Project Grant R44CA281497
- This Project Grant award from the National Cancer Institute (CFDA 93.395 Cancer Treatment Research) provides $400,000 to Senex Biotechnology Inc. to develop a nanoparticle formulation of a mediator kinase inhibitor drug candidate, SNX631-6, for the treatment of peritoneal ovarian cancer metastases. The goal is to optimize the nanoparticle formulation for improved pharmacokinetics and efficacy compared to oral administration when delivered intraperitoneally. The project will assess the...
- This $406,500 Project Grant award from the National Cancer Institute (CFDA 93.395 - Cancer Treatment Research) supports the development of a novel intratumoral delivery system by Absco Therapeutics, Inc. (Abscotx) to enhance solid tumor immunotherapy. The Oncolymer platform utilizes a thermoresponsive hydrogel and FDA-approved imaging agent to enable sustained, localized delivery of therapeutic agents like immune-sensitizing siRNA and the TLR7 agonist imiquimod. Preclinical studies have...
- This $314,685 Project Grant award from the National Cancer Institute (CFDA 93.395 - Cancer Treatment Research) supports the development of Persistence Therapeutics, Inc.'s novel "SynthNode" approach for CAR T cell therapy. The SynthNode is an implantable device the size of a dime that mimics the function of a lymph node, producing potent, antigen-specific CAR T cells that persist long-term for improved patient outcomes. This fast-track Phase I/II project will complete prototyping,...
- This Project Grant award from the National Cancer Institute (CFDA 93.395 - Cancer Treatment Research) provides $269,280 to the Translational Genomics Research Institute (TGen) to investigate the use of a senescent cell targeted antibody (SIWA318) for improving the efficacy of standard chemotherapy or immune checkpoint inhibitors in preclinical models of pancreatic ductal adenocarcinoma (PDAC). The key products and services to be delivered under this 2-year award include: 1) Determining the...
- This SBIR Phase I project, awarded by the National Science Foundation (NSF) under the NSF Technology, Innovation, and Partnerships (TIP) program (CFDA 47.084), aims to develop a method to turn on cancer immunotherapies only at the site of disease. The $275,000 award will support Synsorybio, Inc., a for-profit organization, in creating protein switches that activate immunotherapies in response to disease signals, rather than indiscriminately throughout the body. This approach seeks to improve the...
- 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 $399,300 Project Grant awarded by the National Cancer Institute (CFDA 93.395 - Cancer Treatment Research) supports the development of an innovative cancer immunotherapy approach at Tiba Biotech LLC, a biotechnology company based in Cambridge, Massachusetts. Specifically, the grant funds the creation of a targeted delivery system that combines enhanced self-amplifying RNA (esRNA) technology and spleen-targeting nanoparticle delivery materials. This platform is designed to stimulate a...
- This Project Grant award from the National Cancer Institute (CFDA 93.395 - Cancer Treatment Research) provides funding of $399,970 to Duo Oncology Inc. to develop DUO-207, an ultrasmall nanoparticle formulation designed to improve the delivery and efficacy of combination chemotherapy for advanced pancreatic cancer. The key product being developed under this award is DUO-207, which combines a polymer-conjugated gemcitabine and paclitaxel in a single 14nm nanoparticle. This novel formulation...
- This Project Grant award from the National Cancer Institute (CFDA 93.395 - Cancer Treatment Research) provides $2,253,869 to Celdara Medical, LLC to develop CM-HZ01, a novel non-alpha-IL2 therapeutic for the treatment of metastatic melanoma. The funding supports advancing CM-HZ01 to the Investigational New Drug (IND) application stage, with the goal of providing a best-in-class immunotherapy for patients with limited effective treatment options for this deadly form of skin cancer. The project...
- 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...
PROCESS DEVELOPMENT AND PRECLINICAL ADVANCEMENT OF A NOVEL NANOPARTICLE FORMULATION FOR IMMUNE ACTIVATION - SUMMARY DESPITE THE SUCCESS OF IMMUNE CHECKPOINT INHIBITORS FOR SOME TYPES OF CANCER, THE OVERALL RESPONSE RATE REMAINS SUBOPTIMAL. THE MAJORITY OF SOLID TUMORS EXCLUDE T-CELLS (TERMED "COLD"), THUS PRESENTING A KEY LIMITING FACTOR FOR CANCER IMMUNOTHERAPY. ACTIVATION OF THE CGAS-STING PATHWAY HAS BEEN DEMONSTRATED TO INDUCE ANTI-TUMOR IMMUNE RESPONSES WITH IMPRESSIVE EFFICACY IN PRECLINICAL STUDIES. HOWEVER, CLINICAL STAGE STING AGONISTS, BASED ON CYCLIC DINUCLEOTIDES (CDNS), SUFFER FROM MAJOR LIMITATIONS, INCLUDING: 1) ADMINISTRATION VIA INTRATUMORAL INJECTION. STING AGONISTS ADMINISTERED INTRATUMORALLY ARE CLEARED RAPIDLY, AND INTRATUMORAL INJECTION REDUCES THEIR UTILITY AGAINST METASTATIC CANCER. 2) CONVENTIONAL STING AGONISTS DO NOT READILY CROSS THE CELL MEMBRANE, FAILING TO MAXIMIZE ACTIVATION OF STING LOCATED WITHIN THE CYTOSOL. 3) CELL PENETRATION OF CONVENTIONAL STING AGONISTS IS NOT BIASED TO THE DENDRITIC CELLS AND MACROPHAGES WHICH IS THE CELL TYPE NEEDED TO DRIVE AN ANTI-TUMOR IMMUNE RESPONSE. 4) CONVENTIONAL STING AGONISTS DO NOT WORK ACROSS THE HUMAN POPULATION DUE TO VARIATIONS IN STING HAPLOTYPES. INDEED, IN RECENT PHASE I CLINICAL TRIALS, STING AGONISTS GIVEN INTRATUMORALLY EXHIBITED ONLY MARGINAL EFFICACY. HENCE, A POTENT PLATFORM FOR SYSTEMIC DELIVERY OF STING AGONISTS IS URGENTLY NEEDED TO IMPROVE PATIENT OUTCOMES. SAROS THERAPEUTICS IS DEVELOPING A NOVEL NANOTECHNOLOGY (REFERRED TO AS SNP) THAT ADDRESSES EACH OF THESE LIMITATIONS BY: 1) INCORPORATING MANGANESE ALONG WITH CDA, A CDN-BASED STING AGONIST, IN THE NANO- FORMULATION. WE HAVE SHOWN THAT MN AUGMENTS THE ACTIVATION OF STING BY CDA, LOWERING THE DOSE NECESSARY TO ACHIEVE A SIGNIFICANT BIOLOGIC (TYPE I IFN EXPRESSION) AND THERAPEUTIC (TUMOR GROWTH/SURVIVAL) BENEFIT. 2) INCORPORATING THE MN-CDA COMPLEX IN A NANOPARTICLE PROTECTS THE CDA FROM DEGRADATION, EXTENDING HALF-LIFE AND FACILITATING UPTAKE BY MYELOID CELLS (DC, MACROPHAGES) THAT DRIVES A TYPE I IFN RESPONSE BY THE IMMUNE CELLS IN THE TME. THE COMBINATION OF MN+CDA INCORPORATED INTO A NANOPARTICLE FORMULATION ALSO IMPROVES THE SAFETY PROFILE OF THIS THERAPY AND ALLOWS ADMINISTRATION BY IV, ENSURING SYSTEMIC EXPOSURE AND IMPROVED RESPONSES IN SETTINGS OF MULTIPLE TUMORS AND METASTASIS. BASED ON OUR COMPELLING DATA, WE WILL EXAMINE THE POTENCY OF SNP PREPARATIONS IN HUMAN PATIENT BIOPSY SAMPLES. WE WILL ASSESS PHARMACOKINETIC AND TISSUE RETENTION CHARACTERISTICS OF SNP IN BOTH MICE AND NON-HUMAN PRIMATES AND BENCHMARK AGAINST OTHER STING AGONISTS. WE WILL DEVELOP MICROFLUIDIC METHODS FOR LARGE SCALE PRODUCTION OF SNP IN ANTICIPATION OF TRANSFER TO A CONTRACT DEVELOPMENT AND MANUFACTURING ORGANIZATION (CDMO). RESULTS FROM THESE STUDIES WILL ACCELERATE THE DEVELOPMENT OF OUR NOVEL NANOTECHNOLOGY WITH THE AIM OF QUICKLY BRINGING IMMUNOTHERAPY'S BENEFITS TO MORE PATIENTS WITH CANCER.
Mod # | Description | ReasonForModification | Federal Obligation | Date |
|---|---|---|---|---|
| Not listed | $850.2k | 8/22/24 | ||
| Not listed | $1.2m | 9/19/23 |