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1.
Cell ; 184(16): 4329-4347.e23, 2021 08 05.
Artículo en Inglés | MEDLINE | ID: mdl-34237253

RESUMEN

We have produced gene expression profiles of all 302 neurons of the C. elegans nervous system that match the single-cell resolution of its anatomy and wiring diagram. Our results suggest that individual neuron classes can be solely identified by combinatorial expression of specific gene families. For example, each neuron class expresses distinct codes of ∼23 neuropeptide genes and ∼36 neuropeptide receptors, delineating a complex and expansive "wireless" signaling network. To demonstrate the utility of this comprehensive gene expression catalog, we used computational approaches to (1) identify cis-regulatory elements for neuron-specific gene expression and (2) reveal adhesion proteins with potential roles in process placement and synaptic specificity. Our expression data are available at https://cengen.org and can be interrogated at the web application CengenApp. We expect that this neuron-specific directory of gene expression will spur investigations of underlying mechanisms that define anatomy, connectivity, and function throughout the C. elegans nervous system.


Asunto(s)
Caenorhabditis elegans/metabolismo , Sistema Nervioso/metabolismo , Animales , Caenorhabditis elegans/genética , Proteínas de Caenorhabditis elegans/genética , Proteínas de Caenorhabditis elegans/metabolismo , Colorantes Fluorescentes/metabolismo , Regulación del Desarrollo de la Expresión Génica , Genes Reporteros , Larva/metabolismo , Neuronas/metabolismo , Neuropéptidos/genética , Neuropéptidos/metabolismo , Motivos de Nucleótidos/genética , RNA-Seq , Secuencias Reguladoras de Ácidos Nucleicos/genética , Transducción de Señal/genética , Factores de Transcripción/metabolismo , Transcripción Genética
2.
Cell ; 182(1): 177-188.e27, 2020 07 09.
Artículo en Inglés | MEDLINE | ID: mdl-32619423

RESUMEN

Comprehensive analysis of neuronal networks requires brain-wide measurement of connectivity, activity, and gene expression. Although high-throughput methods are available for mapping brain-wide activity and transcriptomes, comparable methods for mapping region-to-region connectivity remain slow and expensive because they require averaging across hundreds of brains. Here we describe BRICseq (brain-wide individual animal connectome sequencing), which leverages DNA barcoding and sequencing to map connectivity from single individuals in a few weeks and at low cost. Applying BRICseq to the mouse neocortex, we find that region-to-region connectivity provides a simple bridge relating transcriptome to activity: the spatial expression patterns of a few genes predict region-to-region connectivity, and connectivity predicts activity correlations. We also exploited BRICseq to map the mutant BTBR mouse brain, which lacks a corpus callosum, and recapitulated its known connectopathies. BRICseq allows individual laboratories to compare how age, sex, environment, genetics, and species affect neuronal wiring and to integrate these with functional activity and gene expression.


Asunto(s)
Conectoma , Regulación de la Expresión Génica , Red Nerviosa/fisiología , Neuronas/fisiología , Análisis de Secuencia de ADN , Animales , Mapeo Encefálico , Toma de Decisiones , Masculino , Ratones Endogámicos C57BL , Ratones Mutantes Neurológicos , Reproducibilidad de los Resultados , Análisis y Desempeño de Tareas
3.
Cell ; 176(5): 1174-1189.e16, 2019 02 21.
Artículo en Inglés | MEDLINE | ID: mdl-30686580

RESUMEN

The specific patterns and functional properties of electrical synapses of a nervous system are defined by the neuron-specific complement of electrical synapse constituents. We systematically examined the molecular composition of the electrical connectome of the nematode C. elegans through a genome- and nervous-system-wide analysis of the expression patterns of the invertebrate electrical synapse constituents, the innexins. We observe highly complex combinatorial expression patterns throughout the nervous system and found that these patterns change in a strikingly neuron-type-specific manner throughout the nervous system when animals enter an insulin-controlled diapause arrest stage under harsh environmental conditions, the dauer stage. By analyzing several individual synapses, we demonstrate that dauer-specific electrical synapse remodeling is responsible for specific aspects of the altered locomotory and chemosensory behavior of dauers. We describe an intersectional gene regulatory mechanism involving terminal selector and FoxO transcription factors mediating dynamic innexin expression plasticity in a neuron-type- and environment-specific manner.


Asunto(s)
Caenorhabditis elegans/fisiología , Sinapsis Eléctricas/metabolismo , Plasticidad Neuronal/fisiología , Animales , Caenorhabditis elegans/metabolismo , Proteínas de Caenorhabditis elegans/metabolismo , Conectoma/métodos , Regulación del Desarrollo de la Expresión Génica/genética , Larva/metabolismo , Neuronas/metabolismo , Transducción de Señal , Sinapsis/metabolismo , Factores de Transcripción/metabolismo
4.
Cell ; 167(3): 858-870.e19, 2016 Oct 20.
Artículo en Inglés | MEDLINE | ID: mdl-27720450

RESUMEN

Even a simple sensory stimulus can elicit distinct innate behaviors and sequences. During sensorimotor decisions, competitive interactions among neurons that promote distinct behaviors must ensure the selection and maintenance of one behavior, while suppressing others. The circuit implementation of these competitive interactions is still an open question. By combining comprehensive electron microscopy reconstruction of inhibitory interneuron networks, modeling, electrophysiology, and behavioral studies, we determined the circuit mechanisms that contribute to the Drosophila larval sensorimotor decision to startle, explore, or perform a sequence of the two in response to a mechanosensory stimulus. Together, these studies reveal that, early in sensory processing, (1) reciprocally connected feedforward inhibitory interneurons implement behavioral choice, (2) local feedback disinhibition provides positive feedback that consolidates and maintains the chosen behavior, and (3) lateral disinhibition promotes sequence transitions. The combination of these interconnected circuit motifs can implement both behavior selection and the serial organization of behaviors into a sequence.


Asunto(s)
Conducta de Elección/fisiología , Drosophila melanogaster/fisiología , Retroalimentación Sensorial/fisiología , Mecanotransducción Celular/fisiología , Células de Renshaw/fisiología , Animales , Larva/fisiología , Optogenética
5.
Annu Rev Neurosci ; 45: 533-560, 2022 07 08.
Artículo en Inglés | MEDLINE | ID: mdl-35803587

RESUMEN

The neocortex is a complex neurobiological system with many interacting regions. How these regions work together to subserve flexible behavior and cognition has become increasingly amenable to rigorous research. Here, I review recent experimental and theoretical work on the modus operandi of a multiregional cortex. These studies revealed several general principles for the neocortical interareal connectivity, low-dimensional macroscopic gradients of biological properties across cortical areas, and a hierarchy of timescales for information processing. Theoretical work suggests testable predictions regarding differential excitation and inhibition along feedforward and feedback pathways in the cortical hierarchy. Furthermore, modeling of distributed working memory and simple decision-making has given rise to a novel mathematical concept, dubbed bifurcation in space, that potentially explains how different cortical areas, with a canonical circuit organization but gradients of biological heterogeneities, are able to subserve their respective (e.g., sensory coding versus executive control) functions in a modularly organized brain.


Asunto(s)
Neocórtex , Cognición/fisiología , Función Ejecutiva , Memoria a Corto Plazo/fisiología , Neocórtex/fisiología , Red Nerviosa/fisiología
6.
Physiol Rev ; 100(3): 1181-1228, 2020 07 01.
Artículo en Inglés | MEDLINE | ID: mdl-32078778

RESUMEN

For more than one century, brain processing was mainly thought in a localizationist framework, in which one given function was underpinned by a discrete, isolated cortical area, and with a similar cerebral organization across individuals. However, advances in brain mapping techniques in humans have provided new insights into the organizational principles of anatomo-functional architecture. Here, we review recent findings gained from neuroimaging, electrophysiological, as well as lesion studies. Based on these recent data on brain connectome, we challenge the traditional, outdated localizationist view and propose an alternative meta-networking theory. This model holds that complex cognitions and behaviors arise from the spatiotemporal integration of distributed but relatively specialized networks underlying conation and cognition (e.g., language, spatial cognition). Dynamic interactions between such circuits result in a perpetual succession of new equilibrium states, opening the door to considerable interindividual behavioral variability and to neuroplastic phenomena. Indeed, a meta-networking organization underlies the uniquely human propensity to learn complex abilities, and also explains how postlesional reshaping can lead to some degrees of functional compensation in brain-damaged patients. We discuss the major implications of this approach in fundamental neurosciences as well as for clinical developments, especially in neurology, psychiatry, neurorehabilitation, and restorative neurosurgery.


Asunto(s)
Corteza Cerebral/anatomía & histología , Corteza Cerebral/fisiología , Red Nerviosa , Conectoma/métodos , Humanos , Vías Nerviosas/fisiología , Plasticidad Neuronal/fisiología
7.
Proc Natl Acad Sci U S A ; 121(33): e2314074121, 2024 Aug 13.
Artículo en Inglés | MEDLINE | ID: mdl-39121162

RESUMEN

Adolescent development of human brain structural and functional networks is increasingly recognized as fundamental to emergence of typical and atypical adult cognitive and emotional proodal magnetic resonance imaging (MRI) data collected from N [Formula: see text] 300 healthy adolescents (51%; female; 14 to 26 y) each scanned repeatedly in an accelerated longitudinal design, to provide an analyzable dataset of 469 structural scans and 448 functional MRI scans. We estimated the morphometric similarity between each possible pair of 358 cortical areas on a feature vector comprising six macro- and microstructural MRI metrics, resulting in a morphometric similarity network (MSN) for each scan. Over the course of adolescence, we found that morphometric similarity increased in paralimbic cortical areas, e.g., insula and cingulate cortex, but generally decreased in neocortical areas, and these results were replicated in an independent developmental MRI cohort (N [Formula: see text] 304). Increasing hubness of paralimbic nodes in MSNs was associated with increased strength of coupling between their morphometric similarity and functional connectivity. Decreasing hubness of neocortical nodes in MSNs was associated with reduced strength of structure-function coupling and increasingly diverse functional connections in the corresponding fMRI networks. Neocortical areas became more structurally differentiated and more functionally integrative in a metabolically expensive process linked to cortical thinning and myelination, whereas paralimbic areas specialized for affective and interoceptive functions became less differentiated, as hypothetically predicted by a developmental transition from periallocortical to proisocortical organization of the cortex. Cytoarchitectonically distinct zones of the human cortex undergo distinct neurodevelopmental programs during typical adolescence.


Asunto(s)
Imagen por Resonancia Magnética , Neocórtex , Humanos , Adolescente , Femenino , Masculino , Neocórtex/diagnóstico por imagen , Neocórtex/crecimiento & desarrollo , Neocórtex/fisiología , Adulto , Adulto Joven , Mapeo Encefálico/métodos , Desarrollo del Adolescente/fisiología , Red Nerviosa/fisiología , Red Nerviosa/diagnóstico por imagen , Red Nerviosa/crecimiento & desarrollo , Encéfalo/diagnóstico por imagen , Encéfalo/crecimiento & desarrollo , Encéfalo/fisiología
8.
Proc Natl Acad Sci U S A ; 121(21): e2316799121, 2024 May 21.
Artículo en Inglés | MEDLINE | ID: mdl-38753511

RESUMEN

The mammalian brain implements sophisticated sensory processing algorithms along multilayered ("deep") neural networks. Strategies that insects use to meet similar computational demands, while relying on smaller nervous systems with shallow architectures, remain elusive. Using Drosophila as a model, we uncover the algorithmic role of odor preprocessing by a shallow network of compartmentalized olfactory receptor neurons. Each compartment operates as a ratiometric unit for specific odor-mixtures. This computation arises from a simple mechanism: electrical coupling between two differently sized neurons. We demonstrate that downstream synaptic connectivity is shaped to optimally leverage amplification of a hedonic value signal in the periphery. Furthermore, peripheral preprocessing is shown to markedly improve novel odor classification in a higher brain center. Together, our work highlights a far-reaching functional role of the sensory periphery for downstream processing. By elucidating the implementation of powerful computations by a shallow network, we provide insights into general principles of efficient sensory processing algorithms.


Asunto(s)
Odorantes , Neuronas Receptoras Olfatorias , Olfato , Animales , Odorantes/análisis , Neuronas Receptoras Olfatorias/fisiología , Olfato/fisiología , Drosophila melanogaster/fisiología , Algoritmos , Drosophila/fisiología , Vías Olfatorias/fisiología , Modelos Neurológicos , Red Nerviosa/fisiología
9.
Proc Natl Acad Sci U S A ; 121(38): e2320177121, 2024 Sep 17.
Artículo en Inglés | MEDLINE | ID: mdl-39269775

RESUMEN

One of the longstanding aims of network neuroscience is to link a connectome's topological properties-i.e., features defined from connectivity alone-with an organism's neurobiology. One approach for doing so is to compare connectome properties with annotational maps. This type of analysis is popular at the meso-/macroscale, but is less common at the nano-scale, owing to a paucity of neuron-level connectome data. However, recent methodological advances have made possible the reconstruction of whole-brain connectomes at single-neuron resolution for a select set of organisms. These include the fruit fly, Drosophila melanogaster, and its developing larvae. In addition to fine-scale descriptions of connectivity, these datasets are accompanied by rich annotations. Here, we use a variant of the stochastic blockmodel to detect multilevel communities in the larval Drosophila connectome. We find that communities partition neurons based on function and cell type and that most interact assortatively, reflecting the principle of functional segregation. However, a small number of communities interact nonassortatively, forming form a "rich-club" of interneurons that receive sensory/ascending inputs and deliver outputs along descending pathways. Next, we investigate the role of community structure in shaping communication patterns. We find that polysynaptic signaling follows specific trajectories across modular hierarchies, with interneurons playing a key role in mediating communication routes between modules and hierarchical scales. Our work suggests a relationship between system-level architecture and the biological function and classification of individual neurons. We envision our study as an important step toward bridging the gap between complex systems and neurobiological lines of investigation in brain sciences.


Asunto(s)
Encéfalo , Conectoma , Drosophila melanogaster , Larva , Animales , Conectoma/métodos , Encéfalo/fisiología , Encéfalo/crecimiento & desarrollo , Red Nerviosa/fisiología , Neuronas/fisiología , Neuronas/metabolismo , Interneuronas/fisiología , Interneuronas/metabolismo
10.
Proc Natl Acad Sci U S A ; 121(27): e2314291121, 2024 Jul 02.
Artículo en Inglés | MEDLINE | ID: mdl-38923990

RESUMEN

Networks involved in information processing often have their nodes arranged hierarchically, with the majority of connections occurring in adjacent levels. However, despite being an intuitively appealing concept, the hierarchical organization of large networks, such as those in the brain, is difficult to identify, especially in absence of additional information beyond that provided by the connectome. In this paper, we propose a framework to uncover the hierarchical structure of a given network, that identifies the nodes occupying each level as well as the sequential order of the levels. It involves optimizing a metric that we use to quantify the extent of hierarchy present in a network. Applying this measure to various brain networks, ranging from the nervous system of the nematode Caenorhabditis elegans to the human connectome, we unexpectedly find that they exhibit a common network architectural motif intertwining hierarchy and modularity. This suggests that brain networks may have evolved to simultaneously exploit the functional advantages of these two types of organizations, viz., relatively independent modules performing distributed processing in parallel and a hierarchical structure that allows sequential pooling of these multiple processing streams. An intriguing possibility is that this property we report may be common to information processing networks in general.


Asunto(s)
Encéfalo , Caenorhabditis elegans , Conectoma , Red Nerviosa , Encéfalo/fisiología , Encéfalo/anatomía & histología , Animales , Conectoma/métodos , Humanos , Red Nerviosa/fisiología , Modelos Neurológicos
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