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1.
bioRxiv ; 2024 Mar 17.
Artículo en Inglés | MEDLINE | ID: mdl-38559111

RESUMEN

Animals are often bombarded with visual information and must prioritize specific visual features based on their current needs. The neuronal circuits that detect and relay visual features have been well-studied. Yet, much less is known about how an animal adjusts its visual attention as its goals or environmental conditions change. During social behaviors, flies need to focus on nearby flies. Here, we study how the flow of visual information is altered when female Drosophila enter an aggressive state. From the connectome, we identified three state-dependent circuit motifs poised to selectively amplify the response of an aggressive female to fly-sized visual objects: convergence of excitatory inputs from neurons conveying select visual features and internal state; dendritic disinhibition of select visual feature detectors; and a switch that toggles between two visual feature detectors. Using cell-type-specific genetic tools, together with behavioral and neurophysiological analyses, we show that each of these circuit motifs function during female aggression. We reveal that features of this same switch operate in males during courtship pursuit, suggesting that disparate social behaviors may share circuit mechanisms. Our work provides a compelling example of using the connectome to infer circuit mechanisms that underlie dynamic processing of sensory signals.

2.
Elife ; 102021 07 29.
Artículo en Inglés | MEDLINE | ID: mdl-34324417

RESUMEN

To control reaching, the nervous system must generate large changes in muscle activation to drive the limb toward the target, and must also make smaller adjustments for precise and accurate behavior. Motor cortex controls the arm through projections to diverse targets across the central nervous system, but it has been challenging to identify the roles of cortical projections to specific targets. Here, we selectively disrupt cortico-cerebellar communication in the mouse by optogenetically stimulating the pontine nuclei in a cued reaching task. This perturbation did not typically block movement initiation, but degraded the precision, accuracy, duration, or success rate of the movement. Correspondingly, cerebellar and cortical activity during movement were largely preserved, but differences in hand velocity between control and stimulation conditions predicted from neural activity were correlated with observed velocity differences. These results suggest that while the total output of motor cortex drives reaching, the cortico-cerebellar loop makes small adjustments that contribute to the successful execution of this dexterous movement.


Asunto(s)
Núcleos Cerebelosos/fisiología , Corteza Motora/fisiología , Movimiento/fisiología , Vías Nerviosas , Animales , Ratones , Ratones Transgénicos , Optogenética
3.
Elife ; 92020 11 03.
Artículo en Inglés | MEDLINE | ID: mdl-33141021

RESUMEN

Aggressive social interactions are used to compete for limited resources and are regulated by complex sensory cues and the organism's internal state. While both sexes exhibit aggression, its neuronal underpinnings are understudied in females. Here, we identify a population of sexually dimorphic aIPg neurons in the adult Drosophila melanogaster central brain whose optogenetic activation increased, and genetic inactivation reduced, female aggression. Analysis of GAL4 lines identified in an unbiased screen for increased female chasing behavior revealed the involvement of another sexually dimorphic neuron, pC1d, and implicated aIPg and pC1d neurons as core nodes regulating female aggression. Connectomic analysis demonstrated that aIPg neurons and pC1d are interconnected and suggest that aIPg neurons may exert part of their effect by gating the flow of visual information to descending neurons. Our work reveals important regulatory components of the neuronal circuitry that underlies female aggressive social interactions and provides tools for their manipulation.


Asunto(s)
Agresión/fisiología , Drosophila melanogaster/fisiología , Vías Nerviosas/fisiología , Animales , Encéfalo/citología , Encéfalo/fisiología , Drosophila melanogaster/citología , Femenino , Vías Nerviosas/citología , Neuronas/citología , Neuronas/fisiología , Optogenética
5.
Nature ; 520(7549): 633-9, 2015 Apr 30.
Artículo en Inglés | MEDLINE | ID: mdl-25896325

RESUMEN

Natural events present multiple types of sensory cues, each detected by a specialized sensory modality. Combining information from several modalities is essential for the selection of appropriate actions. Key to understanding multimodal computations is determining the structural patterns of multimodal convergence and how these patterns contribute to behaviour. Modalities could converge early, late or at multiple levels in the sensory processing hierarchy. Here we show that combining mechanosensory and nociceptive cues synergistically enhances the selection of the fastest mode of escape locomotion in Drosophila larvae. In an electron microscopy volume that spans the entire insect nervous system, we reconstructed the multisensory circuit supporting the synergy, spanning multiple levels of the sensory processing hierarchy. The wiring diagram revealed a complex multilevel multimodal convergence architecture. Using behavioural and physiological studies, we identified functionally connected circuit nodes that trigger the fastest locomotor mode, and others that facilitate it, and we provide evidence that multiple levels of multimodal integration contribute to escape mode selection. We propose that the multilevel multimodal convergence architecture may be a general feature of multisensory circuits enabling complex input-output functions and selective tuning to ecologically relevant combinations of cues.


Asunto(s)
Drosophila melanogaster/citología , Drosophila melanogaster/fisiología , Locomoción , Vías Nerviosas/fisiología , Animales , Sistema Nervioso Central/citología , Sistema Nervioso Central/fisiología , Señales (Psicología) , Drosophila melanogaster/crecimiento & desarrollo , Femenino , Interneuronas/metabolismo , Larva/citología , Larva/fisiología , Neuronas Motoras/metabolismo , Células Receptoras Sensoriales/metabolismo , Transducción de Señal , Sinapsis/metabolismo
6.
Elife ; 3: e04580, 2014 Dec 23.
Artículo en Inglés | MEDLINE | ID: mdl-25535794

RESUMEN

Animals discriminate stimuli, learn their predictive value and use this knowledge to modify their behavior. In Drosophila, the mushroom body (MB) plays a key role in these processes. Sensory stimuli are sparsely represented by ∼2000 Kenyon cells, which converge onto 34 output neurons (MBONs) of 21 types. We studied the role of MBONs in several associative learning tasks and in sleep regulation, revealing the extent to which information flow is segregated into distinct channels and suggesting possible roles for the multi-layered MBON network. We also show that optogenetic activation of MBONs can, depending on cell type, induce repulsion or attraction in flies. The behavioral effects of MBON perturbation are combinatorial, suggesting that the MBON ensemble collectively represents valence. We propose that local, stimulus-specific dopaminergic modulation selectively alters the balance within the MBON network for those stimuli. Our results suggest that valence encoded by the MBON ensemble biases memory-based action selection.


Asunto(s)
Conducta de Elección , Drosophila melanogaster/citología , Drosophila melanogaster/fisiología , Memoria , Cuerpos Pedunculados/citología , Cuerpos Pedunculados/inervación , Neuronas/fisiología , Animales , Conducta Apetitiva/efectos de la radiación , Aprendizaje por Asociación/efectos de la radiación , Reacción de Prevención/efectos de la radiación , Conducta Animal/efectos de la radiación , Conducta de Elección/efectos de la radiación , Luz , Memoria/efectos de la radiación , Modelos Neurológicos , Cuerpos Pedunculados/efectos de la radiación , Neuronas/efectos de la radiación , Odorantes , Sueño/efectos de la radiación , Factores de Tiempo , Visión Ocular
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