Project Grant R42NS115282
- This Project Grant award from the National Institute of Neurological Disorders and Stroke (NINDS), under the Extramural Research Programs in the Neurosciences and Neurological Disorders (CFDA 93.853) program, provides $388,158.00 to the University of California, Los Angeles (UCLA) to engineer a highly active and selective gamma-Aminobutyric Acid (GABA) oxidase enzyme. The goal is to develop a high-performance, implantable, electroenzymatic GABA microsensor that can monitor GABA transients in the...
- This Small Business Innovation Research (SBIR) Phase I project, awarded by the National Science Foundation (NSF) under the TIP (Technology, Innovation, and Partnerships) program (CFDA 47.084), aims to develop a novel, multifunctional neural probe for advancing neuroscience research. The $254,456 grant awarded to Neurobionics Inc. on August 15, 2024, will fund the integration of electrical, optical, and chemical capabilities into a single implantable device. This versatile tool will enable...
- The National Science Foundation awarded AMG Detection, Inc. $305,000 on July 1, 2026, under the NSF Technology, Innovation, and Partnerships program (CFDA 47.084) to develop a wearable carbon nanotube sensor array for seizure prediction. The project aims to create the first scalable, non-invasive wearable device capable of predicting epileptic seizures 10–45 minutes before onset by detecting a validated panel of nine pre-seizure volatile organic compounds emitted from the skin. Current seizure...
- 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...
- The National Institute of Biomedical Imaging and Bioengineering awarded the University of California, Santa Barbara $1,189,496 on April 10, 2026, under the Discovery and Applied Research for Technological Innovations to Improve Human Health program (CFDA 93.286) to develop real-time, seconds-resolved measurements of amino acid homeostasis using electrochemical aptamer-based (EAB) sensors. The project will adapt EAB sensor technology—a platform invented by UCSB researchers—to measure plasma...
- The National Institute of Mental Health awarded Neuralthread Inc. $2.149 million on September 17, 2025, under the Mental Health Research Grants program (CFDA 93.242) to develop TULLEKIT, an integrated deep-brain neural recording system for non-human primates. TULLEKIT combines ultraflexible 384-channel polymer probes, a minimally invasive port system for deep-brain implantation, and a wireless recording headstage to achieve stable, high-density neural recordings in freely moving subjects. The...
- 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 Project Grant award of $348,373 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), aims to develop a novel family of biosensors that can be used to report on and dynamically regulate changes in neuroinflammation within the brains of live animals. The key products and services to be delivered through this grant include: 1) Developing and...
- The National Institute of Mental Health awarded Massachusetts Eye and Ear Infirmary $666,010 on September 1, 2026, under the Mental Health Research Grants program (CFDA 93.242) to study co-transmission of GABA and glutamate in cortical circuits and the role of neuromodulatory inputs in adult cortical plasticity. The recipient will employ anatomical circuit tracing, whole-cell electrophysiology, and in vivo two-photon imaging in mouse cortex to investigate how cholinergic and serotonergic...
- The National Science Foundation awarded Neurobionics Inc. a $1.202116 million cooperative agreement on August 1, 2026, to develop NeuroBionics IO Fiber, a multifunctional neural probe that integrates electrical recording, light delivery and monitoring, and fluid delivery into a single flexible device compatible with standard neuroscience equipment. The project addresses the current reliance on separate devices for multimodal neural measurement and stimulation by establishing scalable...
IMPLANTABLE MICROARRAY PROBE FOR REAL-TIME GLUTAMATE AND GABA DETECTION - PROJECT SUMMARY THIS STTR PROPOSAL WILL FOCUS ON DEVELOPING AND TESTING A NOVEL, FIRST-ON-THE-MARKET IMPLANTABLE BIOSENSOR FOR IN VIVO, REAL-TIME SENSING OF GAMMA-AMINOBUTYRIC ACID (GABA) AND GLUTAMATE (GLU) FOR ANIMAL STUDIES. GABA AND GLU ARE NEUROTRANSMITTERS (NTS) THAT ARE ESSENTIAL FOR INFORMATION PROCESSING AND PLASTICITY, MEMORY, AND OTHER FUNCTIONS. GLU IS THE MAJOR EXCITATORY NT AND GABA IS THE MAJOR INHIBITORY NT; A PROPER BALANCE BETWEEN THEM IS VITAL FOR NORMAL BRAIN FUNCTION. GLU-GABA DYSREGULATION PLAYS A CRITICAL ROLE IN SEVERAL BRAIN DISORDERS, INCLUDING EPILEPSY (A DISEASE AFFECTING 1.2% OF AMERICANS), DEMENTIA (WHICH WILL AFFECT 130M WORLDWIDE BY 2050) AND PARKINSON'S (WHICH AFFECTS 1.5M AMERICANS TODAY). A FUNDAMENTAL UNDERSTANDING OF NT HOMEOSTASIS INCLUDING ITS TEMPORAL COMPONENTS AND ITS ROLE ON BEHAVIORAL EVENTS WITHIN AND ACROSS BRAIN AREAS WOULD LEAD TO A BETTER UNDERSTANDING OF HUMAN BRAIN FUNCTION AND TO NEW AND MORE EFFECTIVE TREATMENTS. EXISTING NT SENSING METHODS MEASURE ONLY ONE NT AT A TIME, SUFFER FROM POOR SPATIOTEMPORAL RESOLUTION, ARE UNABLE TO MEASURE NT DYNAMICS AT THE CIRCUIT LEVEL, CONTINUOUSLY IN REAL TIME. OUR GOAL IS TO DEVELOP AN ULTRA-SMALL, FLEXIBLE (50MM) NEURAL PROBE FOR CHRONIC, DIRECT AND SIMULTANEOUS AMPEROMETRIC DETECTION OF GLU & GABA, WITH SUB-SECOND TEMPORAL RESOLUTION AND WITH NO EXTERNALLY APPLIED REAGENTS. PHASE I FOCUSED ON MANUFACTURING A PROTOTYPE SI PENETRATING SHANK-TYPE PROBE WITH 4 MICROPATTERNED SENSORS AND ONE MICROFLUIDIC ON-DEMAND IN-SITU CALIBRATOR (ODIC), OPTIMIZING THE ENZYME FUNCTIONALIZATION PROCESS, AND PERFORMING A FEASIBILITY STUDY ON THE MEASUREMENT OF PHYSIOLOGICALLY-RELEVANT CHANGES IN THE LEVELS OF GLU & GABA IN REAL TIME FOR FREELY MOVING RATS FOR UP TO 2 WEEKS. THE OBJECTIVES OF PHASE II ARE AN UPGRADE OF THE PROBE INTO A BRAIN MICROMOTION-RESISTANT HYBRID SI- FLEXIBLE POLYMER PROBE OF HIGHER FUNCTIONALITY (OCTRODE + 2 ODIC MICRO-CHANNELS), IMPROVEMENTS IN SELECTIVE FUNCTIONALIZATION, AND VALIDATION OF THE PROBES IN A RAT MODEL OF TEMPORAL LOBE EPILEPSY. THE MULTIFUNCTIONAL ODICS WILL BE APPLIED TO PERFORM IN-SITU CALIBRATIONS FOR CHRONIC MEASUREMENTS AND TO INVESTIGATE THE CIRCUIT ACTIVITY OF 3 ADJACENT CORTICAL LAYERS IN THE WHISKER BARREL CORTEX VIA CHEMICAL MODULATION. UPON COMPLETION, WE EXPECT TO DELIVER A UNIQUE-ON-THE-MARKET DUAL NT PROBE OF EXCELLENT RELIABILITY AND SUPERIOR SENSITIVITY, SELECTIVITY, AND STABILITY, WITH ALL PERFORMANCE PARAMETERS EQUAL TO OR BETTER THAN THOSE OFFERED BY CURRENT TECHNOLOGIES. TO ACHIEVE THIS, ALCORIX WILL PARTNER WITH EXPERTS IN AMPEROMETRIC NT SENSING RESEARCH FROM LOUISIANA TECH U. AND EXPERTS IN THE MANUFACTURE OF ADVANCED NEUROPROBES FROM NEURONEXUS, WHO WILL ASSIST WITH HYBRID SI-FLEXIBLE POLYMER INTEGRATION, IN VITRO AND IN VIVO EVALUATION, AND EVENTUAL MARKET ENTRY. THE PROPOSED RESEARCH WILL ALSO ENABLE ALTERNATIVE USES SUCH AS POINT-OF-USE SENSORS FOR NEUROTOXINS OR DISEASE BIO-MARKERS, AND NEURAL SIGNAL RECORDING OR NEUROSTIMULATION IN CONJUNCTION WITH SPECIFIC LOCALLY-INJECTED DRUGS. THE 2023 WORLD MARKET FOR ELECTROPHYSIOLOGICAL NEURO-PROBES (GRAND VIEW RESEARCH) IS ABOUT $266M, CAGR OF 3.1%. IF ONLY 1% OF THAT MARKET CAN BE CAPTURED BY THIS TECHNOLOGY IT WOULD BE MORE THAN SUFFICIENT JUSTIFICATION FOR THE PROPOSED WORK.
Mod # | Description | ReasonForModification | Federal Obligation | Date |
|---|---|---|---|---|
| Not listed | $0 | 8/28/25 | ||
| Not listed | $902.9k | 8/12/24 | ||
| Not listed | $904.0k | 9/18/23 |
GrantNumber | Description | Subgrantee | Prime Award | Dollars Obligated | Updated At |
|---|---|---|---|---|---|
2R42NS11528202A1S | Louisiana TECH University | Project Grant R42NS115282 | $542.0k | 12/21/24 | |
2R42NS115282SUB02S | Neuronexus Technologies, Inc. | Project Grant R42NS115282 | $405.0k | 12/21/24 | |
2R42NS115282SUB02S | Neuronexus Technologies, Inc. | Project Grant R42NS115282 | $405.0k | 11/30/24 |