Project Grant RF1MH128841
- This federal Project Grant award from the National Institute of Mental Health (NIMH), under the Mental Health Research Grants program (CFDA 93.242), provides $2,415,243 to The Broad Institute, Inc. to develop a scalable, cloud-based framework for multi-modal mapping across single neuron omics, morphology, and electrophysiology. The framework aims to enable integrative, data-driven characterization of brain cell types, leveraging federated Brain Initiative resources and community engagement....
- The National Institutes of Health (NIH) Office of the Director awarded a $1,271,280 Project Grant under the Trans-NIH Research Support program (CFDA 93.310) to the Allen Institute in Seattle, WA. The award, spanning September 2024 to September 2027, aims to develop two "exa-scale" (extremely high-throughput) tissue readout methods to transform the study of the brain. The first method will enable highly multiplexed molecular mapping of individual proteins across entire brains at the...
- Project Grant Summary: Scalable High-Plex Pipeline for Whole-Brain Proteomics Profiling The National Institute of Mental Health (NIMH) awarded $3,977,894 to the Regents of the University of Michigan under the Mental Health Research Grants program (CFDA 93.242) on August 1, 2025, for a three-year project period concluding July 31, 2028. The project delivers a scalable, high-throughput proteomics profiling pipeline designed to generate comprehensive protein expression atlases of the whole mouse...
- This $2,576,654 Project Grant awarded by the National Institute of Mental Health (NIMH) under the Mental Health Research Grants program (CFDA 93.242) will support the development of a cloud-based software platform and advanced computational pipelines to harmonize and integrate spatial transcriptomics data for the construction of a spatially resolved brain atlas. Key objectives of the 3-year project include: 1) Creating a cloud-based platform to standardize the analysis and visualization of...
- Federal Grant Award Summary The Allen Institute received a $1.88 million Project Grant from the National Institute of Mental Health (NIMH) under the Mental Health Research Grants program (CFDA 93.242), awarded on March 13, 2026, with completion targeted for December 31, 2028. The project aims to develop a refined cellular atlas of the brainstem by employing single-cell transcriptomic profiling, spatial transcriptomic profiling, and neuronal projection mapping. The deliverables include...
- Federal Project Grant Award Summary The National Institute of Neurological Disorders and Stroke (NINDS) awarded $448,200 under the 21st Century Cures Act - Brain Research through Advancing Innovative Neurotechnologies (BRAIN) Initiative (CFDA 93.372) to the Research Foundation of the City University of New York to support research on understanding the regulation of neuron cell number and dendritic arbor size. The project, which commenced September 30, 2025, and is scheduled for completion by...
- The National Institutes of Health (NIH) awarded a $1,385,000 Project Grant under the Trans-NIH Research Support program (CFDA 93.310) to the Allen Institute, a non-profit research organization, to develop novel techniques for measuring the input-output operations of individual neurons in the mouse cortex. The project aims to overcome challenges in understanding how neurons in the mammalian brain transform their synaptic inputs into outputs, which is critical for designing effective brain-machine...
- Federal Cooperative Agreement Summary The National Institute of Neurological Disorders and Stroke (NINDS) awarded Boston Children's Hospital a $4.1 million Cooperative Agreement under the 21st Century Cures Act - Brain Research through Advancing Innovative Neurotechnologies (BRAIN) Initiative (CFDA 93.372) on August 1, 2025, with completion targeted for July 31, 2028. The project, titled FAST-ET (FAST Automated Serial Tape-Enabled Electron Tomography), develops an integrated solution for...
- Federal Project Grant Award Summary Harvard Medical School received a $1.2 million 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 August 1, 2025, through July 31, 2033. The award funds an eight-year basic neuroscience research initiative investigating cerebellar circuit organization and function. The research will employ intersectional...
- Federal Project Grant Award Summary Baylor College of Medicine received a $370,462 Project Grant award 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 an award date of June 3, 2025, and completion date of May 31, 2027. This grant supports the development of technical capabilities and research infrastructure to enable comparative neuroscience studies of...
SCALABLE TECHNOLOGIES FOR BRAIN-WIDE CONNECTOMICS OF TRANSCRIPTOMIC CELL TYPES: FOCUS ON BRAINSTEM - PROJECT SUMMARY, SCALABLE TECHNOLOGIES FOR BRAIN-WIDE CONNECTOMICS OF TRANSCRIPTOMIC CELL TYPES: FOCUS ON BRAINSTEM THIS PROPOSAL IS TO DEVELOP A SCALABLE PIPELINE TO COMBINE HIGH-RESOLUTION MORPHOLOGY AND MOLECULAR CLASSIFICATION OF INDIVIDUAL NEURONS TO DEFINE MORPHO-MOLECULAR CELL TYPES IN THE BRAIN. COMPLETE MORPHOLOGY OF INDIVIDUAL NEURONS PROVIDES INSIGHTS OF CONNECTIVITY AND INFORMATION PROCESSING IN THE BRAIN AND REVEALS HOW NEURONAL ACTIVITY IS ROUTED ACROSS BRAIN AREAS. LAYERING TRANSCRIPTOMIC INFORMATION ON TO MORPHOLOGICALLY DISTINCT TYPES PROVIDES THE BASIS TO ACCESS THESE DEFINED NEURON TYPES FOR FUNCTIONAL ANALYSIS. SUCH A COMBINED CLASSIFICATION OF THE BRAIN'S CELL TYPES IS FOUNDATIONAL FOR UNDERSTANDING THE ROLE OF DEFINED NEURON TYPES WITHIN NEURAL CIRCUITS AND HOW INFORMATION PROCESSING WITHIN MULTI-REGIONAL NEURAL CIRCUITS ORCHESTRATE COMPLEX BEHAVIORS. SEQUENCING-BASED APPROACHES HAVE BEEN USED TO CATEGORIZE THE BRAIN'S CELLS INTO TRANSCRIPTOMIC TYPES (T- TYPES) WITH HIGH THROUGHPUT. PARALLEL STRATEGIES FOR A COMPLETE DESCRIPTION OF THE MORPHOLOGICAL TYPES BRAIN-WIDE ARE TOO SLOW AND METHODS FOR A COMBINED ANALYSIS OF THESE TWO MODALITIES ARE LACKING. TO ADDRESS THIS, WE WILL CREATE A BRAIN-WIDE IMAGING AND NEURONAL RECONSTRUCTION PLATFORM THAT PROVIDES FASTER IMAGING USING SELECTIVE PLANE ILLUMINATION MICROSCOPY AND ACCELERATED RECONSTRUCTIONS WITH MODERN MACHINE LEARNING TOOLS BASED ON U-NETS AND REINFORCEMENT LEARNING. WE WILL COMBINE THIS WITH POST HOC TRANSCRIPTOMIC CHARACTERIZATION OF RECONSTRUCTED CELLS WITH MULTIPLEXED FLUORESCENT IN SITU HYBRIDIZATION TO DEFINE MORPHO-MOLECULAR TYPES. WE WILL CREATE A DATA SET OF 2,000 SUCH DUAL CATEGORIZED NEURON TYPES FROM A CRITICAL BRAIN AREA, THE MEDULLA, IN THE MOUSE. THE MEDULLA IS COMPRISED OF DIVERSE NEURONAL TYPES ORGANIZED IN NUMEROUS INTER-RELATED NUCLEI ESSENTIAL FOR AUTONOMIC FUNCTIONS SUCH AS BREATHING, VASOMOTOR CONTROL, INTEGRATION OF ASCENDING INPUTS FROM SENSORY AND INTEROCEPTIVE CHANNELS AND COORDINATION OF MOTOR ACTIONS SUCH AS CHEWING, LICKING AND SWALLOWING. OUR CENSUS OF MORPHO-MOLECULAR MEDULLARY NEURON TYPES WILL LAY THE FOUNDATION FOR A SYSTEMATIC CELL TYPE SPECIFIC FUNCTIONAL INTERROGATION OF THESE NEURONS WITHIN BRAINSTEM CIRCUITS AND IN THE LARGER CONTEXT OF MULTI- REGIONAL BRAIN CIRCUITS. FURTHERMORE, THIS WILL SERVE AS THE BLUEPRINT FOR CARRYING OUT SUCH STUDIES THROUGHOUT THE MOUSE BRAIN, AND OTHER BRAINS, INCLUDING THAT OF PRIMATES.
Mod # | Description | ReasonForModification | Federal Obligation | Date |
|---|---|---|---|---|
| Not listed | ($379k) | 7/2/25 | ||
| Not listed | $0 | 8/30/22 | ||
| Not listed | $0 | 8/30/22 | ||
| Not listed | $4.7m | 2/11/22 |