Project Grant 2517026
- This Project Grant award from the National Science Foundation (NSF) Engineering program (CFDA 47.041) will support research to study how astrocytes, a critical cell type in the brain, respond to mechanical forces and strain associated with traumatic brain injury (TBI). The $705,806 award to Tufts University will fund the development of controlled 3D brain-like cell culture environments and ex vivo brain cultures to quantify astrocytes' acute and chronic responses to mechanical perturbation...
- Federal Project Grant Award Summary The National Science Foundation's Directorate for Engineering (CFDA 47.041) awarded $599,999 to the University of Illinois at Chicago on May 1, 2026, for a CAREER (Faculty Early Career Development) award investigating the role of PIEZO1 polymorphisms in traumatic brain injury (TBI) pathology. The project, which runs through April 30, 2031, will develop isogenic human induced pluripotent stem cell lines with and without the E756DEL variant in the PIEZO1...
- The National Science Foundation (NSF) awarded The Johns Hopkins University a 3-year, $274,297 Project Grant under the Engineering program (CFDA 47.041) to conduct collaborative research on the extreme mechanics of the human brain. The research aims to generate insights into how the living human brain responds to large and rapid loading, which is critical for developing models to predict traumatic brain injury and designing safer protective equipment. The project will combine high-rate mechanical...
- The National Science Foundation awarded a $118,212 Project Grant to the University of Delaware under the Integrative Activities (IA) program (CFDA 47.083) to conduct fundamental research on the extreme mechanics of the human brain. The research combines high-rate mechanical testing, analytical and computational modeling, and machine learning to generate insights into how the living human brain responds to large and rapid loading. This work will contribute to the fields of tissue mechanics,...
- Federal Grant Award Summary The University of Cincinnati's Sponsored Research Services Division was awarded $590,513 under National Science Foundation (NSF) Directorate for Engineering CFDA 47.041 on September 1, 2026, to conduct a three-year research project (completion date: August 31, 2029) investigating mitochondrial dysfunction following traumatic brain injury. The research deliverables include development of an integrated experimental-computational model that correlates tissue-level...
- Federal Project Grant Award Summary The University of Texas at San Antonio received a $600,000 Faculty Early Career Development (CAREER) award from the National Science Foundation's Directorate for Engineering (CFDA 47.041), effective July 1, 2026 through June 30, 2031. This project delivers computational and educational products focused on understanding traumatic brain injury (TBI) through cross-species brain biomechanics. The primary deliverables include high-resolution, species-specific...
- This Project Grant award from the National Institute of Biomedical Imaging and Bioengineering (NIBIB), part of the U.S. Department of Health and Human Services, under the Federal Grant Program "Discovery and Applied Research for Technological Innovations to Improve Human Health" (CFDA 93.286), aims to develop and assess novel frameworks for accurately predicting functional recovery following moderate-to-severe traumatic brain injury (TBI). The $389,813 award to the University of...
- Grant Award Summary Vanderbilt University Medical Center received a $262,500 Project Grant from the National Institute of Neurological Disorders and Stroke (NINDS) under the Extramural Research Programs in the Neurosciences and Neurological Disorders program (CFDA 93.853), with award dates from April 1, 2026, through March 31, 2028. The project, titled "Novel Prediction of Recovery of Consciousness in Acute Traumatic Brain Injury," develops a diagnostic tool to improve prognostic...
- This Project Grant award of $399,337 from the National Science Foundation (NSF) Engineering program (CFDA 47.041) will fund a three-year Research Experiences for Undergraduates (REU) site titled "Imaging and Mechanics-Based Projects on Accidental Cases of Trauma (IMPACT)." The REU site will provide 10 undergraduate students per year from diverse backgrounds with multidisciplinary biomedical engineering research opportunities related to understanding injuries. Students will engage in...
- Federal Grant Award Summary Brown University received a $254,400 Project Grant from the National Institute of Neurological Disorders and Stroke (NINDS) under the Extramural Research Programs in the Neurosciences and Neurological Disorders program (CFDA 93.853), effective May 1, 2026, through April 30, 2028. The award funds preclinical research and development of D-SYN3, a novel macrocyclic compound designed to enhance brain-derived neurotrophic factor (BDNF) signaling through activation of its...
CAREER: UNIFYING NEUROSCIENCE AND BIOMECHANICS PARADIGMS FOR MODELING BRAIN AND MUSCLE RESPONSES TO MECHANICAL IMPACTS -TRAUMATIC BRAIN INJURY (TBI) REMAINS A GROWING PUBLIC HEALTH CONCERN, WITH AN ANNUAL PREVALENCE OF ABOUT 1.7 MILLION CASES AND A YEARLY COST OF ABOUT $40.6 BILLION IN THE UNITED STATES ALONE. DESPITE AN EXTENSIVE BODY OF WORK ON TBI IN BIOMECHANICS AND NEUROSCIENCE DOMAINS, THERE IS STILL MUCH PROGRESS TO BE MADE TO ADVANCE THE KNOWLEDGE OF TBI MECHANICS AND ASSOCIATED MOTOR IMPAIRMENTS. IN PARTICULAR, FUNDAMENTAL KNOWLEDGE OF HOW AND TO WHAT EXTENT MECHANICAL FORCE IMPACTS BRAIN NEURONAL ACTIVITY AND, IN TURN, HOW AND TO WHAT EXTENT BRAIN IMPAIRMENT AFFECTS NECK MUSCLE RESPONSES REMAINS UNKNOWN. THEREFORE, THIS FACULTY EARLY CAREER DEVELOPMENT (CAREER) PROJECT SEEKS TO DEVELOP A BREAKTHROUGH COMPUTATIONAL FRAMEWORK THAT CAN MIMIC REALISTIC BRAIN-MUSCLE ACTIVATION DYNAMICS AND SUPPORT DISCOVERING FUNDAMENTAL KNOWLEDGE ABOUT TBI MECHANICS AND ASSOCIATED INTERVENTIONS. THIS RESEARCH REQUIRES METHODS AND KNOWLEDGE FROM VARIOUS DISCIPLINES, INCLUDING NEUROSCIENCE, BIOMECHANICS, HUMAN FACTORS, AND CONTROL ENGINEERING, THUS IMPACTING THE CONVERGENCE OF ENGINEERING AND MEDICINE. THE PROJECT?S SYNERGISTIC EDUCATION AND OUTREACH ACTIVITIES OUTLINE A PLAN TO STRENGTHEN THE INTERDISCIPLINARY FIELD OF NEURO-BIOMECHANICS IN BIOENGINEERING, INDUSTRIAL ENGINEERING, MECHANICAL ENGINEERING, AND CHEMICAL ENGINEERING THROUGH COURSE DEVELOPMENT, INVOLVEMENT OF GRADUATE AND UNDERGRADUATE STUDENTS IN THE RESEARCH ACTIVITIES, AND K-12 OUTREACH ACTIVITIES. IN ADDITION, THE OUTREACH THROUGH WEBINARS AND VIDEO BLOGGING WILL ENHANCE SCIENTIFIC LITERACY LEVELS ABOUT TBI AMONG BROAD AUDIENCES, INCLUDING FIRST RESPONDERS AND TBI PATIENTS. THE INVESTIGATOR?S LONG-TERM GOAL IS TO DISCOVER THE FUNDAMENTAL RELATIONSHIP BETWEEN BRAIN MULTIPHYSICS AND NEUROMUSCULAR DYNAMICS IN ORDER TO DEVELOP ENGINEERING TECHNOLOGIES (I.E., HELMET TECHNOLOGIES, NEUROPROSTHETICS, ETC.) AND THERAPEUTIC INTERVENTIONS (E.G., TBI-FOCUSED REHABILITATION, SURGICAL TREATMENTS, ETC.) TO REDUCE TBI IN SPORTS, WORKPLACES, AND DAILY ACTIVITIES. IN PURSUIT OF THIS VISION, THIS PROJECT WILL PROVIDE A BRAIN-MUSCLE-INTERACTION FRAMEWORK, CALLED BMI-FRAME, A CLOSED-LOOP FRAMEWORK COMPOSED OF MULTISCALE BRAIN NEURONAL MODELS, HEAD-NECK FINITE-ELEMENT (FE) STRUCTURES, PROPORTIONAL-INTEGRAL-DERIVATIVE (PID) ALGORITHMS, AND NEURAL NETWORK (NN) AGENTS. THIS OBJECTIVE WILL BE ACCOMPLISHED THROUGH THREE SPECIFIC TASKS: 1) INVESTIGATE THE EFFECTS OF MECHANICAL IMPACTS ON BRAIN NEURONAL SIGNALS, 2) IDENTIFY NN AGENTS TO PREDICT BRAIN AND MUSCLE PID GAIN PARAMETERS, AND 3) CHARACTERIZE BRAIN AND MUSCLE RESPONSES TO MECHANICAL IMPACTS. TASK 1 FOCUSES ON DEVELOPING AND VALIDATING BRAIN ELECTROMECHANICAL MODELS TO UNDERSTAND BRAIN NEURONAL RESPONSE TO VARIOUS (SUB) TRAUMATIC IMPACTS. TASK 2 WILL EXPLORE NOVEL NN ALGORITHMS IN ORDER TO ACCURATELY TUNE BRAIN SIGNALS AND INDIVIDUAL NECK MUSCLE ACTIVATIONS WITH A MINIMAL NUMBER OF ITERATIONS AND LOOP DELAYS. TASK 3 FOCUSES ON VALIDATING THE BMI-FRAME PLATFORM BY EXPLORING THE DYNAMICS OF BRAIN-MUSCLE INTERACTIONS IN RESPONSE TO VARIOUS (SUB) TRAUMATIC MECHANICAL IMPACTS AND TBI CONDITIONS. THE RESEARCH IS A BREAKTHROUGH INNOVATION AS IT TRANSFORMS BRAIN-MUSCLE INTERACTION DYNAMICS INTO A MATHEMATICALLY-GROUNDED ENGINEERING FRAMEWORK, WITH THE PURPOSE OF CREATING UNPRECEDENTED SCIENTIFIC KNOWLEDGE ABOUT HOW (SUB) TRAUMATIC MECHANICAL IMPACTS CAUSE ELECTROMECHANICAL DISRUPTIONS OF BRAIN NEURONAL DYNAMICS AND, IN TURN, HOW BRAIN NEURONAL DISRUPTIONS AFFECT NECK MUSCLE RESPONSES. THIS AWARD REFLECTS NSF'S STATUTORY MISSION AND HAS BEEN DEEMED WORTHY OF SUPPORT THROUGH EVALUATION USING THE FOUNDATION'S INTELLECTUAL MERIT AND BROADER IMPACTS REVIEW CRITERIA.- SUBAWARDS ARE NOT PLANNED FOR THIS AWARD.
Mod # | Description | ReasonForModification | Federal Obligation | Date |
|---|---|---|---|---|
| Not listed | $399.3k | 4/7/25 |