Project Grant R21EB036205
- This $252,456 National Science Foundation Project Grant supports the development of generative deep learning algorithms and a data-driven approach to produce additional high-resolution information from low-resolution optical coherence tomography images of coronary arteries. Funded under the NSF's Computer and Information Science and Engineering program (CFDA 47.070), this research aims to generate new super-resolution and cross-modality image translation techniques for improving pathological...
- The National Science Foundation (NSF) Division of Chemical, Bioengineering, Environmental, and Transport Systems awarded a $300,000 EAGER (Early-Concept Grants for Exploratory Research) project grant to The Research Foundation for The State University of New York (RF SUNY) to establish near-ultraviolet (NUV) coherent anti-Stokes Raman scattering (CARS) microscopy for highly sensitive imaging of native biomolecules. This technology will be applied to develop label-free digital pathology for brain...
- Federal Project Grant Award Summary Boston University received $1.93M in federal funding from the National Institute of General Medical Sciences (NIGMS) under the Biomedical Research and Research Training program (CFDA 93.859) to develop advanced superresolution (SR) fluorescence microscopy technology. The award, issued September 15, 2025, and extending through August 31, 2029, supports the development of speckle-illumination-based superresolution imaging platforms that overcome current...
- This federal Project Grant award from the National Cancer Institute (CFDA 93.396 - Cancer Biology Research) provides $632,300 to Carnegie Mellon University to develop an integrated ultrahigh-throughput 3D volumetric super-resolution imaging system. This system will combine a multiscale fluorescence mesoscope with expansion microscopy to enable rapid, large-area 3D imaging at subcellular resolution. The goal is to advance the application of spatial biology in cancer research by visualizing...
- The National Science Foundation (NSF) Division of Chemical, Bioengineering, Environmental, and Transport Systems awarded a 3-year, $450,000 Project Grant to The Washington University to develop a novel "Plasmon-Enhanced Expansion Fluorospot" (PEEFS) technology. This bioplasmonic imaging method combines fluorescent nanoparticles and expansion microscopy to enable highly sensitive and high-resolution monitoring of cell-secreted proteins at the single-cell level. Key project objectives...
- The University of California, San Diego (UCSD) was awarded a $587,425 Project Grant from the National Science Foundation (NSF) Engineering program (CFDA 47.041) to develop the first dual-modality super-resolution microscopy system, termed Dual-Modality Localized Plasmonic Structured Illumination Microscopy (DM-LPSIM). This new imaging technology will enable simultaneous high-speed super-resolution fluorescence and label-free scattering imaging at the 50-nanometer scale. The DM-LPSIM system...
- The National Institute of Biomedical Imaging and Bioengineering (NIBIB) awarded the University of Florida a $616,523 Project Grant on August 8, 2025, under the Discovery and Applied Research for Technological Innovations to Improve Human Health program (CFDA 93.286). The three-year project, scheduled for completion on July 31, 2028, will develop a generative artificial intelligence (AI)-driven platform for phenotypic drug discovery (PDD) that enables cell morphology-guided, scalable, and...
- This $388,983 federal Project Grant award from the National Science Foundation (NSF) Division of Chemistry's Chemical Measurement & Imaging Program and Chemistry of Life Processes Program supports the development of a new optical microscope by Professor Eric Potma at the University of California, Irvine. The instrument leverages chiral sum-frequency generation (SFG) microscopy to visualize protein structures in cells and tissues without the need for chemical labeling. This label-free imaging...
- This collaborative research project grant awarded by the National Science Foundation (NSF) Division of Chemical, Bioengineering, Environmental, and Transport Systems under the Engineering program (CFDA 47.041) supports the development of photonic-integrated-circuit two-photon microscopy (PIC-2P) technology. The research delivers a chip-scale optical imaging device designed to overcome depth penetration limitations in conventional two-photon microscopy by utilizing ultra-compact nanophotonic...
- This $300,000 Project Grant awarded by the National Science Foundation (NSF) Engineering program (CFDA 47.041) supports the development of a new optical microscopy technology called "Space-Time-Pulsed Engineered-Excitation for Diffraction-Free Imaging (SPEEDI)." The technology utilizes exotic space-time wave packets to enable high-resolution fluorescence imaging of deep brain tissue without the light scrambling issues of conventional microscopy. The research aims to advance imaging...
SUPER-RESOLUTION CHEMICAL IMAGING VIA A DIFFUSION-BASED DEEP GENERATIVE MODEL - PROJECT SUMMARY/ABSTRACT THE OVERARCHING OBJECTIVE OF THIS PROJECT IS TO DEVELOP AN ADVANCED COMPUTATIONAL SUPER-RESOLUTION MODEL TO ENHANCE THE THROUGHPUT AND RESOLUTION OF CHEMICAL IMAGING. CHEMICAL IMAGING, WHICH INCLUDES ADVANCED TECHNIQUES SUCH AS STIMULATED RAMAN SCATTERING (SRS) MICROSCOPY, HOLDS IMMENSE POTENTIAL IN INTRAOPERATIVE CANCER DETECTION. THIS IS DUE TO ITS ABILITY TO GENERATE INTRINSIC MOLECULAR CONTRASTS WITHOUT TISSUE PROCESSING OR LABELING, WHICH CAN IMPROVE THE ACCURACY AND SPEED OF INTRAOPERATIVE DIAGNOSIS. SUCH IMPROVEMENT IS CRUCIAL TO BETTER PATIENT OUTCOMES BY PROVIDING NEAR REAL-TIME FEEDBACK TO THE SURGEON AND REDUCING THE RISK OF LEFTOVER CANCEROUS TISSUES. HOWEVER, EXISTING CHEMICAL IMAGING TECHNIQUES GRAPPLE WITH AN INHERENT LIMITATION - THE TRADEOFF BETWEEN SPATIAL RESOLUTION AND IMAGING FIELD OF VIEW, RESULTING IN LOW IMAGING THROUGHPUT AND PROLONGED IMAGING DURATIONS FOR LARGER TISSUE SAMPLES. FOR OTHER APPLICATIONS INVOLVING LIVE CELL IMAGING, THE LIMITED RESOLUTION OF SRS (> 300NM) HINDERS VISUALIZATION OF SUBCELLULAR ORGANELLES AND FINE STRUCTURES. COMPUTATIONAL SUPER-RESOLUTION, BOLSTERED BY ADVANCEMENTS IN ARTIFICIAL INTELLIGENCE, CAN ADDRESS THESE CHALLENGES BY TRANSFORMING LOW-RESOLUTION IMAGES INTO HIGH-RESOLUTION VERSIONS. THIS HAS BEEN ACHIEVED WITH THE CONVOLUTIONAL NEURAL NETWORK AND THE GENERATIVE ADVERSARIAL NETWORK. HOWEVER, SUPER-RESOLUTION CHEMICAL IMAGING IS SCARCE. THERE ARE NO DATASETS AVAILABLE FOR SUPER-RESOLUTION TRAINING. IT IS ALSO UNCLEAR WHETHER EXISTING SUPER-RESOLUTION MICROSCOPY TECHNIQUES COULD WORK FOR CHEMICAL IMAGES DUE TO VAST DIFFERENCES IN IMAGING CONTRASTS. HERE WE PROPOSE TO DEVELOP A NEW SUPER-RESOLUTION TECHNIQUE CHEMDIFFUSE THAT IS BASED ON THE DIFFUSION-BASED DEEP GENERATIVE NETWORK. DIFFUSION-BASED MODELS ARE WIDELY USED IN POPULAR IMAGE-GENERATION TOOLS SUCH AS MIDJOURNEY AND DALL-E. WHILE SUPERIOR IN STABILITY AND IMAGE QUALITY TO CNN AND GAN MODELS, THEY NEED EXTENSIVE TRAINING DATA. LEVERAGING ON OUR RECENT PROGRESS IN IMAGE AUGMENTATION AND A NEW DIFFUSION MODEL FOR 2D AND 3D DATA, WE WILL DEVELOP THE CHEMDIFFUSE MODEL TO SIGNIFICANTLY IMPROVE SRS IMAGING THROUGHPUT AND RESOLUTION. WE AIM TO TEST THE APPLICATION OF THE CHEMDIFFUSE SUPER-RESOLUTION MODEL IN TWO DIFFERENT AREAS: 1. FAST GIGAPIXEL SRS IMAGING OF TISSUE AT SUBMICRON RESOLUTION FOR PATHOLOGY APPLICATION. WE WILL USE MOUSE BRAIN TISSUE AS OUR TEST SYSTEM TO TRAIN THE CHEMDIFFUSE MODEL TO ENABLE FAST 3D SRS IMAGING AT 10 MILLION PIXELS/SEC, A 40-FOLD IMPROVEMENT IN LATERAL DIMENSION, AND ANOTHER 10-FOLD IMPROVEMENT IN AXIAL DIMENSIONAL. SUCH IMPROVEMENT IS CRUCIAL FOR INTRAOPERATIVE STIMULATED RAMAN HISTOLOGY OF LARGE TISSUES. 2. LABEL-FREE SRS IMAGING OF LIVE CELL ORGANELLES AT 150 NM RESOLUTION. WE WILL TRAIN THE SUPER-RESOLUTION MODEL TO ENABLE 2-FOLD RESOLUTION ENHANCEMENT WITH REGULAR SRS IMAGING, AN IMPROVEMENT THAT WILL ALLOW UNPRECEDENTED LABEL-FREE TRACKING OF MULTIPLE ORGANELLES AND SINGLE CELL ANALYSIS FOR A WIDE RANGE OF DRUG DISCOVERY APPLICATIONS. THOUGH OUR FOCUS IS ON SRS IMAGING, THIS METHODOLOGY CAN BENEFIT VARIOUS OTHER CHEMICAL IMAGING TECHNIQUES, INCLUDING RAMAN MICROSCOPY, IR IMAGING, TRANSIENT ABSORPTION MICROSCOPY, AND PHOTOTHERMAL MICROSCOPY, ETC.
Mod # | Description | ReasonForModification | Federal Obligation | Date |
|---|---|---|---|---|
| Not listed | $160.7k | 5/16/25 | ||
| Not listed | $196.2k | 7/16/24 | ||
| Not listed | $196.2k | 7/16/24 |