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1.
J Neurophysiol ; 132(3): 829-848, 2024 Sep 01.
Artículo en Inglés | MEDLINE | ID: mdl-39081209

RESUMEN

Holding still and aiming reaches to spatial targets may depend on distinct neural circuits. Using automated homecage training and a sensitive joystick, we trained freely moving mice to contact a joystick, hold their forelimb still, and then reach to rewarded target locations. Mice learned the task by initiating forelimb sequences with clearly resolved submillimeter-scale micromovements followed by millimeter-scale reaches to learned spatial targets. Hundreds of thousands of trajectories were decomposed into millions of kinematic submovements, while photoinhibition was used to test roles of motor cortical areas. Inactivation of both caudal and rostral forelimb areas preserved the ability to produce aimed reaches, but reduced reach speed. Inactivation specifically of contralateral caudal forelimb area (CFA) additionally impaired the ability to aim corrective submovements to remembered locations following target undershoots. Our findings show that motor cortical inactivations reduce the gain of forelimb movements but that inactivation specifically of contralateral CFA impairs corrective movements important for reaching a target location.NEW & NOTEWORTHY To test the role of different cortical areas in holding still and reaching to targets, this study combined home-cage training with optogenetic silencing as mice engaged in a learned center-out-reach task. Inactivation specifically of contralateral caudal forelimb area (CFA) impaired corrective movements necessary to reach spatial targets to earn reward.


Asunto(s)
Miembro Anterior , Corteza Motora , Desempeño Psicomotor , Animales , Corteza Motora/fisiología , Ratones , Miembro Anterior/fisiología , Masculino , Desempeño Psicomotor/fisiología , Ratones Endogámicos C57BL , Optogenética , Fenómenos Biomecánicos , Femenino , Movimiento/fisiología , Actividad Motora/fisiología
2.
Curr Biol ; 33(24): 5415-5426.e4, 2023 12 18.
Artículo en Inglés | MEDLINE | ID: mdl-38070505

RESUMEN

Parrots have enormous vocal imitation capacities and produce individually unique vocal signatures. Like songbirds, parrots have a nucleated neural song system with distinct anterior (AFP) and posterior forebrain pathways (PFP). To test if song systems of parrots and songbirds, which diverged over 50 million years ago, have a similar functional organization, we first established a neuroscience-compatible call-and-response behavioral paradigm to elicit learned contact calls in budgerigars (Melopsittacus undulatus). Using variational autoencoder-based machine learning methods, we show that contact calls within affiliated groups converge but that individuals maintain unique acoustic features, or vocal signatures, even after call convergence. Next, we transiently inactivated the outputs of AFP to test if learned vocalizations can be produced by the PFP alone. As in songbirds, AFP inactivation had an immediate effect on vocalizations, consistent with a premotor role. But in contrast to songbirds, where the isolated PFP is sufficient to produce stereotyped and acoustically normal vocalizations, isolation of the budgerigar PFP caused a degradation of call acoustic structure, stereotypy, and individual uniqueness. Thus, the contribution of AFP and the capacity of isolated PFP to produce learned vocalizations have diverged substantially between songbirds and parrots, likely driven by their distinct behavioral ecology and neural connectivity.


Asunto(s)
Loros , Pájaros Cantores , Voz , Animales , Humanos , Loros/fisiología , Vocalización Animal/fisiología , alfa-Fetoproteínas , Prosencéfalo
3.
Nature ; 623(7986): 375-380, 2023 Nov.
Artículo en Inglés | MEDLINE | ID: mdl-37758948

RESUMEN

Hunger, thirst, loneliness and ambition determine the reward value of food, water, social interaction and performance outcome1. Dopamine neurons respond to rewards meeting these diverse needs2-8, but it remains unclear how behaviour and dopamine signals change as priorities change with new opportunities in the environment. One possibility is that dopamine signals for distinct drives are routed to distinct dopamine pathways9,10. Another possibility is that dopamine signals in a given pathway are dynamically tuned to rewards set by the current priority. Here we used electrophysiology and fibre photometry to test how dopamine signals associated with quenching thirst, singing a good song and courting a mate change as male zebra finches (Taeniopygia guttata) were provided with opportunities to retrieve water, evaluate song performance or court a female. When alone, water reward signals were observed in two mesostriatal pathways but singing-related performance error signals were routed to Area X, a striatal nucleus specialized for singing. When courting a female, water seeking was reduced and dopamine responses to both water and song performance outcomes diminished. Instead, dopamine signals in Area X were driven by female calls timed with the courtship song. Thus the dopamine system handled coexisting drives by routing vocal performance and social feedback signals to a striatal area for communication and by flexibly re-tuning to rewards set by the prioritized drive.


Asunto(s)
Encéfalo , Cortejo , Dopamina , Neuronas Dopaminérgicas , Retroalimentación Fisiológica , Retroalimentación Psicológica , Pinzones , Animales , Femenino , Masculino , Dopamina/metabolismo , Pinzones/fisiología , Vocalización Animal/fisiología , Agua , Retroalimentación Fisiológica/fisiología , Ingestión de Líquidos/fisiología , Sed/fisiología , Neuronas Dopaminérgicas/metabolismo , Electrofisiología , Encéfalo/citología , Encéfalo/fisiología , Comunicación , Recompensa , Retroalimentación Psicológica/fisiología
4.
Nature ; 594(7861): 82-87, 2021 06.
Artículo en Inglés | MEDLINE | ID: mdl-34012117

RESUMEN

Precise tongue control is necessary for drinking, eating and vocalizing1-3. However, because tongue movements are fast and difficult to resolve, neural control of lingual kinematics remains poorly understood. Here we combine kilohertz-frame-rate imaging and a deep-learning-based neural network to resolve 3D tongue kinematics in mice drinking from a water spout. Successful licks required corrective submovements that-similar to online corrections during primate reaches4-11-occurred after the tongue missed unseen, distant or displaced targets. Photoinhibition of anterolateral motor cortex impaired corrections, which resulted in hypometric licks that missed the spout. Neural activity in anterolateral motor cortex reflected upcoming, ongoing and past corrective submovements, as well as errors in predicted spout contact. Although less than a tenth of a second in duration, a single mouse lick exhibits the hallmarks of online motor control associated with a primate reach, including cortex-dependent corrections after misses.


Asunto(s)
Adaptación Fisiológica , Atención , Ingestión de Líquidos , Corteza Motora/fisiología , Desempeño Psicomotor/fisiología , Lengua/fisiología , Animales , Fenómenos Biomecánicos , Aprendizaje Profundo , Masculino , Ratones , Tiempo de Reacción , Agua
5.
J Neurophysiol ; 121(2): 500-512, 2019 02 01.
Artículo en Inglés | MEDLINE | ID: mdl-30540551

RESUMEN

An obstacle to understanding neural mechanisms of movement is the complex, distributed nature of the mammalian motor system. Here we present a novel behavioral paradigm for high-throughput dissection of neural circuits underlying mouse forelimb control. Custom touch-sensing joysticks were used to quantify mouse forelimb trajectories with micron-millisecond spatiotemporal resolution. Joysticks were integrated into computer-controlled, rack-mountable home cages, enabling batches of mice to be trained in parallel. Closed loop behavioral analysis enabled online control of reward delivery for automated training. We used this system to show that mice can learn, with no human handling, a direction-specific hold-still center-out reach task in which a mouse first held its right forepaw still before reaching out to learned spatial targets. Stabilogram diffusion analysis of submillimeter-scale micromovements produced during the hold demonstrate that an active control process, akin to upright balance, was implemented to maintain forepaw stability. Trajectory decomposition methods, previously used in primates, were used to segment hundreds of thousands of forelimb trajectories into millions of constituent kinematic primitives. This system enables rapid dissection of neural circuits for controlling motion primitives from which forelimb sequences are built. NEW & NOTEWORTHY A novel joystick design resolves mouse forelimb kinematics with micron-millisecond precision. Home cage training is used to train mice in a hold-still center-out reach task. Analytical methods, previously used in primates, are used to decompose mouse forelimb trajectories into kinematic primitives.


Asunto(s)
Miembro Anterior/fisiología , Aprendizaje , Movimiento , Conducta Espacial , Animales , Automatización/métodos , Fenómenos Biomecánicos , Miembro Anterior/inervación , Masculino , Ratones , Ratones Endogámicos C57BL , Neurofisiología/métodos
6.
J Endod ; 29(10): 658-61, 2003 Oct.
Artículo en Inglés | MEDLINE | ID: mdl-14606790

RESUMEN

In this study the sealing ability of a new urethane methacrylate resin-based sealer, EndoRez, was evaluated using a fluid-filtration model. Sixty-four single-rooted lower bicuspids were decoronated, instrumented, and divided into 3 groups of 20 each with 4 teeth used as controls. In group A, the roots were obturated with EndoRez and a single cone of gutta-percha, group B with AH Plus and a single cone of gutta-percha, and group C was obturated using gutta-percha with warm vertical compaction and AH Plus sealer. All specimens were allowed to set for 7 days in 100% humidity at 37 degrees C. The groups were compared for differences in the amount of leakage (mm/h) using a Chi-square test. The leakage of group A was significantly higher at p = 0.01 than the other two groups. There was no significant difference in leakage between groups B and C.


Asunto(s)
Resinas Compuestas , Materiales de Obturación del Conducto Radicular , Obturación del Conducto Radicular/métodos , Diente Premolar , Filtración Dental/prevención & control , Resinas Epoxi , Humanos , Modelos Logísticos , Metacrilatos , Poliuretanos
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