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1.
Cell ; 185(6): 1065-1081.e23, 2022 03 17.
Article in English | MEDLINE | ID: mdl-35245431

ABSTRACT

Motor behaviors are often planned long before execution but only released after specific sensory events. Planning and execution are each associated with distinct patterns of motor cortex activity. Key questions are how these dynamic activity patterns are generated and how they relate to behavior. Here, we investigate the multi-regional neural circuits that link an auditory "Go cue" and the transition from planning to execution of directional licking. Ascending glutamatergic neurons in the midbrain reticular and pedunculopontine nuclei show short latency and phasic changes in spike rate that are selective for the Go cue. This signal is transmitted via the thalamus to the motor cortex, where it triggers a rapid reorganization of motor cortex state from planning-related activity to a motor command, which in turn drives appropriate movement. Our studies show how midbrain can control cortical dynamics via the thalamus for rapid and precise motor behavior.


Subject(s)
Motor Cortex , Movement , Thalamus , Animals , Mesencephalon , Mice , Motor Cortex/physiology , Neurons/physiology , Thalamus/physiology
2.
Cell ; 183(3): 605-619.e22, 2020 10 29.
Article in English | MEDLINE | ID: mdl-33031743

ABSTRACT

Exploration of novel environments ensures survival and evolutionary fitness. It is expressed through exploratory bouts and arrests that change dynamically based on experience. Neural circuits mediating exploratory behavior should therefore integrate experience and use it to select the proper behavioral output. Using a spatial exploration assay, we uncovered an experience-dependent increase in momentary arrests in locations where animals arrested previously. Calcium imaging in freely exploring mice revealed a genetically and projection-defined neuronal ensemble in the basolateral amygdala that is active during self-paced behavioral arrests. This ensemble was recruited in an experience-dependent manner, and closed-loop optogenetic manipulation of these neurons revealed that they are sufficient and necessary to drive experience-dependent arrests during exploration. Projection-specific imaging and optogenetic experiments revealed that these arrests are effected by basolateral amygdala neurons projecting to the central amygdala, uncovering an amygdala circuit that mediates momentary arrests in familiar places but not avoidance or anxiety/fear-like behaviors.


Subject(s)
Basolateral Nuclear Complex/physiology , Central Amygdaloid Nucleus/physiology , Exploratory Behavior/physiology , Nerve Net/physiology , Animals , Basolateral Nuclear Complex/diagnostic imaging , Behavior, Animal/physiology , Central Amygdaloid Nucleus/diagnostic imaging , Female , Locomotion , Machine Learning , Male , Mice, Inbred C57BL , Neurons/physiology , Optical Imaging
3.
Cell ; 179(1): 268-281.e13, 2019 09 19.
Article in English | MEDLINE | ID: mdl-31495573

ABSTRACT

Neuronal cell types are the nodes of neural circuits that determine the flow of information within the brain. Neuronal morphology, especially the shape of the axonal arbor, provides an essential descriptor of cell type and reveals how individual neurons route their output across the brain. Despite the importance of morphology, few projection neurons in the mouse brain have been reconstructed in their entirety. Here we present a robust and efficient platform for imaging and reconstructing complete neuronal morphologies, including axonal arbors that span substantial portions of the brain. We used this platform to reconstruct more than 1,000 projection neurons in the motor cortex, thalamus, subiculum, and hypothalamus. Together, the reconstructed neurons constitute more than 85 meters of axonal length and are available in a searchable online database. Axonal shapes revealed previously unknown subtypes of projection neurons and suggest organizational principles of long-range connectivity.


Subject(s)
Brain/cytology , Brain/diagnostic imaging , Neurites/physiology , Pyramidal Tracts/physiology , Animals , Female , Mice , Mice, Inbred C57BL , Mice, Transgenic , Microscopy, Fluorescence, Multiphoton/methods , Software , Transfection
4.
Cell ; 171(2): 440-455.e14, 2017 Oct 05.
Article in English | MEDLINE | ID: mdl-28942925

ABSTRACT

Corticospinal neurons (CSNs) represent the direct cortical outputs to the spinal cord and play important roles in motor control across different species. However, their organizational principle remains unclear. By using a retrograde labeling system, we defined the requirement of CSNs in the execution of a skilled forelimb food-pellet retrieval task in mice. In vivo imaging of CSN activity during performance revealed the sequential activation of topographically ordered functional ensembles with moderate local mixing. Region-specific manipulations indicate that CSNs from caudal or rostral forelimb area control reaching or grasping, respectively, and both are required in the transitional pronation step. These region-specific CSNs terminate in different spinal levels and locations, therefore preferentially connecting with the premotor neurons of muscles engaged in different steps of the task. Together, our findings suggest that spatially defined groups of CSNs encode different movement modules, providing a logic for parallel-ordered corticospinal circuits to orchestrate multistep motor skills.


Subject(s)
Cervical Cord/physiology , Motor Skills , Neural Pathways , Animals , Calcium/analysis , Cerebral Cortex/cytology , Cerebral Cortex/physiology , Cervical Cord/cytology , Forelimb/physiology , Joints/physiology , Mice , Mice, Inbred C57BL
5.
Nature ; 626(8001): 1066-1072, 2024 Feb.
Article in English | MEDLINE | ID: mdl-38326610

ABSTRACT

Animals can learn about sources of danger while minimizing their own risk by observing how others respond to threats. However, the distinct neural mechanisms by which threats are learned through social observation (known as observational fear learning1-4 (OFL)) to generate behavioural responses specific to such threats remain poorly understood. The dorsomedial prefrontal cortex (dmPFC) performs several key functions that may underlie OFL, including processing of social information and disambiguation of threat cues5-11. Here we show that dmPFC is recruited and required for OFL in mice. Using cellular-resolution microendoscopic calcium imaging, we demonstrate that dmPFC neurons code for observational fear and do so in a manner that is distinct from direct experience. We find that dmPFC neuronal activity predicts upcoming switches between freezing and moving state elicited by threat. By combining neuronal circuit mapping, calcium imaging, electrophysiological recordings and optogenetics, we show that dmPFC projections to the midbrain periaqueductal grey (PAG) constrain observer freezing, and that amygdalar and hippocampal inputs to dmPFC opposingly modulate observer freezing. Together our findings reveal that dmPFC neurons compute a distinct code for observational fear and coordinate long-range neural circuits to select behavioural responses.


Subject(s)
Cues , Fear , Neural Pathways , Prefrontal Cortex , Social Learning , Animals , Mice , Amygdala/physiology , Calcium/metabolism , Electrophysiology , Fear/physiology , Hippocampus/physiology , Neural Pathways/physiology , Neurons/physiology , Optogenetics , Periaqueductal Gray/cytology , Periaqueductal Gray/physiology , Photic Stimulation , Prefrontal Cortex/cytology , Prefrontal Cortex/physiology , Social Learning/physiology , Freezing Reaction, Cataleptic/physiology
6.
J Neurosci ; 2024 Jun 27.
Article in English | MEDLINE | ID: mdl-38937102

ABSTRACT

Neocortex and striatum are topographically organized for sensory and motor functions. While sensory and motor areas are lateralized for touch and motor control, respectively, frontal areas are involved in decision making, where lateralization of function may be less important. This study contrasted the topographic precision of cell type-specific ipsilateral and contralateral cortical projections while varying the injection site location in transgenic mice of both sexes. While sensory cortical areas had strongly topographic outputs to ipsilateral cortex and striatum, they were weaker and not as topographically precise to contralateral targets. Motor cortex had somewhat stronger projections, but still relatively weak contralateral topography. In contrast, frontal cortical areas had high degrees of topographic similarity for both ipsilateral and contralateral projections to cortex and striatum. Corticothalamic organization is mainly ipsilateral, with weaker, more medial contralateral projections. Corticostriatal computations might integrate input outside closed basal ganglia loops using contralateral projections, enabling the two hemispheres to act as a unit to converge on one result in motor planning and decision making.Significance Statement Each cerebral hemisphere is responsible for sensation and movement of the opposite side of the body. Many axonal projections cross the midline to target contralateral areas. Crossed corticocortical, corticostriatal, and corticothalamic projections originate from much of neocortex, but how these projections vary across cortical regions and cell types is unknown. We quantify differences in the strength and targeting of ipsilateral and contralateral projections from frontal, motor, and somatosensory areas. The contralateral corticocortical and corticostriatal projections are proposed to play a larger role in frontal areas than in sensory or motor ones as a circuit basis for unifying computation across hemispheres in motor planning, while contralateral connectivity plays a smaller role in sensory and motor processing.

7.
Nature ; 575(7781): 195-202, 2019 11.
Article in English | MEDLINE | ID: mdl-31666704

ABSTRACT

The mammalian cortex is a laminar structure containing many areas and cell types that are densely interconnected in complex ways, and for which generalizable principles of organization remain mostly unknown. Here we describe a major expansion of the Allen Mouse Brain Connectivity Atlas resource1, involving around a thousand new tracer experiments in the cortex and its main satellite structure, the thalamus. We used Cre driver lines (mice expressing Cre recombinase) to comprehensively and selectively label brain-wide connections by layer and class of projection neuron. Through observations of axon termination patterns, we have derived a set of generalized anatomical rules to describe corticocortical, thalamocortical and corticothalamic projections. We have built a model to assign connection patterns between areas as either feedforward or feedback, and generated testable predictions of hierarchical positions for individual cortical and thalamic areas and for cortical network modules. Our results show that cell-class-specific connections are organized in a shallow hierarchy within the mouse corticothalamic network.


Subject(s)
Cerebral Cortex/anatomy & histology , Cerebral Cortex/cytology , Neural Pathways/anatomy & histology , Neural Pathways/cytology , Thalamus/anatomy & histology , Thalamus/cytology , Animals , Axons/physiology , Cerebral Cortex/physiology , Female , Integrases/genetics , Integrases/metabolism , Male , Mice , Mice, Inbred C57BL , Neural Pathways/physiology , Thalamus/physiology
8.
Nature ; 563(7729): 79-84, 2018 11.
Article in English | MEDLINE | ID: mdl-30382200

ABSTRACT

Activity in the motor cortex predicts movements, seconds before they are initiated. This preparatory activity has been observed across cortical layers, including in descending pyramidal tract neurons in layer 5. A key question is how preparatory activity is maintained without causing movement, and is ultimately converted to a motor command to trigger appropriate movements. Here, using single-cell transcriptional profiling and axonal reconstructions, we identify two types of pyramidal tract neuron. Both types project to several targets in the basal ganglia and brainstem. One type projects to thalamic regions that connect back to motor cortex; populations of these neurons produced early preparatory activity that persisted until the movement was initiated. The second type projects to motor centres in the medulla and mainly produced late preparatory activity and motor commands. These results indicate that two types of motor cortex output neurons have specialized roles in motor control.


Subject(s)
Efferent Pathways/cytology , Efferent Pathways/physiology , Motor Cortex/cytology , Motor Cortex/physiology , Movement/physiology , Animals , Basal Ganglia/cytology , Brain Stem/cytology , Glutamic Acid/metabolism , Medulla Oblongata/cytology , Mice , Neurons/metabolism , Pyramidal Cells/classification , Pyramidal Cells/physiology , Single-Cell Analysis , Transcriptome
9.
Nature ; 545(7653): 181-186, 2017 05 11.
Article in English | MEDLINE | ID: mdl-28467817

ABSTRACT

Persistent neural activity maintains information that connects past and future events. Models of persistent activity often invoke reverberations within local cortical circuits, but long-range circuits could also contribute. Neurons in the mouse anterior lateral motor cortex (ALM) have been shown to have selective persistent activity that instructs future actions. The ALM is connected bidirectionally with parts of the thalamus, including the ventral medial and ventral anterior-lateral nuclei. We recorded spikes from the ALM and thalamus during tactile discrimination with a delayed directional response. Here we show that, similar to ALM neurons, thalamic neurons exhibited selective persistent delay activity that predicted movement direction. Unilateral photoinhibition of delay activity in the ALM or thalamus produced contralesional neglect. Photoinhibition of the thalamus caused a short-latency and near-complete collapse of ALM activity. Similarly, photoinhibition of the ALM diminished thalamic activity. Our results show that the thalamus is a circuit hub in motor preparation and suggest that persistent activity requires reciprocal excitation across multiple brain areas.


Subject(s)
Motor Cortex/physiology , Thalamus/physiology , Animals , Female , Male , Mice , Motor Cortex/cytology , Movement/physiology , Neurons/physiology , Thalamus/cytology , Touch/physiology
10.
J Neurosci ; 41(4): 711-725, 2021 01 27.
Article in English | MEDLINE | ID: mdl-33268547

ABSTRACT

Elucidation of the mechanism of dopamine signaling to ERK that underlies plasticity in dopamine D1 receptor-expressing neurons leading to acquired cocaine preference is incomplete. NCS-Rapgef2 is a novel cAMP effector, expressed in neuronal and endocrine cells in adult mammals, that is required for D1 dopamine receptor-dependent ERK phosphorylation in mouse brain. In this report, we studied the effects of abrogating NCS-Rapgef2 expression on cAMP-dependent ERK→Egr-1/Zif268 signaling in cultured neuroendocrine cells; in D1 medium spiny neurons of NAc slices; and in either male or female mouse brain in a region-specific manner. NCS-Rapgef2 gene deletion in the NAc in adult mice, using adeno-associated virus-mediated expression of cre recombinase, eliminated cocaine-induced ERK phosphorylation and Egr-1/Zif268 upregulation in D1-medium spiny neurons and cocaine-induced behaviors, including locomotor sensitization and conditioned place preference. Abrogation of NCS-Rapgef2 gene expression in mPFC and BLA, by crossing mice bearing a floxed Rapgef2 allele with a cre mouse line driven by calcium/calmodulin-dependent kinase IIα promoter also eliminated cocaine-induced phospho-ERK activation and Egr-1/Zif268 induction, but without effect on the cocaine-induced behaviors. Our results indicate that NCS-Rapgef2 signaling to ERK in dopamine D1 receptor-expressing neurons in the NAc, but not in corticolimbic areas, contributes to cocaine-induced locomotor sensitization and conditioned place preference. Ablation of cocaine-dependent ERK activation by elimination of NCS-Rapgef2 occurred with no effect on phosphorylation of CREB in D1 dopaminoceptive neurons of NAc. This study reveals a new cAMP-dependent signaling pathway for cocaine-induced behavioral adaptations, mediated through NCS-Rapgef2/phospho-ERK activation, independently of PKA/CREB signaling.SIGNIFICANCE STATEMENT ERK phosphorylation in dopamine D1 receptor-expressing neurons exerts a pivotal role in psychostimulant-induced neuronal gene regulation and behavioral adaptation, including locomotor sensitization and drug preference in rodents. In this study, we examined the role of dopamine signaling through the D1 receptor via a novel pathway initiated through the cAMP-activated guanine nucleotide exchange factor NCS-Rapgef2 in mice. NCS-Rapgef2 in the NAc is required for activation of ERK and Egr-1/Zif268 in D1 dopaminoceptive neurons after acute cocaine administration, and subsequent enhanced locomotor response and drug seeking behavior after repeated cocaine administration. This novel component in dopamine signaling provides a potential new target for intervention in psychostimulant-shaped behaviors, and new understanding of how D1-medium spiny neurons encode the experience of psychomotor stimulant exposure.


Subject(s)
Cocaine/pharmacology , Conditioning, Operant/drug effects , Dopamine Uptake Inhibitors/pharmacology , Dopaminergic Neurons/drug effects , Motor Activity/drug effects , Receptors, Dopamine D1/drug effects , Signal Transduction/drug effects , Animals , Cyclic AMP/physiology , Cyclic AMP Response Element-Binding Protein/genetics , Early Growth Response Protein 1/drug effects , Female , Guanine Nucleotide Exchange Factors/drug effects , Guanine Nucleotide Exchange Factors/genetics , MAP Kinase Signaling System/drug effects , Male , Mice , Mice, Inbred C57BL , Nucleus Accumbens/drug effects , Prefrontal Cortex/drug effects , Ventral Striatum/drug effects
11.
J Neurosci ; 40(19): 3768-3782, 2020 05 06.
Article in English | MEDLINE | ID: mdl-32253361

ABSTRACT

The superior colliculus (SC) is arguably the most important visual structure in the mouse brain and is well known for its involvement in innate responses to visual threats and prey items. In other species, the SC plays a central role in voluntary as well as innate visual functions, including crucial contributions to selective attention and perceptual decision-making. In the mouse, the possible role of the SC in voluntary visual choice behaviors has not been established. Here, we demonstrate that the mouse SC of both sexes plays a causal role in visual perceptual decision-making by transiently inhibiting SC activity during an orientation change detection task. First, unilateral SC inhibition-induced spatially specific deficits in detection. Hit rates were reduced, and reaction times increased for orientation changes in the contralateral but not ipsilateral visual field. Second, the deficits caused by SC inhibition were specific to a temporal epoch coincident with early visual burst responses in the SC. Inhibiting SC during this 100-ms period caused a contralateral detection deficit, whereas inhibition immediately before or after did not. Third, SC inhibition reduced visual detection sensitivity. Psychometric analysis revealed that inhibiting SC visual activity significantly increased detection thresholds for contralateral orientation changes. In addition, effects on detection thresholds and lapse rates caused by SC inhibition were larger in the presence of a competing visual stimulus, indicating a role for the mouse SC in visual target selection. Together, our results demonstrate that the mouse SC is necessary for the normal performance of voluntary visual choice behaviors.SIGNIFICANCE STATEMENT The mouse superior colliculus (SC) has become a popular model for studying the circuit organization and development of the visual system. Although the SC is a fundamental component of the visual pathways in mice, its role in visual perceptual decision-making is not clear. By investigating how temporally precise SC inhibition influenced behavioral performance during a visually guided orientation change detection task, we identified a 100-ms temporal epoch of SC visual activity that is crucial for the ability of mice to detect behaviorally relevant visual changes. In addition, we found that SC inhibition also caused deficits in visual target selection. Thus, our findings highlight the importance of the SC for visual perceptual choice behavior in the mouse.


Subject(s)
Choice Behavior/physiology , Superior Colliculi/physiology , Visual Perception/physiology , Animals , Attention/physiology , Female , Male , Mice , Mice, Inbred C57BL , Mice, Transgenic , Neurons/physiology
12.
J Neurosci ; 40(4): 743-768, 2020 01 22.
Article in English | MEDLINE | ID: mdl-31811030

ABSTRACT

Within the basal ganglia circuit, the external globus pallidus (GPe) is critically involved in motor control. Aside from Foxp2+ neurons and ChAT+ neurons that have been established as unique neuron types, there is little consensus on the classification of GPe neurons. Properties of the remaining neuron types are poorly defined. In this study, we leverage new mouse lines, viral tools, and molecular markers to better define GPe neuron subtypes. We found that Sox6 represents a novel, defining marker for GPe neuron subtypes. Lhx6+ neurons that lack the expression of Sox6 were devoid of both parvalbumin and Npas1. This result confirms previous assertions of the existence of a unique Lhx6+ population. Neurons that arise from the Dbx1+ lineage were similarly abundant in the GPe and displayed a heterogeneous makeup. Importantly, tracing experiments revealed that Npas1+-Nkx2.1+ neurons represent the principal noncholinergic, cortically-projecting neurons. In other words, they form the pallido-cortical arm of the cortico-pallido-cortical loop. Our data further show that pyramidal-tract neurons in the cortex collateralized within the GPe, forming a closed-loop system between the two brain structures. Overall, our findings reconcile some of the discrepancies that arose from differences in techniques or the reliance on preexisting tools. Although spatial distribution and electrophysiological properties of GPe neurons reaffirm the diversification of GPe subtypes, statistical analyses strongly support the notion that these neuron subtypes can be categorized under the two principal neuron classes: PV+ neurons and Npas1+ neurons.SIGNIFICANCE STATEMENT The poor understanding of the neuronal composition in the external globus pallidus (GPe) undermines our ability to interrogate its precise behavioral and disease involvements. In this study, 12 different genetic crosses were used, hundreds of neurons were electrophysiologically characterized, and >100,000 neurons were histologically- and/or anatomically-profiled. Our current study further establishes the segregation of GPe neuron classes and illustrates the complexity of GPe neurons in adult mice. Our results support the idea that Npas1+-Nkx2.1+ neurons are a distinct GPe neuron subclass. By providing a detailed analysis of the organization of the cortico-pallidal-cortical projection, our findings establish the cellular and circuit substrates that can be important for motor function and dysfunction.


Subject(s)
Basic Helix-Loop-Helix Transcription Factors/metabolism , Cerebral Cortex/metabolism , Globus Pallidus/metabolism , Nerve Tissue Proteins/metabolism , Neurons/metabolism , Thyroid Nuclear Factor 1/metabolism , Animals , Basic Helix-Loop-Helix Transcription Factors/genetics , Mice , Mice, Transgenic , Nerve Tissue Proteins/genetics , Neural Pathways/metabolism , Thyroid Nuclear Factor 1/genetics
13.
Nature ; 519(7541): 51-6, 2015 Mar 05.
Article in English | MEDLINE | ID: mdl-25731172

ABSTRACT

Activity in motor cortex predicts specific movements seconds before they occur, but how this preparatory activity relates to upcoming movements is obscure. We dissected the conversion of preparatory activity to movement within a structured motor cortex circuit. An anterior lateral region of the mouse cortex (a possible homologue of premotor cortex in primates) contains equal proportions of intermingled neurons predicting ipsi- or contralateral movements, yet unilateral inactivation of this cortical region during movement planning disrupts contralateral movements. Using cell-type-specific electrophysiology, cellular imaging and optogenetic perturbation, we show that layer 5 neurons projecting within the cortex have unbiased laterality. Activity with a contralateral population bias arises specifically in layer 5 neurons projecting to the brainstem, and only late during movement planning. These results reveal the transformation of distributed preparatory activity into movement commands within hierarchically organized cortical circuits.


Subject(s)
Motor Cortex/physiology , Movement/physiology , Neural Pathways/physiology , Animals , Behavior, Animal/physiology , Brain Stem/cytology , Brain Stem/physiology , Electrophysiology , Mice , Motor Cortex/cytology , Neural Pathways/cytology , Pyramidal Cells/cytology , Pyramidal Cells/physiology
14.
Nature ; 521(7550): 85-9, 2015 May 07.
Article in English | MEDLINE | ID: mdl-25739505

ABSTRACT

The basal ganglia are phylogenetically conserved subcortical nuclei necessary for coordinated motor action and reward learning. Current models postulate that the basal ganglia modulate cerebral cortex indirectly via an inhibitory output to thalamus, bidirectionally controlled by direct- and indirect-pathway striatal projection neurons (dSPNs and iSPNs, respectively). The basal ganglia thalamic output sculpts cortical activity by interacting with signals from sensory and motor systems. Here we describe a direct projection from the globus pallidus externus (GP), a central nucleus of the basal ganglia, to frontal regions of the cerebral cortex (FC). Two cell types make up the GP-FC projection, distinguished by their electrophysiological properties, cortical projections and expression of choline acetyltransferase (ChAT), a synthetic enzyme for the neurotransmitter acetylcholine (ACh). Despite these differences, ChAT(+) cells, which have been historically identified as an extension of the nucleus basalis, as well as ChAT(-) cells, release the inhibitory neurotransmitter GABA (γ-aminobutyric acid) and are inhibited by iSPNs and dSPNs of dorsal striatum. Thus, GP-FC cells comprise a direct GABAergic/cholinergic projection under the control of striatum that activates frontal cortex in vivo. Furthermore, iSPN inhibition of GP-FC cells is sensitive to dopamine 2 receptor signalling, revealing a pathway by which drugs that target dopamine receptors for the treatment of neuropsychiatric disorders can act in the basal ganglia to modulate frontal cortices.


Subject(s)
Frontal Lobe/metabolism , Globus Pallidus/metabolism , gamma-Aminobutyric Acid/metabolism , Acetylcholine/metabolism , Animals , Antipsychotic Agents/pharmacology , Basal Nucleus of Meynert/cytology , Basal Nucleus of Meynert/metabolism , Choline O-Acetyltransferase/metabolism , Electrophysiological Phenomena , Female , Frontal Lobe/cytology , Frontal Lobe/drug effects , Globus Pallidus/cytology , Globus Pallidus/drug effects , Globus Pallidus/enzymology , Macaca mulatta , Male , Mice , Neural Pathways , Receptors, Dopamine D2/metabolism , Signal Transduction
15.
Nature ; 508(7495): 207-14, 2014 Apr 10.
Article in English | MEDLINE | ID: mdl-24695228

ABSTRACT

Comprehensive knowledge of the brain's wiring diagram is fundamental for understanding how the nervous system processes information at both local and global scales. However, with the singular exception of the C. elegans microscale connectome, there are no complete connectivity data sets in other species. Here we report a brain-wide, cellular-level, mesoscale connectome for the mouse. The Allen Mouse Brain Connectivity Atlas uses enhanced green fluorescent protein (EGFP)-expressing adeno-associated viral vectors to trace axonal projections from defined regions and cell types, and high-throughput serial two-photon tomography to image the EGFP-labelled axons throughout the brain. This systematic and standardized approach allows spatial registration of individual experiments into a common three dimensional (3D) reference space, resulting in a whole-brain connectivity matrix. A computational model yields insights into connectional strength distribution, symmetry and other network properties. Virtual tractography illustrates 3D topography among interconnected regions. Cortico-thalamic pathway analysis demonstrates segregation and integration of parallel pathways. The Allen Mouse Brain Connectivity Atlas is a freely available, foundational resource for structural and functional investigations into the neural circuits that support behavioural and cognitive processes in health and disease.


Subject(s)
Brain/anatomy & histology , Brain/cytology , Connectome , Animals , Atlases as Topic , Axons/physiology , Cerebral Cortex/cytology , Corpus Striatum/cytology , Male , Mice , Mice, Inbred C57BL , Models, Neurological , Neuroanatomical Tract-Tracing Techniques , Thalamus/cytology
16.
Annu Rev Neurosci ; 34: 441-66, 2011.
Article in English | MEDLINE | ID: mdl-21469956

ABSTRACT

The basal ganglia are a chain of subcortical nuclei that facilitate action selection. Two striatal projection systems--so-called direct and indirect pathways--form the functional backbone of the basal ganglia circuit. Twenty years ago, investigators proposed that the striatum's ability to use dopamine (DA) rise and fall to control action selection was due to the segregation of D(1) and D(2) DA receptors in direct- and indirect-pathway spiny projection neurons. Although this hypothesis sparked a debate, the evidence that has accumulated since then clearly supports this model. Recent advances in the means of marking neural circuits with optical or molecular reporters have revealed a clear-cut dichotomy between these two cell types at the molecular, anatomical, and physiological levels. The contrast provided by these studies has provided new insights into how the striatum responds to fluctuations in DA signaling and how diseases that alter this signaling change striatal function.


Subject(s)
Basal Ganglia/metabolism , Corpus Striatum/physiology , Dopamine/metabolism , Models, Neurological , Animals , Feedback, Physiological/physiology , Neural Pathways/physiology , Neurons/physiology , Parkinson Disease/pathology , Receptors, Dopamine/metabolism , Signal Transduction
17.
Proc Natl Acad Sci U S A ; 113(40): 11318-11323, 2016 10 04.
Article in English | MEDLINE | ID: mdl-27647894

ABSTRACT

The dopamine systems of the brain powerfully influence movement and motivation. We demonstrate that striatonigral fibers originating in striosomes form highly unusual bouquet-like arborizations that target bundles of ventrally extending dopamine-containing dendrites and clusters of their parent nigral cell bodies. Retrograde tracing showed that these clustered cell bodies in turn project to the striatum as part of the classic nigrostriatal pathway. Thus, these striosome-dendron formations, here termed "striosome-dendron bouquets," likely represent subsystems with the nigro-striato-nigral loop that are affected in human disorders including Parkinson's disease. Within the bouquets, expansion microscopy resolved many individual striosomal fibers tightly intertwined with the dopamine-containing dendrites and also with afferents labeled by glutamatergic, GABAergic, and cholinergic markers and markers for astrocytic cells and fibers and connexin 43 puncta. We suggest that the striosome-dendron bouquets form specialized integrative units within the dopamine-containing nigral system. Given evidence that striosomes receive input from cortical regions related to the control of mood and motivation and that they link functionally to reinforcement and decision-making, the striosome-dendron bouquets could be critical to dopamine-related function in health and disease.


Subject(s)
Dopamine/metabolism , Dopaminergic Neurons/ultrastructure , Parkinson Disease/physiopathology , Substantia Nigra/ultrastructure , Animals , Basal Ganglia/physiology , Basal Ganglia/ultrastructure , Brain Mapping , Corpus Striatum/metabolism , Corpus Striatum/physiology , Corpus Striatum/ultrastructure , Dendrimers/chemistry , Dendrites/physiology , Dendrites/ultrastructure , Dopaminergic Neurons/metabolism , Humans , Mice , Neostriatum/metabolism , Neostriatum/physiology , Neostriatum/ultrastructure , Parkinson Disease/metabolism , Substantia Nigra/metabolism , Substantia Nigra/physiology
18.
J Neurosci Res ; 96(9): 1467-1475, 2018 09.
Article in English | MEDLINE | ID: mdl-27862192

ABSTRACT

The neuronal circuits defined by the axonal projections of pyramidal neurons in the cerebral cortex are responsible for processing sensory and other information to plan and execute behavior. Subtypes of cortical pyramidal neurons are organized across layers, with those in different layers distinguished by their patterns of axonal projections and connectivity. For example, those in layers 2 and 3 project between cortical areas to integrate sensory and other information with motor areas; while those in layers 5 and 6 also integrate information between cortical areas, but also project to subcortical structures involved in the generation of behavior. Recent advances in neuroanatomical techniques allow one to target specific subtypes of cortical pyramidal neurons and label both their inputs and projections. Combining these methods with neurophysiological recording techniques and newly introduced atlases of the mouse brain provide the opportunity to achieve a detailed view of the organization of cerebral cortical circuits. © 2016 Wiley Periodicals, Inc.


Subject(s)
Cerebral Cortex/cytology , Pyramidal Cells/cytology , Animals , Brain/cytology , Mice , Neural Pathways/cytology , Neuroanatomical Tract-Tracing Techniques/methods
19.
Nat Methods ; 12(6): 568-76, 2015 Jun.
Article in English | MEDLINE | ID: mdl-25915120

ABSTRACT

We describe an engineered family of highly antigenic molecules based on GFP-like fluorescent proteins. These molecules contain numerous copies of peptide epitopes and simultaneously bind IgG antibodies at each location. These 'spaghetti monster' fluorescent proteins (smFPs) distributed well in neurons, notably into small dendrites, spines and axons. smFP immunolabeling localized weakly expressed proteins not well resolved with traditional epitope tags. By varying epitope and scaffold, we generated a diverse family of mutually orthogonal antigens. In cultured neurons and mouse and fly brains, smFP probes allowed robust, orthogonal multicolor visualization of proteins, cell populations and neuropil. smFP variants complement existing tracers and greatly increase the number of simultaneous imaging channels, and they performed well in advanced preparations such as array tomography, super-resolution fluorescence imaging and electron microscopy. In living cells, the probes improved single-molecule image tracking and increased yield for RNA-seq. These probes facilitate new experiments in connectomics, transcriptomics and protein localization.


Subject(s)
Luminescent Proteins/chemistry , Microscopy, Electron/methods , Microscopy, Fluorescence/methods , Animals , Antigens , Brain Mapping , Drosophila , Mice , Models, Molecular , Molecular Sequence Data , Neurons , Protein Conformation
20.
J Neurosci ; 34(29): 9484-96, 2014 Jul 16.
Article in English | MEDLINE | ID: mdl-25031392

ABSTRACT

The mesofrontal dopaminergic circuit, which connects the midbrain motivation center to the cortical executive center, is engaged in control of motivated behaviors. In addition, deficiencies in this circuit are associated with adolescent-onset psychiatric disorders in humans. Developmental studies suggest that the mesofrontal circuit exhibits a protracted maturation through adolescence. However, whether the structure and function of this circuit are modifiable by activity in dopaminergic neurons during adolescence remains unknown. Using optogenetic stimulation and in vivo two-photon imaging in adolescent mice, we found that phasic, but not tonic, dopamine neuron activity induces the formation of mesofrontal axonal boutons. In contrast, in adult mice, the effect of phasic activity diminishes. Furthermore, our results showed that dopaminergic and glutamatergic transmission regulate this axonal plasticity in adolescence and inhibition of dopamine D2-type receptors restores this plasticity in adulthood. Finally, we found that phasic activation of dopamine neurons also induces greater changes in mesofrontal circuit activity and psychomotor response in adolescent mice than in adult mice. Together, our findings demonstrate that the structure and function of the mesofrontal circuit are modifiable by phasic activity in dopaminergic neurons during adolescence and suggest that the greater plasticity in adolescence may facilitate activity-dependent strengthening of dopaminergic input and improvement in behavioral control.


Subject(s)
Dopaminergic Neurons/physiology , Frontal Lobe/cytology , Gene Expression Regulation, Developmental/physiology , Neuronal Plasticity/physiology , Ventral Tegmental Area/cytology , Action Potentials/drug effects , Action Potentials/genetics , Age Factors , Amphetamine/pharmacology , Animals , Animals, Newborn , Dextrans/pharmacokinetics , Dopamine Agents/pharmacology , Excitatory Amino Acid Agents/pharmacology , Frontal Lobe/metabolism , Gene Expression Regulation, Developmental/drug effects , Gene Expression Regulation, Developmental/genetics , Male , Mice , Mice, Inbred C57BL , Mice, Transgenic , Motor Activity/drug effects , Motor Activity/genetics , Neural Pathways/physiology , Neuronal Plasticity/genetics , Psychomotor Performance/physiology , Rhodamines/pharmacokinetics , Tyrosine 3-Monooxygenase/genetics , Ventral Tegmental Area/metabolism
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