This proposal is a continuation of our efforts to create a three-dimensional, Google Earth-like, digital Connectome atlas of the C57Black/6J mouse brain. Currently, we have established the entire pipeline for manufacturing, collecting, and processing large-scale, multi-fluorescent connectivity data in a high-throughput, industrialized manner. To track and organize these large-scale data, we have developed the Laboratory Information Management System (LIMS), which expedites data management and reduces human error. Following an unbiased, systematic, stereotaxic """"""""grid-based"""""""" approach using double coinjections of proven neural circuit tracing technology, we have been constructing a """"""""skeleton"""""""" Connectome map (Phase I), which will constitute about 1600 afferent and 1600 efferent pathways from 400 animals. In Phase II, proposed here, we will continuously generate large-scale, ultra-high-resolution connectivity data following a refined """"""""grid- based"""""""" injection strategy using 1200 animals. The collection of these injections will generate a total of 4800 afferent and 4800 efferent pathways, enabling whole brain coverage. Further, in Phase I, we developed the revolutionary iConnectome visualization program (www.MouseConnectome.org) that features a searchable catalog of multi-fluorescent neural tracer injections available to view at high-resolution within their own bright- field Nissl-stained cytoarchitectural background. The iConnectome is accompanied by a comprehensive connectivity online database (BAMS) that enables users to map complex neuronal networks in a matrix format and to correlate them with connectivity data available for the rat, monkey, and human. In addition, the iConnectome Annotation Reporting System (iCARS), developed by our informatics team, will provide level by level annotation information for each injection site. Powerful informatics tools eventually will enable users to compare connectivity patterns of any injection site within a standard 3D anatomic frame. To do this, in Phase II, we will graphically reconstruct neural pathways that link all brain structures and will deliver four versions of the Mouse Connectome Atlas (MCA): (1) MCA1.0 (Google satellite and Google street view) for displaying high- resolution multi-fluorescent labeled """"""""raw"""""""" imaging data;(2) MCA2.0 (Google Map) will provide graphically reconstructed axonal pathways and retrogradely labeled neurons;(3) MCA3.0 (Google driving direction Roadmap) will be the schematic connectivity route map that links brain structures;and (4) Connectome matrix and table-like graphic representation of neural networks generated by BAMS, which will also provide the text version navigation instructions for MCA3.0. All four versions will be synchronized and integrated into the same framework, which will enable us to assemble the ultimate version Google Earth-like Connectome atlas. Although an enormous undertaking, our Phase I progress and our team with world-class expertise in neuroanatomy, brain imaging, and neuroinformatics is a testament to our ability to deliver the completed three- dimensional digital mouse Connectome atlas in Phase III.

Public Health Relevance

The Mouse Connectome Project (MCP) at UCLA will provide accurate and reliable knowledge of the nervous system's basic wiring diagram at the structural level. Understanding the structural organization of neural circuits is critical for comprehending their functional significance, which can guide research toward understanding the etiology of and the potential treatments for mental health disorders including depression, schizophrenia, autism and attention deficit hyperactivity disorder.

Agency
National Institute of Health (NIH)
Institute
National Institute of Mental Health (NIMH)
Type
Research Project (R01)
Project #
1R01MH094360-01A1
Application #
8292994
Study Section
Special Emphasis Panel (ZRG1-NT-L (09))
Program Officer
Freund, Michelle
Project Start
2012-03-01
Project End
2017-01-31
Budget Start
2012-03-01
Budget End
2013-01-31
Support Year
1
Fiscal Year
2012
Total Cost
$641,168
Indirect Cost
$134,007
Name
University of California Los Angeles
Department
Neurology
Type
Schools of Medicine
DUNS #
092530369
City
Los Angeles
State
CA
Country
United States
Zip Code
90095
Zingg, Brian; Dong, Hong-Wei; Tao, Huizhong Whit et al. (2018) Input-output organization of the mouse claustrum. J Comp Neurol 526:2428-2443
Bienkowski, Michael S; Bowman, Ian; Song, Monica Y et al. (2018) Integration of gene expression and brain-wide connectivity reveals the multiscale organization of mouse hippocampal networks. Nat Neurosci 21:1628-1643
Hintiryan, Houri; Foster, Nicholas N; Bowman, Ian et al. (2016) The mouse cortico-striatal projectome. Nat Neurosci 19:1100-14
Wang, Nan; Gray, Michelle; Lu, Xiao-Hong et al. (2014) Neuronal targets for reducing mutant huntingtin expression to ameliorate disease in a mouse model of Huntington's disease. Nat Med 20:536-41
Bota, Mihail; Talpalaru, Stefan; Hintiryan, Houri et al. (2014) BAMS2 workspace: a comprehensive and versatile neuroinformatic platform for collating and processing neuroanatomical connections. J Comp Neurol 522:3160-76
Zingg, Brian; Hintiryan, Houri; Gou, Lin et al. (2014) Neural networks of the mouse neocortex. Cell 156:1096-111
Bota, Mihail; Dong, Hong-Wei; Swanson, Larry W (2012) Combining collation and annotation efforts toward completion of the rat and mouse connectomes in BAMS. Front Neuroinform 6:2
Hintiryan, Houri; Gou, Lin; Zingg, Brian et al. (2012) Comprehensive connectivity of the mouse main olfactory bulb: analysis and online digital atlas. Front Neuroanat 6:30
Biag, Jonathan; Huang, Yi; Gou, Lin et al. (2012) Cyto- and chemoarchitecture of the hypothalamic paraventricular nucleus in the C57BL/6J male mouse: a study of immunostaining and multiple fluorescent tract tracing. J Comp Neurol 520:6-33