SIMPLIFLY · Sensorimotor Integration, Motor Planning and Learning In FLY
Horizon Europe — Marie Skłodowska-Curie Actions
- Duration
- 2023-09-01 → 2025-12-31
- EU contribution
- €172,619
- Participants
- 1
- Scheme
- HORIZON-TMA-MSCA-PF-EF
Lines connect the coordinator with its partners.
Results in brief
Sensorimotor Integration, Motor Planning and Learning In FLY
Whether it is to adapt to changes of the body or the environmental conditions, or to learn new motor skills, animals must modify their actions to execute tasks accurately in a process known as motor learning. Several models, such as forward and inverse models, and direct learning policy have been proposed for motor adaptation in humans. Through the update of these internal models and policies, the brain is thought to maintain an accurate representation of self-motion for precise motor control. Despite the importance of this neurobiological process for smooth movement control, injury and disease recovery, it remains unclear how accurate self-motion representations update motor commands. For instance, an important component of motor learning concerns the recalibration between sensory signals and internal motor information, and generally involves the generation of an error signal due to the mismatch between the observed and intended movement. Exploratory animals structure their behavior to maximize gaze stability, thereby facilitating the acquisition of visual and spatial information while minimizing retinal slip. Such gaze control depends on multi-sensory integration, but the circuit mechanisms underlying precise multi-modal calibration during locomotion remain unclear. Partially, This is due to the complexity of the mammalian brain, and the distributed nature of circuits involved in motor control, recruiting several distributed areas of the mammalian brain with unclear specific contribution.The fruit fly, Drosophila melanogaster, provides a unique opportunity for a comprehensive mechanistic understanding of motor learning because of its compact brain and the recently developed whole central nervous system connectomic dataset, both of which facilitates the study of distributed internal representations, and the role of specific brain areas and genetically identified classes of neurons. Previous work in the Chiappe laboratory as shown that walking flies maximize gaze stability through distinct coordinated head and body motor program. Moreover, gaze stability was improved when self-generated visual feedback was available to the animal and use to tune postural reflexes. We aim to unravel the neural basis of motor adaptation using a population of visual neurons thought to contribute to steering control, and whose activity is strongly modulated by the insect’s ongoing motor programs. We combined 2-photon calcium imaging and a virtual reality environment where we could manipulated the self-motion generated visual feedback available to the animal.
Data: CORDIS, © European Union
Project objective
We are constantly learning new motor skills throughout our life. Whether riding a bicycle or playing an instrument, motor learning relies on a calibration between sensory signals and internal motor information. Saccadic adaptation, the recalibration of fast eye rotations induced by visual error signals, has helped develop key insights into the identity of circuits, and the theoretical models underlying motor learning. However, how visual signals interact with internal movement representations during motor learning remains at present underdetermined. Taking advantage of the compact brain of the fly with well characterized visual pathways, and a plethora of anatomical, physiological, and genetic tools, here we propose to study motor learning in the context of goal-directed body saccades in D. melanogaster. We will monitor changes in body saccades consistent with repetitive visual perturbations by quantitative analysis of head-fixed flight behavior in an adapted version of the classical eye saccadic adaptation paradigm. In simultaneous, we will first record and then manipulate the activity of population of neurons known to contribute to body saccades, including visual descending neurons (VDNs) and their upstream synaptic partners, which as a network integrate visual signals and self-motion information with motor commands. Together, these experiments will establish unprecedented causal relationships among neural activity, learning, and the formation of a flexible internal representation for locomotor control. The functional principles identified in this project will establish a framework that can be tested in other species and behavioral contexts, and ultimately improve our understanding of motor learning with important implications both in health and disease.
Original text from CORDIS.
Participants
- FUNDACAO D. ANNA DE SOMMER CHAMPALIMAUD E DR. CARLOS MONTEZ CHAMPALIMAUD · LISBOACoordinatorPortugal
Links
- View on CORDIS
- DOI: 10.3030/101068085
- https://ec.europa.eu/research/participants/documents/downloadPublic?documentIds=080166e518eaf707&appId=PPGMS
- https://ec.europa.eu/research/participants/documents/downloadPublic?documentIds=080166e52586bb78&appId=PPGMS
Data: CORDIS, © European Union
