Project Grant R33CA291125
- This $386,279 Project Grant awarded by the National Cancer Institute (CFDA 93.394 - Cancer Detection and Diagnosis Research) aims to develop a microfluidic device for personalized immunotherapy screening on core needle biopsies from cancer patients. The project will: Create a "core needle biopsy" microfluidic cassette and protocols for functional immune assays, and Validate the microfluidic approach for screening immune checkpoint blockade therapy using core needle biopsies from...
- This 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 program (CFDA 93.286) aims to develop advanced deep learning algorithms to enhance the management of multiple myeloma (MM), a type of hematologic cancer. The $755,336 award, with a period of performance from August 1, 2025 to June 30, 2029, will focus on two key objectives: 1) Developing automated...
- This federal Project Grant award of $620,521, provided by the National Cancer Institute (CFDA 93.394 - Cancer Detection and Diagnosis Research), supports an integrated mathematical modeling approach to define how the aging bone ecosystem drives multiple myeloma evolution and treatment response. The key products and services to be delivered under this 5-year award, which commenced on January 1, 2025, include: Developing a novel hybrid cellular automata mathematical model to describe the...
- This $516,355.74 Project Grant from the National Cancer Institute, part of the Department of Health and Human Services, aims to develop new technologies for immunotherapy monitoring and liquid biopsy through the Cancer Research Manpower federal grant program. Specifically, the Massachusetts General Hospital will utilize the funding to create an ultra-high sensitive platform that can map single extracellular vesicles to parent cells at the single particle level and apply it to profile tumor...
- This Project Grant award from the National Cancer Institute (CFDA 93.395 - Cancer Treatment Research) provides $173,500.00 to Health Research, Inc. to investigate the effects of CXCR1/2 inhibition on the immune microenvironment of patients with multiple myeloma. The primary goal is to characterize the phenotype and transcriptional changes in myeloid cells in the tumor microenvironment of multiple myeloma patients, and to evaluate the efficacy of CXCR2 inhibitors in preclinical models. The...
- This Project Grant from the National Science Foundation's Technology, Innovation, and Partnerships program (CFDA 47.084) provides $275,000 to Dcan Biosciences LLC to develop an advanced microfluidic system for cancer diagnosis and monitoring. The system aims to isolate and assess circulating tumor cells (CTCs) and CTC clusters (CTCCs) from patient blood samples to enable highly sensitive and accurate liquid biopsies. Key objectives include designing a hybrid microfluidic device for...
- This federal Project Grant award of $100,760 from the National Cancer Institute's (NCI) Cancer Research Manpower program (CFDA 93.398) supports research conducted by the Sloan-Kettering Institute for Cancer Research in New York City. The project aims to engineer biomaterials that can modulate the tumor immune microenvironment, with a focus on developing an innovative RNA interference (RNAi) therapy to inhibit the cancer-promoting factors cyclophilin A and E-selectin in multiple myeloma....
- This $295,924 Project Grant awarded by the National Institute of General Medical Sciences (NIGMS) Biomedical Research and Research Training program (CFDA 93.859) aims to develop and demonstrate a high-yield microfluidic device for the enrichment and capture of CD3+ T cells. This device is intended to improve the manufacturing of autologous and allogenic engineered cell therapies such as CAR-T, which currently have time-consuming and costly production processes. The key objectives are to (1)...
- This $1,171,872 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 program (CFDA 93.286) aims to develop AI-assisted quantitative photon-counting-detector CT imaging capabilities for cytogenetic risk prediction and treatment response assessment in multiple myeloma. The key products and services to be delivered include: Development and validation of a deep...
- The National Cancer Institute (NCI), under the Cancer Detection and Diagnosis Research CFDA program (93.394), has awarded a $3,036,844 Project Grant to the University of Southern California (USC) to develop a wireless, wearable thermo-activator device for precise, localized control of chimeric antigen receptor (CAR) T cell therapy in solid tumors. The project aims to overcome limitations of current MRI-guided focused ultrasound approaches by creating a flexible, portable system that can remotely...
MICROPHYSIOLOGICAL PLATFORM FOR ANALYZING MULTIPLE MYELOMA'S TUMOR MICROENVIRONMENT, ENABLING IMMUNOTHERAPY ASSESSMENT AND DRUG SCREENING. - ABSTRACT THE TUMOR MICROENVIRONMENT (TME) PLAYS A CRITICAL ROLE IN HEMATOLOGIC MALIGNANCIES, ESPECIALLY IN MULTIPLE MYELOMA (MM). EACH CELLULAR AND NON-CELLULAR COMPONENT OF THE TME EXERTS A DIFFERENT EFFECT ON MM CELL SURVIVAL, PROLIFERATION, IMMUNE EVASION, AND RESISTANCE TO TREATMENT. SEVERAL STUDIES HAVE SHOWN THAT CAR- T THERAPY PRODUCES AN OVERALL RESPONSE RATE OF 78% IN THE RELAPSED/REFRACTORY MM SETTING; HOWEVER, MANY PATIENTS STILL RELAPSE, AND THE MEDIAN TIME TO DISEASE PROGRESSION IS ABOUT 1 YEAR. THEREFORE, THERE IS AN URGENT NEED TO DEFINE MECHANISMS OF DISEASE PROGRESSION AND RESISTANCE TO CAR-T AND BISPECIFIC ANTIBODIES USING AN IN VITRO CELL CULTURE SYSTEM THAT MIMICS THE COMPLEX TME. CONTINUOUS PROGRESS IN TISSUE ENGINEERING, INCLUDING THE DEVELOPMENT OF VARIOUS 3D SCAFFOLDS AND MICROFLUIDIC SYSTEMS, HAS IMPROVED THE DIVERSITY, FIDELITY, AND CAPACITY OF CULTURE MODELS THAT CAN BE USED IN CANCER AND OTHER DISEASE RESEARCH. MOST 3D IN VITRO CULTURE SYSTEMS LACK THE INTEGRAL TME AND DYNAMIC PERFUSION AND/OR INFLUENCE IMMUNE-TUMOR CROSSTALK OR/AND PROLONGED CULTURE CAPABILITIES. IN ADDITION, MOST MODELS CANNOT MIMIC THE HYPOXIC GRADIENTS OBSERVED IN TUMORS, WHICH DRAMATICALLY REDUCES THE EFFICACY OF MOLECULAR AND CELLULAR THERAPEUTICS. THE HYPOXIC TME LIKELY PROTECTS TUMORS AGAINST IMMUNOTHERAPIES BY ALTERING CELLULAR METABOLISM AND INDUCING IMMUNE SUPPRESSION. THEREFORE, AN IDEAL EXPERIMENTAL IN VITRO CELL CULTURE SYSTEM SHOULD MIMIC THE HETEROGENEOUS NATURE OF THE HYPOXIC TME TO ALLOW A MORE COMPLETE UNDERSTANDING OF CANCER CELL AND IMMUNE CELL BIOLOGY, IMMUNOTHERAPY VALIDATION, AND DEVELOPMENT OF EFFICACIOUS TREATMENT STRATEGIES FOR CLINICAL APPLICATION. TO ADDRESS THE AFOREMENTIONED LIMITATIONS, IN THIS PROPOSAL, WE WILL FOCUS ON DEVELOPING A NOVEL MICROFLUIDIC DROPLET-BASED PLATFORM (MDP) TECHNOLOGY TO GENERATE AND ANALYZE A 3D BIOMIMETIC MULTICELLULAR IMMUNOGENIC TUMOR MODEL AND TEST ITS CAPABILITIES TO (1) ESTABLISH MULTIPLE LEVELS OF HYPOXIA WITHIN THE SAME TUMOR-CHIP FOR PARALLEL PROCESSING; (2) INVESTIGATE SPATIOTEMPORAL INTERACTION BETWEEN TME CANCER- IMMUNE CELLS DURING THERAPY; (3) QUANTIFY THE IMPACT OF STATE-OF-THE-ART TARGETED IMMUNOTHERAPY EFFICACY AND DEFINE MULTIPARAMETRIC (DYNAMIC, SECRETOMIC, AND TRANSCRIPTOMIC) RESPONSES FOR A COMPREHENSIVE ANALYSIS OF CELL FATE. WE WILL INCORPORATE PATIENT TUMOR CELLS AND THEIR MICROENVIRONMENT IN MDP TO PREDICT THE STATUS OF THE PATIENT AS A POTENTIAL RESPONDER OR NON-RESPONDER. POTENTIAL RESPONDERS TO IMMUNOLOGIC THERAPY SUCH AS CAR-T WILL BENEFIT FROM NOT HAVING TO WAIT FOR SEVERAL MONTHS IN CLINIC TO DETERMINE WHETHER THE THERAPY HAS ACHIEVED RESPONSE OR NOT, WHILE POTENTIAL NON-RESPONDERS WILL BE SPARED THE SIDE-EFFECTS OF NON-EFFECTIVE TREATMENT AND HELP CLINICIANS CHOOSE OTHER FORMS OF THERAPY. OUR APPROACH WILL THEREFORE RESULT IN THE DEVELOPMENT OF A VERSATILE AND MULTIFUNCTIONAL SYSTEM THAT CAN SERVE AS A NEW AND INNOVATIVE TECHNOLOGY FOR DEEP ANALYSIS OF CELL-CELL INTERACTIONS AND PREDICTING THE OPTIMAL THERAPY FOR INDIVIDUAL PATIENTS AND SIGNIFICANTLY ADVANCE THE GOAL OF PERSONALIZED MEDICINE.
Mod # | Description | ReasonForModification | Federal Obligation | Date |
|---|---|---|---|---|
| Not listed | $410.8k | 7/24/25 | ||
| Not listed | $427.1k | 7/19/24 |