APPROVED DRUGS AND A LARGE FRACTION OF THE UNCG LIBRARY (SA1). THEN, WE WILL ANALYZE THESE TFAP DATASETS AND COMPARE THE 'MOA SPACES' FOR THE ANTICANCER FUNGAL METABOLITES AND APPROVED DRUGS TO IDENTIFY METABOLITES WITH NOVEL MOA (SA2). FINALLY, WE WILL VALIDATE THE APPROACH TO IDENTIFY THE MOA IN CRUDE FUNGAL EXTRACTS, ALLOWING PRIORITIZING HIGH-VALUE STRAINS FOR PURIFICATION (SA3). IMPLEMENTING THIS PROPOSAL WILL ESTABLISH A NEW APPROACH THAT USES A SINGLE INSTRUMENTAL PLATFORM, DOES NOT INVOLVE BIOINFORMATIC ANALYSES, AND ALLOWS ASCRIBING THE MOA TO UNPURIFIED NP EXTRACTS.
Mod # | Description | ReasonForModification | Federal Obligation | Date |
|---|---|---|---|---|
| Not listed | $1.0m | 8/2/24 | ||
| Not listed | $0 | 8/1/24 | ||
| Not listed | $1.0m | 9/21/23 |