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Cellular anatomy of the mouse primary motor cortex.

Rodrigo Muñoz-CastañedaBrian ZinggKatherine S MathoXiaoyin ChenQuanxin WangNicholas N FosterAnan LiArun NarasimhanKarla E HirokawaBing-Xing HuoSamik BannerjeeLaura KorobkovaChris Sin ParkYoung-Gyun ParkMichael S BienkowskiUree ChonDiek W WheelerXiangning LiYun WangMaitham NaeemiPeng XieLijuan LiuKathleen KellyXu AnSarojini M AttiliIan BowmanAnastasiia BludovaAli CetinLiya DingRhonda DrewesFlorence D'OraziCorey ElowskyStephan FischerWilliam GalbavyLei GaoJesse GillisPeter A GroblewskiLin GouJoel D HahnJoshua T HatfieldHouri HintiryanJunxiang Jason HuangHideki KondoXiuli KuangPhilip LesnarXu LiYaoyao LiMengkuan LinDarrick LoJudith MizrachiStephanie MokPhilip R NicovichRamesh PalaniswamyJason PalmerXiaoli QiElise ShenYu-Chi SunHuizhong Whit TaoWayne WakemenYimin WangShenqin YaoJing YuanHuiqing ZhanMuye ZhuLydia NgLi I ZhangByung Kook LimMichael J HawrylyczHui GongJames C GeeYongsoo KimKwanghun ChungXiangdong William YangHanchuan PengQingming LuoPartha P MitraAnthony M ZadorHongkui ZengGiorgio A AscoliZ Josh HuangPavel OstenJulie A HarrisHong-Wei Dong
Published in: Nature (2021)
An essential step toward understanding brain function is to establish a structural framework with cellular resolution on which multi-scale datasets spanning molecules, cells, circuits and systems can be integrated and interpreted1. Here, as part of the collaborative Brain Initiative Cell Census Network (BICCN), we derive a comprehensive cell type-based anatomical description of one exemplar brain structure, the mouse primary motor cortex, upper limb area (MOp-ul). Using genetic and viral labelling, barcoded anatomy resolved by sequencing, single-neuron reconstruction, whole-brain imaging and cloud-based neuroinformatics tools, we delineated the MOp-ul in 3D and refined its sublaminar organization. We defined around two dozen projection neuron types in the MOp-ul and derived an input-output wiring diagram, which will facilitate future analyses of motor control circuitry across molecular, cellular and system levels. This work provides a roadmap towards a comprehensive cellular-resolution description of mammalian brain architecture.
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