Project Grant R21EY035955
- This NSF Engineering Program award of $605,320 to North Carolina State University (NC State) supports the development of a flexible, FMRI-compatible neural probe with multi-modal sensing and modulation capabilities. The novel probe is designed to advance understanding of neural circuit dynamics and enable closed-loop neuromodulation for treating neurological disorders. Key product elements include: Flexible, multi-shank neural probe fabricated using polymeric materials to enable deep brain...
- This $600,000 Project Grant from the National Science Foundation's Division of Information and Intelligent Systems, under the Computer and Information Science and Engineering program (CFDA 47.070), will fund research at The Pennsylvania State University to develop a fully wireless, flexible electrical-acoustic implant for high-resolution neural stimulation and recording across large-scale brain circuits. The implant is intended to provide minimally invasive ultrasound neuromodulation and...
- This Project Grant award from the National Science Foundation (CFDA 47.074 Biological Sciences) is for the development of a piezoelectric inchworm machine to enable automated implantation of miniaturized flexible microelectrodes into the brain for large-scale chronic neural recordings. The $499,991 award will fund the development of the inchworm insertion mechanism and its integration with a 3D-printed skull cap platform. This system aims to address the challenges of electrode buckling and...
- This $275,000 project grant from the National Science Foundation's Engineering Directorate (CFDA 47.041) will fund the development of novel electronic-photonic silicon carbide neural probes for recording and stimulating neural activity. The Georgia Tech Research Corporation will receive funding on behalf of collaborating researchers to design penetrating neural probes made entirely of silicon carbide, a robust material proven to withstand the corrosive brain environment long-term. The probes...
- This $566,015 Project Grant award from the National Institute of Neurological Disorders and Stroke (NINDS), under the 21st Century Cures Act - Brain Research through Advancing Innovative Neurotechnologies (BRAIN) Initiative (CFDA 93.372), supports the University of Utah's development of a configurable and thermo-responsive intracortical electrode array platform using 3D printing and gallium-based liquid metal electrode materials. The goal is to create a next-generation implantable neural...
- The University of California, San Diego (UCSD) was awarded a $802,003 Cooperative Agreement by the National Institute of Neurological Disorders and Stroke (NINDS), a component of the National Institutes of Health (NIH), under the 21st Century Cures Act - Brain Research through Advancing Innovative Neurotechnologies (BRAIN) Initiative program (CFDA 93.372). The purpose of this award is to develop an innovative "Neuro-Clear" technology - a high-density, transparent microelectrode array...
- 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), provides $537,650 to Spike Neuro LLC for the development of a flexible carbon fiber penetrating nerve cuff and cortical array for neural recording, stimulation, and neurochemical detection. The project aims to create advanced electrophysiology recording and stimulation tools...
- Purdue University was awarded a $1,304,216 Project Grant by the National Institute of Mental Health (NIMH) under the Mental Health Research Grants program (CFDA 93.242) to develop and test a new platform for high-density 3D electrophysiology and two-photon calcium imaging in freely moving animals. The goal is to enable simultaneous recording of millisecond electrical dynamics and spatial mapping of neural circuit activity during natural behaviors to better understand how the brain processes...
- This $449,228 Project Grant from the National Institute of Mental Health (NIMH), under the Mental Health Research Grants program (CFDA 93.242), will enable Neuronexus Technologies, Inc. (doing business as Nuvectra) to develop an integrated system for large-scale, chronic extracellular neural recording and stimulation in human brain organoids. The project aims to 1) create advanced biological assay chambers to support chronic electrophysiology while maintaining organoid health, 2) develop...
- The National Institute of Neurological Disorders and Stroke (NINDS) awarded The Trustees of Columbia University in the City of New York, doing business as the Health Sciences Division, a $2,554,313 federal Project Grant under the 21st Century Cures Act - Brain Research through Advancing Innovative Neurotechnologies (BRAIN) Initiative (CFDA 93.372). The grant, which runs from Sep 1, 2023 to Aug 31, 2026, will support research to determine if targeted in vivo manipulations of local circuit control...
CURVED IMPLANTATION OF FLEXIBLE MICROELECTRODE ARRAYS FOR HIGH-DENSITY MAPPING OF NONLINEAR BRAIN STRUCTURES AND CIRCUITS - PROJECT SUMMARY THE BRAIN IS NATURE'S MOST SOPHISTICATED SIGNAL-PROCESSING SYSTEM. UNLIKE HUMAN-MADE INTEGRATED CIRCUITS, THE BRAIN CIRCUITS ORGANIZE IN A COMPLEX THREE-DIMENSIONAL AND INTERTWINED MANNER, WHICH MAKES IT CHALLENGING TO SPATIALLY RESOLVE NEURONAL ACTIVITIES. AMONG ALL AVAILABLE NEURAL RECORDING TECHNOLOGIES, PENETRATING NEURAL PROBES HOLD GREAT PROMISE AND ARE VITAL TO NEUROSCIENCE RESEARCH. IN COMMON PRACTICE, NEURAL PROBES ARE LINEARLY INSERTED INTO THE BRAIN TO MAP THE LOCAL ACTIVITY, WHICH, HOWEVER, CAN ONLY PROBE A SINGLE SPOT IN THE TARGETED BRAIN REGION. AN ENTIRE CIRCUIT OR STRUCTURE CAN BE MAPPED BY DEPLOYING MULTIPLE PROBES, BUT THE SPATIAL RESOLUTION IS MODEST. TO DATE, HOW TO SPATIALLY RESOLVE SINGLE-UNIT ACTIVITIES FROM NONLINEARLY ORGANIZED BRAIN STRUCTURES AND CIRCUITS IS STILL A CHALLENGE. HERE, WE PROPOSE TO FILL THE TECHNOLOGICAL GAP VIA A NONLINEAR PROBE IMPLANTATION MODALITY. IN CONTRAST TO THE CONVENTIONAL LINEAR IMPLANTATION, WE WILL CONFORMALLY DEPLOY HIGH-DENSITY MICROELECTRODE ARRAYS ALONG DESIGNATED CURVED BRAIN CIRCUITS OR STRUCTURES WITH MINIMAL SURGICAL LESIONS. ULTRAFLEXIBLE NEURAL PROBES WITH HIGH ELECTRODE DENSITY WILL BE DESIGNED ACCORDINGLY TO OBTAIN THE OPTIMAL NONLINEAR IMPLANTATION OUTCOME. THE PROPOSED TECHNOLOGY WILL BE FULFILLED VIA THREE AIMS: IN AIM 1, WE WILL DEVELOP THE IMPLANTATION APPARATUS AND OPTIMIZE THE PROBE DESIGN USING AN IN-VITRO TEST PLATFORM; IN AIM 2, WE WILL EVALUATE AND OPTIMIZE THE NONLINEAR IMPLANTATION IN VIVO AND CHARACTERIZE THE SURGICAL LESION AND BIOCOMPATIBILITY OF THE PROBES; IN AIM 3, WE WILL SYSTEMATICALLY EXAMINE THE NONLINEAR PROBE IN SINGLE-UNIT NEURONAL RECORDING AND DEMONSTRATE ITS USEFULNESS IN STUDYING THE PLACE CODES OF THE MOUSE HIPPOCAMPUS. IN OUR PRELIMINARY STUDY, WE VALIDATED THE FEASIBILITY OF THE PROPOSED METHOD BY DEPLOYING NONLINEAR PROBES ALONG THE LONGITUDINAL AXIS OF THE MOUSE HIPPOCAMPUS, A WELL-KNOWN NONLINEAR STRUCTURE IN THE BRAIN. PRECISE TARGETING, LOW SURGICAL LESION, AND CHRONIC SINGLE-UNIT TRACKING WERE SHOWN. THE TECHNOLOGY, IF SUCCESSFUL, WILL SIGNIFICANTLY INCREASE THE SPATIAL RESOLUTION OF BRAIN MAPPING ALONG NONLINEAR CIRCUITS OR BRAIN STRUCTURES, MAKE THE HARD-TO- ACCESS BRAIN REGIONS WITHIN REACH, OFFER ALTERNATIVE ROUTES TOWARD DESIGNATED BRAIN REGIONS, AND OFFER A GENERALIZABLE APPROACH FOR OTHER BRAIN INTERVENTIONS. IN ALL, WE BELIEVE THE NONLINEAR DELIVERY OF NEURAL PROBES ENABLED BY THIS PROJECT WILL BE A VALUABLE MODALITY COMPLEMENTARY TO THE CONVENTIONAL LINEAR IMPLANTATION FOR BOTH BASIC AND TRANSLATIONAL NEUROSCIENCES.
Mod # | Description | ReasonForModification | Federal Obligation | Date |
|---|---|---|---|---|
| Not listed | $237.7k | 8/4/25 | ||
| Not listed | $237.9k | 7/29/24 |