TY - JOUR
T1 - Functional connectomics spanning multiple areas of mouse visual cortex
AU - The MICrONS Consortium
AU - Zhang, Chi
AU - Xenes, Daniel
AU - Yu, Szi Chieh
AU - Young, Rob
AU - Yin, Wenjing
AU - Ye, Fei
AU - Yatsenko, Dimitri
AU - Yang, Runzhe
AU - Xu, Chris
AU - Wu, Jingpeng
AU - Wong, William
AU - Willie, Ryan
AU - Willie, Kyle
AU - Williams, Sarah
AU - Williams, Grace
AU - Wester, Brock A.
AU - Wanner, Adrian
AU - Wang, Tianyu
AU - Walker, Edgar Y.
AU - Turner, Nicholas L.
AU - Torres, Russel
AU - Tolias, Andreas S.
AU - Tan, Zheng H.
AU - Takeno, Marc
AU - Suckow, Shelby
AU - Swanstrom, Rachael
AU - Smith, Cameron L.
AU - Sinz, Fabian H.
AU - Sterling, Amy
AU - Silversmith, William
AU - Silverman, Ben
AU - Seung, H. Sebastian
AU - Schneider-Mizell, Casey M.
AU - Sauter, Zachary M.
AU - Rose, Victoria
AU - Rivlin, Patricia K.
AU - Reimer, Jacob
AU - Reid, R. Clay
AU - Ramos, Anthony
AU - Popovych, Sergiy
AU - Pitkow, Xaq
AU - Vega, Guadalupe Jovita Yasmin Perez
AU - Patel, Saumil
AU - Papadopoulos, Stelios
AU - Papadopoulos, Christos
AU - Ogedengbe, Oluwaseun
AU - Neace, Erika
AU - Nehoran, Barak
AU - Lu, Ran
AU - Li, Kai
N1 - Publisher Copyright:
© The Author(s) 2025.
PY - 2025/4/10
Y1 - 2025/4/10
N2 - Understanding the brain requires understanding neurons’ functional responses to the circuit architecture shaping them. Here we introduce the MICrONS functional connectomics dataset with dense calcium imaging of around 75,000 neurons in primary visual cortex (VISp) and higher visual areas (VISrl, VISal and VISlm) in an awake mouse that is viewing natural and synthetic stimuli. These data are co-registered with an electron microscopy reconstruction containing more than 200,000 cells and 0.5 billion synapses. Proofreading of a subset of neurons yielded reconstructions that include complete dendritic trees as well the local and inter-areal axonal projections that map up to thousands of cell-to-cell connections per neuron. Released as an open-access resource, this dataset includes the tools for data retrieval and analysis1,2. Accompanying studies describe its use for comprehensive characterization of cell types3, 4, 5–6, a synaptic level connectivity diagram of a cortical column4, and uncovering cell-type-specific inhibitory connectivity that can be linked to gene expression data4,7. Functionally, we identify new computational principles of how information is integrated across visual space8, characterize novel types of neuronal invariances9 and bring structure and function together to uncover a general principle for connectivity between excitatory neurons within and across areas10,11.
AB - Understanding the brain requires understanding neurons’ functional responses to the circuit architecture shaping them. Here we introduce the MICrONS functional connectomics dataset with dense calcium imaging of around 75,000 neurons in primary visual cortex (VISp) and higher visual areas (VISrl, VISal and VISlm) in an awake mouse that is viewing natural and synthetic stimuli. These data are co-registered with an electron microscopy reconstruction containing more than 200,000 cells and 0.5 billion synapses. Proofreading of a subset of neurons yielded reconstructions that include complete dendritic trees as well the local and inter-areal axonal projections that map up to thousands of cell-to-cell connections per neuron. Released as an open-access resource, this dataset includes the tools for data retrieval and analysis1,2. Accompanying studies describe its use for comprehensive characterization of cell types3, 4, 5–6, a synaptic level connectivity diagram of a cortical column4, and uncovering cell-type-specific inhibitory connectivity that can be linked to gene expression data4,7. Functionally, we identify new computational principles of how information is integrated across visual space8, characterize novel types of neuronal invariances9 and bring structure and function together to uncover a general principle for connectivity between excitatory neurons within and across areas10,11.
UR - https://www.scopus.com/pages/publications/105003148663
UR - https://www.scopus.com/pages/publications/105003148663#tab=citedBy
U2 - 10.1038/s41586-025-08790-w
DO - 10.1038/s41586-025-08790-w
M3 - Article
C2 - 40205214
AN - SCOPUS:105003148663
SN - 0028-0836
VL - 640
SP - 435
EP - 447
JO - Nature
JF - Nature
IS - 8058
ER -