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Conessa, A.

Publications and source records attributed to Conessa, A..

3 recordsLinked to original sources

Evidence for separate processes underlying movement and decision vigor in a reward-oriented task

The vigor of movement and decision-making is fundamental to many reward-oriented behaviors. While some theories propose that movement and decision are jointly invigorated to maximize a global utility (e.g., mixing reward, effort, and time), alternative perspectives suggest that the brain can separately invigorate them when advantageous. We tested these competing hypotheses using a foraging-like task that allowed experimentally assessing the vigor of movement (reaching to reward location) and that of decision-making (harvesting reward). By using a block-wise design, we measured the effects of independent manipulations of time and effort on reach and harvest durations. Decoupled effects were found on reach and harvest durations, with no inter-individual consistency between them. A model allowing separate, yet inter-dependent, optimizations of movement and decision vigor based on distinct time costs sensitive to recent temporal history predicted these results more accurately than a global utility model. These findings indicate that movement and decision vigor may flexibly depend on whether shared versus distinct time costs underlie behavior; co-regulation would arise when the vigor of movement and decision is governed by a shared time cost but decoupling may emerge when relevant for the task. Significance statementCoordinating movement and decision-making is fundamental to many reward-oriented behaviors. Current theories suggest that the brain may invigorate behavior by co-regulating movement and decision, but some experimental findings rather point to a decoupling. To shed new light on this debate, we developed a foraging-like task promoting independent and comparable manipulation of time and effort. We show that movement and decision are mostly decoupled in this task, invigorated by distinct time-cost signals. Previously experienced delays tend to amplify these time costs, thereby exerting a strong influence on behavior and indirectly linking movement and decision. Co-regulation or decoupling may hinge on whether movement and decision vigor relies on shared or distinct time-cost signals.

neuroscience↗

Sensorimotor restriction affects sleep-related motor memory consolidation through altered slow oscillation-spindle coupling.

Sleep benefits memory consolidation through periodic sleep spindle activity and associated memory reactivations. Recent evidence highlights that iterative spindle onsets follow two periodic rhythms: an infraslow periodicity ([~]0.02 Hz) and a mesoscale periodicity rhythm ([~]0.2-0.3 Hz). Consequently, spindles tend to cluster in "trains" on a low-frequency time scale every 50 seconds during which spindles iterate every 3 to 4 seconds. Such temporal organization of spindles in trains is considered a critical sleep mechanism for the timed and repeated reactivation of memories. Additionally, current trends indicate that a timely phase-locking between slow oscillations (SO) and spindles promotes learning-related synaptic plasticity. In this study, we explored how spindle clustering and coupling with SO contribute to motor memory consolidation by inducing a local reduction in synaptic efficacy over sensorimotor cortical regions through upper-limb immobilization after motor sequence learning. We also evaluated memory generalization using two transfer tests designed to assess the ability to transfer or generalize the newly acquired skill to another one (new sequence) or another effector (inter-limb transfer). Our results reveal that the temporal cluster-based organization of spindles is independent of daytime sensorimotor experience, while distinct overnight behavioral outcomes were elicited. Interestingly, immobilization induced a phase shift in the SO-spindle coupling for spindles grouped in trains, but not when isolated outside trains. In addition, the proportion of grouped spindles relative to isolated spindles was positively associated with skill consolidation and negatively correlated with skill generalization following sensorimotor restriction. These results suggest that spindle trains may promote skill-specific strengthening of motor memories, while isolated spindles may instead create memory-instability conditions that facilitate skill generalization.

neuroscience↗

Temporal clustering of sleep spindles for motor skill consolidation and generalizability following learning by physical practice, motor imagery and action observation

Sleep benefits the consolidation of motor skills learned by physical practice, mainly through periodic thalamocortical sleep spindle activity. However, motor skills can be learned without overt movement through motor imagery or action observation. Here, we investigated whether sleep spindle activity also supports the consolidation of non-physically learned movements. Forty-five electroencephalographic sleep recordings were collected during a daytime nap after motor sequence learning by physical practice, motor imagery or action observation. Our findings reveal that a temporal cluster-based organization of sleep spindles underlies motor memory consolidation in all groups, albeit with distinct behavioral outcomes. A daytime nap offers an early sleep window promoting the retention of motor skills learned by physical practice and motor imagery, and its generalizability towards the inter-manual transfer of skill after action observation. Findings may further have practical impacts with the development of non-physical rehabilitation interventions for patients having to remaster skills following peripherical or brain injury.

neuroscience↗