Project Grant R44GM150314
- The $249,416 Project Grant from the Department of Energy Office of Science, under the Office of Science Financial Assistance Program (CFDA #81.049), will fund research into new theories and ontologies for quantum mechanical cluster modeling of proteins and enzymes. The awardee, Q-Chem Inc. located in Pleasanton, California, will utilize the funding from February 22, 2021 through April 1, 2022 to develop computational software and technical reports related to modeling biochemical reactions at the...
- Quantum Simulation Technologies Inc., doing business as Qsimulate, was awarded a $250,000 Project Grant from the Department of Energy Office of Science on February 14, 2022 to develop cloud-based low-scaling quantum chemistry simulations for materials. The grant is being carried out under the Office of Science Financial Assistance Program (CFDA #81.049), which aims to deliver scientific discoveries and tools to transform understanding of nature and advance U.S. energy and economic security....
- Quantum Simulation Technologies Inc., doing business as Qsimulate, received a $442,362 Project Grant from the National Institutes of Health's National Institute of General Medical Sciences to develop and validate a novel high-performance implementation of density functional theory quantum mechanics for scoring ligand-protein interactions. The award was made under the Biomedical Research and Research Training program (CFDA 93.859), which supports basic research that increases understanding of...
- The National Science Foundation awarded Quantum Simulation Technologies Inc. a $256,000 Project Grant under the NSF Technology, Innovation, and Partnerships program (CFDA 47.084) to develop a matrix product state-based fermionic quantum emulator. The emulator will enable simulation of quantum computations involving up to 100 spin orbitals or 50 electrons on classical computing hardware, an order of magnitude larger than currently possible. Quantum Simulation Technologies will complete a Python...
- This Project Grant award from the National Science Foundation (CFDA 47.049 - Mathematical and Physical Sciences) provides $529,999 in funding to Purdue University from June 15, 2023 to May 31, 2026. The award supports the development of advanced theories and methods for computer simulation of electronic structure of molecules and materials, with the goal of enabling highly accurate prediction of properties and interpretation of experiments for these systems. The key products and services to be...
- Federal Project Grant Award Summary Quantumbio Inc. received a $508,364 Project Grant awarded on September 30, 2025, under the Biomedical Research and Research Training program (CFDA 93.859) administered by the National Institute of General Medical Sciences (NIGMS). The award supports development of a unified X-ray crystallography and cryogenic electron microscopy (cryo-EM) computational toolkit designed to address critical limitations in protein-ligand structure determination. The deliverable...
- This $300,000 EAGER award from the National Science Foundation's (NSF) Division of Chemistry, under the Mathematical and Physical Sciences (CFDA 47.049) program, supports the development of quantum-inspired electronic structure theory methods by Virginia Polytechnic Institute & State University (Virginia Tech). The project aims to leverage ideas from quantum algorithms to create novel classical algorithms for accelerating chemistry simulations on current classical computers. The key...
- This $750,000 Project Grant from the National Science Foundation Division of Chemistry, under the Mathematical and Physical Sciences program (CFDA 47.049), will support the development of accurate and efficient free energy simulation software within the widely-used AMBER molecular modeling framework. The grant recipient, Rutgers, The State University, will enhance AMBER to enable the routine application of free energy methods using quantum mechanics, machine learning, reactive and classical...
- This three-year, $599,998 Project Grant from the National Science Foundation's Division of Chemistry will support research into practical strategies for implementing quantum chemistry on near-term quantum computers. James Freericks of Georgetown University and Dominika Zgid of the University of Michigan will develop hybrid quantum-classical methodologies to run calculations on noisy intermediate-scale quantum devices and classical computers. They will investigate tradeoffs between program length...
- Summary of Federal Project Grant Award The Trustees of Tufts College received a $422,958 Project Grant from the National Institute of General Medical Sciences under the Biomedical Research and Research Training program (CFDA 93.859), effective September 1, 2025, through June 30, 2030. Under this award, the Ding Laboratory will develop and deliver advanced computational methods and open-source software tools for protein-ligand binding free energy calculations in drug design. Specifically, the...
NEXT GENERATION FREE ENERGY PERTURBATION (FEP) CALCULATIONS--ENABLED BY A NOVEL INTEGRATION OF QUANTUM MECHANICS (QM) WITH MOLECULAR DYNAMICS ALLOWING A LARGE QM REGION AND NO SAMPLING COMPROMISES - PROJECT SUMMARY COMPUTATIONAL CHEMISTRY HAS REVOLUTIONIZED DRUG DISCOVERY, REDUCING BY MONTHS OR EVEN YEARS THE AMOUNT OF TIME IT TAKES TO DISCOVER AND REFINE A LEAD CANDIDATE. WHILE COMPUTATIONAL CHEMISTRY HAS IMPACTED DISCOVERY IN MANY WAYS, THE GREATEST IMPACT HAS BEEN VIA VIRTUAL SCREENING (TO IDENTIFY POTENTIAL HITS) AND, MORE RECENTLY, THROUGH FREE ENERGY CALCULATIONS. FREE ENERGY CALCULATIONS SUCH AS FREE ENERGY PERTURBATION (FEP) ARE USED IN HIT-TO-LEAD IMPROVEMENT. THIS DISCOVERY PHASE IS TYPICALLY CARRIED OUT USING COSTLY BENCH CHEMISTRY, AND TOOLS THAT CAN HELP REDUCE THE NUMBER OF POTENTIAL MODIFICATIONS THAT CAN APPRECIABLY IMPROVE EFFICIENCY AND REDUCE COST. FEP ALLOWS ONE TO EVALUATE THE RELATIVE BINDING OF A SERIES OF SIMILAR LIGANDS TO A RECEPTOR (PROTEIN OR NUCLEIC ACID) AND FOCUS ONLY ON THOSE PREDICTED TO PROVIDE THE GREATEST IMPROVEMENT. WHILE FEP HAS DEMONSTRATED MULTIPLE SUCCESSES IN TERMS OF ACCELERATING DRUG DISCOVERY, AND WHILE FEP IS NOW INTEGRATED AS PART OF DRUG DISCOVERY AT MOST PHARMACEUTICAL COMPANIES, IT SUFFERS FROM ONE FUNDAMENTAL WEAKNESS, AS COMMONLY PRACTICED: FEP IS BUILT UPON A SO-CALLED CLASSICAL MOLECULAR MECHANICAL (MM) ENERGY FUNCTION. THIS IS A RELATIVELY SIMPLE FUNCTION THAT CRUDELY APPROXIMATES THE REAL-WORLD ENERGETICS. THE TRUE ENERGETICS ARE ONLY PROPERLY REPRESENTED USING THE EQUATIONS OF QUANTUM MECHANICS (QM). BUT THESE EQUATIONS ARE SO COMPLEX, AND SO COMPUTATIONALLY DIFFICULT TO SOLVE, THAT THE ENTIRETY OF THE PHARMA-RELEVANT TOOLBOX HAS TRADITIONALLY INTEGRATED THE INFERIOR MM APPROACH. FEP HAS BEEN NO DIFFERENT. THE RESULT IS THAT WHILE FEP IS QUITE ACCURATE FOR CERTAIN SYSTEMS WHERE THE MM APPROXIMATIONS WORK WELL, THERE ARE A LARGE NUMBER OF OTHER SYSTEMS-MANY OF THEM QUITE IMPORTANT TO DRUG DISCOVERY-FOR WHICH MM, AND MM-BASED FEP ARE NOT RELIABLY PREDICTIVE. SINCE DISCOVERY PROJECTS AT PHARMACEUTICAL COMPANIES ARE CHOSEN ON THE BASIS OF BIOLOGY AND NOT ON THE BASIS OF THEIR SUITABILITY FOR COMPUTATIONAL CHEMISTRY, IT IS CRITICALLY IMPORTANT TO IDENTIFY AN APPROACH THAT CAN BROADEN THE SCOPE OF USEFULNESS FOR FEP TO ACCOMMODATE MORE OF THE TARGETS OF INTEREST TO PHARMA. BUT REPLACING MM WITH QM IN COMPUTATIONAL TOOLS HAS, UNTIL OUR WORK, LED TO METHODS INCAPABLE OF PHARMA-RELEVANT TURNAROUND (A FEW DAYS OR LESS). WE HAVE BROKEN THIS BARRIER USING A HYBRID APPROACH QM/MM APPROACH, WHICH PROVIDES SIGNIFICANTLY BROADER AND MORE ACCURATE COVERAGE OF THE ENTIRETY OF THE SYSTEM SPACE OF INTEREST TO PHARMA WHILE KEEPING COMPUTATIONAL COSTS AND TURNAROUND LOW ENOUGH TO BE ATTRACTIVE TO PHARMA. OUR PLATFORM, QUELO, IS UNIQUE AND DEMONSTRABLY USEFUL. IN THE FIRST PHASE OF THIS GRANT, WE IMPLEMENTED, VALIDATED, AND BEGAN MARKETING IT. IN THIS GRANT PHASE, WE PROPOSE ALGORITHMIC CHANGES TO QUELO TO MAKE IT MORE COMPUTATIONALLY EFFICIENT AND MODIFICATIONS TO ALLOW IT TO BE RUN ON GPU (RATHER THAN CPU) COMPUTING PLATFORMS, WHICH WILL FURTHER REDUCE TOTAL COST AND IMPROVE TURNAROUND. THIS WILL ACCELERATE THE ADOPTION OF THE PROGRAM BY PHARMA USERS.
Mod # | Description | ReasonForModification | Federal Obligation | Date |
|---|---|---|---|---|
| Not listed | $994.1k | 7/30/25 | ||
| Not listed | $1.0m | 9/3/24 |