Project Grant R21CA287211
- This $255,730 National Science Foundation project grant supports the development of self-assembling molecular brachytherapy for treatment of metastatic cancer. The goal is to enable radiation therapies for metastatic cancer, which accounts for approximately 90% of cancer deaths in the United States each year. The grantee, Oncurie, LLC, seeks to advance a radiotherapy approach that exploits cancer cells themselves as catalysts for therapeutic delivery. Specifically, the company will develop an...
- This Project Grant award from the National Cancer Institute (CFDA 93.395 - Cancer Treatment Research) provides funding of $799,962 to Tripill Biotechnology, Corp. to develop radiolabeled PSMA agents with low salivary gland uptake for improved prostate cancer imaging and therapy. The key products and services to be delivered include: Constructing PSMA derivative compounds, such as NOTA-UNC-PSMA2, that can selectively reduce salivary gland uptake while maintaining high tumor uptake in prostate...
- This Project Grant award of $676,567.00 was provided by the National Cancer Institute (NCI), under the federal Cancer Treatment Research program (CFDA 93.395), to The Regents of the University of California, San Francisco (UCSF). The award will fund a multi-year research project to systematically test a transforming growth factor beta (TGFB) targeted theranostic radiopharmaceutical therapy approach across preclinical cancer models. The research aims to assess the biological effectiveness of...
- This $384,863 Project Grant award from the National Institute of Biomedical Imaging and Bioengineering (NIBIB) under the "Discovery and Applied Research for Technological Innovations to Improve Human Health" (CFDA 93.286) program supports research to develop a novel radiotracer imaging agent for detecting Gram-positive bacterial infections associated with implanted medical devices. The key products and services to be delivered include: In vitro testing of a bivalent radiotracer agent...
- This $399,669 federal Project Grant awarded by the National Cancer Institute (CFDA 93.395 - Cancer Treatment Research) aims to establish the feasibility of commercializing a personalized and multi-targeted adoptive T cell therapy (ATCT) for glioblastoma (GBM), the most common and deadly primary brain tumor. The key products or services to be delivered under this grant include: Evaluating the ability of the applicant's Prussian blue nanoparticle-based photothermal therapy (PBNP-PTT) platform to...
- This Project Grant award from the National Science Foundation's (NSF) Technology, Innovation, and Partnerships program (CFDA 47.084) provides $275,000 to Targeting Systems to develop a novel intramuscular gene delivery platform capable of sustained expression and endogenous secretion of bispecific natural killer cell engager (BIKE) therapeutics to treat solid tumors like hepatocellular carcinoma. The platform aims to deliver BIKEs in a less invasive manner than current immunotherapies,...
- This federal Project Grant award, valued at $630,171.00, was provided by the National Cancer Institute under the Cancer Treatment Research program (CFDA 93.395). The award aims to develop a first-in-class targeted radiopharmaceutical therapy (RPT) for the treatment of triple-negative breast cancer (TNBC), which lacks effective hormonal therapies. The key product being developed is a novel variable new antigen receptor (VNAR) binding domain from a nurse shark that targets the c-Met receptor,...
- This Project Grant award from the National Cancer Institute (CFDA 93.395 - Cancer Treatment Research) provides $635,248 to Trustees of Boston University to develop a novel self-amplifying ribonucleic acid (SARNA) technology encoding a bispecific T cell engager (BITE) antibody for the treatment of lung cancer. The key goals are to: Design 5-methylcytidine (5MC) modified SARNA constructs encoding BITE antibodies and evaluate their protein expression performance in vitro. Assess the in vitro and in...
- 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...
- The Department of the Army Medical Command awarded a $3,029,840 project grant to the Boston VA Research Institute under the Military Medical Research and Development program (CFDA 12.420). The grant will fund the development of a quadrifunctional cancer-specific microtheranostic platform called SPRINT for the management of bladder cancer from July 1, 2022 to June 30, 2025. The platform combines photodynamic diagnosis, photodynamic therapy, microbiotherapy and local immunotherapy in a single...
AN ENGINEERED BACTERIAL REPORTER GENE FUSION FOR RADIOTHERANOSTICS - PROJECT ABSTRACT THE MOST IMPORTANT UNMET NEED IN ONCOLOGY IS TO OVERCOME THE LACK OF EFFECTIVE THERAPY FOR ADVANCED SOLID TUMORS IN ADULTS AND CHILDREN. DESPITE MAJOR ADVANCES IN IMMUNOTHERAPY, RADIATION THERAPY, PRECISION MEDICINE, AND NUCLEAR MEDICINE, THE VAST MAJORITY OF ADVANCED SOLID TUMORS PRESENTING CLINICALLY TODAY ARE STILL INCURABLE. RADIOTHERANOSTIC THERAPIES OFFER THE TREMENDOUS ADVANTAGES OF PRECISION MEDICINE AND PATIENT SELECTION OVER OTHER CANCER TREATMENT MODALITIES BUT LEAD TO OBJECTIVE RESPONSES IN ONLY 30-60% OF PATIENTS. INNOVATIONS IN RADIOPHARMACEUTICAL THERAPY (RPT) TO ADDRESS THE MAJOR BARRIERS TO CONSISTENT TUMOR CONTROL ARE SORELY NEEDED: SUBOPTIMAL DRUG DELIVERY AND LACK OF RETENTION OF RADIONUCLIDES AT THE TARGET SITE. FOR CANCER, RPT IS ADMINISTERED AS AN UNCONJUGATED OR CHELATED RADIONUCLIDE OR IN COMBINATION WITH A DELIVERY VEHICLE, SUCH AS A PEPTIDE OR ANTIBODY (RADIOIMMUNOTHERAPY). THIS PROJECT AIMS TO DEVELOP A HIGHLY VERSATILE RPT PLATFORM THAT HARNESSES ENGINEERED BACTERIA TO CONCENTRATE THERAPEUTIC RADIONUCLIDES IN TUMORS. WE HYPOTHESIZE THAT AN ENGINEERED BACTERIAL FUSION PROTEIN CAN SERVE AS AN IN VIVO ARTIFICIAL RECEPTOR FOR A SMALL RADIONUCLIDE CARRIER (AS ANTI-2,2,2",2"'- (1,4,7,10-TETRAAZACYCLODODECANE-1,4,7,10-TETRAYL)TETRAACETIC ACID (DOTA)-RADIOHAPTEN). THIS CONSTRUCT, DOTA- BINDING SALMONELLA, CAN SPECIFICALLY COLONIZE TUMORS FOLLOWING INTRAVENOUS ADMINISTRATION AND IS CLEARED VIA THE LIVER AND SPLEEN. NOTABLY, BACTERIA DO NOT COLONIZE IN THE RADIOSENSITIVE RED BONE MARROW OR KIDNEYS, WHICH ARE TYPICALLY ORGANS-AT-RISK DURING RPT. BASED ON THE KNOWN PHARMACOKINETICS, BIODISTRIBUTIONS, AND CLEARANCE PROPERTIES OF ENGINEERED BACTERIA, THE DOTA-RADIOHAPTEN CAN BE INJECTED PRECISELY AT THE TIME OF PEAK BACTERIAL TUMOR-TO-NORMAL TISSUE ACCUMULATION RATIOS (EG, AFTER 48 HOURS, TUMOR-TO-SPLEEN RATIOS OF 104 ARE TYPICAL). THE INTRATUMORAL BACTERIA WILL CAPTURE THE DOTA-RADIOHAPTEN AND PLASMA DOTA-RADIOHAPTEN WILL BE RAPIDLY AND EFFICIENTLY EXCRETED FROM THE BODY VIA THE RENAL ROUTE. THIS PROJECT HAS TWO AIMS. IN AIM 1 WE WILL GENETICALLY ENGINEER SALMONELLA TO EXPRESS SURFACE-ANCHORED DPB CHARACTERIZE ITS FUNCTIONALITY IN VITRO. IN AIM 2, WE WILL DEMONSTRATE THE EFFICACY OF OUR PROPOSED RADIO-THERANOSTIC TREATMENT PARADIGM BASED ON SALMONELLA-DPB + 86/90Y-DOTA IN MOUSE TUMOR MODELS. THIS STRATEGY HAS SEVERAL SPECIFIC ADVANTAGES OVER OTHER RADIOIMMUNE APPROACHES. THE NUMBER OF RADIOHAPTEN (DOTA) BINDING SITES PER GRAM OF TUMOR HAS THE POTENTIAL TO BE ORDERS OF MAGNITUDE GREATER THAN THE NUMBER OF THE SURFACE-MARKER SITES ON CANCER CELLS. THE STRATEGY WILL PRODUCE UNPRECEDENTED THERAPEUTIC INDICES FOR CRITICAL ORGANS (TUMOR VS. KIDNEYS AND BONE MARROW) BECAUSE SALMONELLA ARE CLEARED FROM THE BLOOD HOURS AFTER INJECTION, AND ACCUMULATION IN THE KIDNEYS IS MINIMAL. SALMONELLA, ENGINEERING WITH ITS HIGH TUMOR SPECIFICITY, DEEP TISSUE PENETRATION, AND PLASTICITY, MAKE IT A HIGHLY PROMISING FOR RPT.ENGINEERED SALMONELLA, COMBINED WITH IN VIVO CAPTURE OF SAFE, NON-IMMUNOGENIC, BIOORTHOGONAL DOTA-RADIOHAPTENS, OFFER A HIGHLY PROMISING ENGINEERED BACTERIA RADIOTHERANOSTIC PLATFORM FOR ONCOLOGY.
Mod # | Description | ReasonForModification | Federal Obligation | Date |
|---|---|---|---|---|
| Not listed | $0 | 5/24/24 | ||
| Not listed | $434.9k | 5/17/24 |
GrantNumber | Description | Subgrantee | Prime Award | Dollars Obligated | Updated At |
|---|---|---|---|---|---|
235235S | University Of Mass At Boston | Project Grant R21CA287211 | $74.4k | 9/19/24 |