Project Grant R01CA293950
- This $295,308 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), will support the development and validation of a novel class of scanning probe microscopy (SPM) probes for rapid identification of infectious disease agents. The awardee, Actoprobe LLC, aims to dramatically improve the sensitivity and spatial resolution of scanning...
- The National Cancer Institute (NCI), under the Cancer Detection and Diagnosis Research Federal Grant Program (CFDA 93.394), has awarded a $658,336 Project Grant to Rarecyte, Inc. to develop an "ORION2" approach for highly multiplexed spatial profiling of tumors and tissues for cancer research and diagnosis. The project aims to extend Rarecyte's existing ORIONTM technology, which can collect 18-20 plex immunofluorescence data and diagnostic-grade H&E imaging on the same tissue...
- 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 of $306,700 from the National Institute of General Medical Sciences (NIGMS), under the Biomedical Research and Research Training program (CFDA 93.859), aims to develop a novel, scalable, and cost-effective spatial biology platform for protein profiling. The platform will enable sub-cellular resolution analysis of protein presence and abundance using proprietary barcoded tags and an isothermal workflow. The key goals of the project are to: 1) demonstrate a semi-ordered...
- The National Cancer Institute (NCI) awarded a $400,000 Project Grant under CFDA 93.394 (Cancer Detection and Diagnosis Research) to O2M Technologies LLC to develop a Multifunctional Imager (MFI) that can simultaneously acquire tissue oxygen pressure (pO2) and pH maps using electron paramagnetic resonance imaging (EPRI) techniques. The 12-month project aims to create a 25 MT Halbach-type permanent magnet, new multi-modal transmit-receive electronics, and the integrated MFI instrument. This...
- This Project Grant award from the National Institute of General Medical Sciences (NIGMS), under the Biomedical Research and Research Training Program (CFDA 93.859), is focused on developing a novel high-throughput, high-content imaging platform for analyzing extracellular vesicles (EVs) at the single-particle level. The $298,999 award to Numentus Technologies Inc. will fund the construction, testing, and application of this platform to detect and characterize EV subpopulations, including...
- This Project Grant award from the National Institute of General Medical Sciences (NIGMS), under the Biomedical Research and Research Training program (CFDA 93.859), provides $388,000.00 to Northeastern University to develop and validate a new class of engineered macrophages capable of both tracking and modulating inflammation in vivo. The key products and services to be delivered under this 5-year project include: Equipping macrophages with multi-modal imaging markers detectable across...
- This Project Grant award from the National Cancer Institute (CFDA 93.394 - Cancer Detection and Diagnosis Research) provides $676,006 to The Regents of the University of California, San Francisco (UCSF) to conduct research aimed at early identification of resistance to immunotherapy for cancer treatment. The key products and services to be delivered under this 5-year award include: Developing and testing non-invasive imaging strategies, such as PET scans and implantable fluorescence sensors,...
- This Project Grant award of $1,320,861.00 from the National Cancer Institute's Cancer Treatment Research program (CFDA 93.395) aims to establish a simplified and accessible procedure for simultaneous extraction of DNA, RNA, and protein from tumor touch imprints. The objective is to democratize cancer biobanking by providing a cost-effective solution that addresses resource limitations at smaller research institutes. The project, undertaken by the primary awardee GE Medical Systems Information...
- The National Institute of General Medical Sciences (NIGMS) awarded a $333,048 Project Grant under the Biomedical Research and Research Training program (CFDA 93.859) to Imagen Bioworks Inc. in Houston, TX. The goal of this 1-year project is to develop a versatile 2-photon microscopy platform, dubbed 2P-SPOTLIGHT, to isolate individual cells from 3D tissue samples and 3D cell cultures based on their spatial and temporal properties. This will enable researchers to conduct downstream multi-omics...
DEVELOPMENT OF A NEW MULTIPLEXED IMAGING STRATEGY FOR IMMUNOPROFILING USING RAMAN-ACTIVE NANOPARTICLES - PROJECT SUMMARY THE -OMICS ERA HAS MADE IT POSSIBLE TO IDENTIFY SEVERAL MOLECULAR MARKERS INVOLVED IN PREDICTING SURVIVAL AND RESPONSE TO THERAPIES. WE CURRENTLY LACK AN EASY WAY TO OBTAIN HIGH CONTENT MOLECULAR INFORMATION WHILE PROVIDING HIGH RESOLUTION SPATIAL PROFILING ACROSS A PATIENT'S TISSUE. THIS PROPOSAL AIMS TO PROVIDE PHYSICIANS WITH AN ENTIRELY NEW MULTIPLEXED MOLECULAR IMAGING TECHNOLOGY THAT HAS THE POTENTIAL TO OFFER BOTH HIGH CONTENT MOLECULAR EXPRESSION AND SPATIAL PROFILING IN A SINGLE HISTOLOGY IMAGE. RAMAN SPECTROSCOPY IN CONJUNCTION WITH SURFACE ENHANCED RAMAN SCATTERING (SERS) NANOPARTICLES (NPS) IS AN OPTICAL IMAGING TECHNIQUE THAT CAN OFFER UNSURPASSED SENSITIVITY AND MULTIPLEXING CAPABILITIES TO THE FIELD OF HISTOLOGY IMAGING WITH THE POTENTIAL TO PROVIDE RICH MOLECULAR DETAILS ON THE MICROSCOPIC LEVEL. CLINICIANS WILL BE ABLE TO UTILIZE THE IMAGING STRATEGY ON THE SAME TISSUE SECTIONS PREPARED FOR HISTOLOGY. INCORPORATING IT INTO THE PATHOLOGY WORKFLOW COULD ENABLE PHYSICIANS TO BETTER UNDERSTAND THE PATIENT'S MOLECULAR PROFILE AND STRATIFY PATIENTS TO RECEIVE THE MOST EFFECTIVE THERAPEUTIC REGIMEN POSSIBLE. THIS UNIQUE HISTOLOGY IMAGING STRATEGY ALSO HAS THE POTENTIAL TO IDENTIFY NEW MOLECULAR TRENDS IN PATIENT'S TISSUE SAMPLES THAT COULD BE USED TO PREDICT HOW AGGRESSIVE THEIR DISEASE IS OR HOW WELL THE PATIENT IS LIKELY TO RESPOND TO GIVEN THERAPIES. THIS INNOVATIVE EX-VIVO DIAGNOSTIC STRATEGY HAS A HIGH LIKELIHOOD FOR CLINICAL TRANSLATION, OFFERING RAPID WHOLE TISSUE SECTION IMAGING FOR MULTIPLE MOLECULAR BIOMARKERS SIMULTANEOUSLY. OUR APPROACH BEGINS BY DEVELOPING A NEW SET OF SENSITIVE SERS NP BATCHES, EACH DESIGNED WITH A UNIQUE SPECTRAL BARCODE TO ENABLE SIMULTANEOUS MOLECULAR INTERROGATION OF AN ENTIRE TISSUE SAMPLE WITHIN A SINGLE IMAGE. AFTER FABRICATION AND CHARACTERIZATION OF OUR NEWLY DEVELOPED MULTIPLEXED SERS NPS, WE WILL TEST THEIR MULTIPLEXED IMAGING CAPABILITIES AND TARGETING EFFICIENCY ON VARIOUS BIOMARKERS IN CELL CULTURE AND ON DE- IDENTIFIED HUMAN TISSUE SECTIONS. WE WILL FIRST TEST OUR NEW MULTIPLEXED IMAGING TECHNOLOGY TO TARGET IMMUNE CELLS. RECENTLY, STUDIES HAVE SHOWN THAT THE IMMUNE SYSTEM PLAYS A KEY ROLE IN CANCER DEVELOPMENT, AND THUS THE DENSITY, LOCATION, AND TYPE OF IMMUNE CELLS FOUND ACROSS A PATIENT'S TUMOR CAN PREDICT THERAPEUTIC RESPONSE. FAILURE TO FULLY UNDERSTAND THE IMMUNE PROFILE AND TUMOR HETEROGENEITY ACROSS A PATIENT'S TUMOR CAN LEAD TO ADMINISTRATION OF INEFFECTIVE THERAPIES THAT INCREASE PATIENT MORBIDITY. OUR NPS WILL ACTIVELY TARGET MULTIPLE IMMUNE RECEPTORS THROUGH CHEMICALLY CONJUGATED ANTIBODIES. WE WILL ASSESS THE TARGETING EFFICIENCY OF OUR NEWLY DEVELOPED NPS WITH MICROSCOPIC RAMAN IMAGING TOOLS AND COMPARE WITH GOLD STANDARD IMMUNOHISTOCHEMISTRY (IHC) STAINING. THESE RESULTS WILL BE AN IMPORTANT STEP IN THE CLINICAL TRANSLATION OF THIS NEW MULTIPLEXED RAMAN IMAGING APPROACH; TO PROVIDE RAPID SPATIAL MOLECULAR PROFILING WHILE ENABLING IMPROVED PERSONALIZED THERAPY. IT'S IMPORTANT TO NOTE THAT WE ARE NOT LIMITED TO INTERROGATING CANCER AND INTEND TO INVESTIGATE OTHER RELEVANT CLINICAL APPLICATIONS (IE. WOUND HEALING, NEUROLOGICAL DISEASES, INFECTIOUS DISEASES, AUTOIMMUNE DISEASES) THAT COULD BENEFIT FROM A NEW MULTIPLEXED IMAGING STRATEGY THAT OFFERS IMPROVED SENSITIVITY AND MOLECULAR SPECIFICITY.
Mod # | Description | ReasonForModification | Federal Obligation | Date |
|---|---|---|---|---|
| Not listed | $626.8k | 5/28/25 | ||
| Not listed | $643.5k | 6/11/24 | ||
| Not listed | $643.5k | 6/11/24 |
GrantNumber | Description | Subgrantee | Prime Award | Dollars Obligated | Updated At |
|---|---|---|---|---|---|
SCON00006901S | The Leland Stanford Junior University | Project Grant R01CA293950 | $256.3k | 9/10/24 |