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Rojas-Piloni, G.

Publications and source records attributed to Rojas-Piloni, G..

3 recordsLinked to original sources

Differential participation of the corticospinal and corticorubral neurons during motor execution in the rat

The sensorimotor cortex is crucial for learning and executing new movements with precision (Nudo & Frost, 2007). It selectively modulates sensory information flow and represents motor information in a spatially organized manner (Canedo, 1997; Chen et al., 2017). The pyramidal system is made up layer 5 pyramidal tract neurons (PTNs), which are organized into populations with distinct morphological, genetic and functional properties. These subpopulations project to different subcortical structures in a segregated manner (Nudo & Frost, 2007). To understand whether PTNs projecting to different structures play distinct functional roles in motor control, we characterized two types of layer 5 neurons in the motor cortex: corticorubral (CR) neurons, which project to the red nucleus, and corticospinal (CS) neurons, which project to the spinal cord. To analyze movement performance in rats, we compared the selective optogenetic inhibition of motor cortex CS or CR neurons during lever movement execution in response to a light stimulus. As the animals progressed through the training sessions, the variability of lever trajectories decreased, and the movements became more stereotyped. Photoinhibition of CS or CR neurons increased the performance variability of learned movements but differentially affected kinematic parameters. CR neuron inhibition affected amplitude, duration, reaction times, speed, and acceleration of the movement. In contrast, inhibition of CS neurons mainly altered the duration, speed, and acceleration of the movement. We conclude that CS and CR are complementary pathways for transmitting information rather than copies of the same motor command.

neuroscience↗

Motor Cortex Projections To Red Nucleus And Pons Have Distinct Functional Roles In The Mouse

Pyramidal tract neurons (PTNs) are fundamental elements for motor control. However, it is largely unknown if PTNs are segregated into different subtypes with distinct roles in movement performance. Using anatomical, electrophysiological and optogenetics tools, we analyzed in both sexes mice motor cortex, PTNs projecting to red and pontine midbrain nuclei, which are important hubs connecting cerebral cortex and cerebellum playing a critical role in the regulation of movement. We reveal that vast majority of M1 neurons projecting to the red and pontine nuclei constitutes different populations. Corticopontine neurons have higher conduction velocities and morphologically, a most homogeneous dendritic and spine distributions along cortical layers. Optogenetically inhibiting either kind projection, differentially affects forelimb movement onset and execution in a lever press task, but only the activity of corticopontine neurons is significantly correlated with trial-by-trial variations in reaction time. The results indicate that cortical neurons projecting to the red and pontine nuclei constitute distinct functional and anatomical pathways and they contribute differently to sensorimotor integration, suggesting that layer 5 output neurons are functionally compartmentalized generating, in parallel, different downstream coding.

neuroscience↗

Focal electrical stimulation on an alcohol disorder model using MRI-compatible chronic neural monopolar carbon fiber electrodes.

Neuromodulation interventions, such as Deep Brain Stimulation (DBS) and repeated transcranial magnetic stimulation (rTMS), are proposed as possible new complementary therapies to treat substance use disorders (SUD) such as alcohol use disorder (AUD). It is hypothesized that neuromodulation may induce neural plasticity in the reward and frontostriatal systems via electrical field induction, possibly reducing symptoms. Preclinical self-administration rodent models of AUD may help us gain insight into the effects of neuromodulation therapies on different pathology, as well as the neural mechanisms behind the positive effects. DBS, or any type of brain stimulation using intracranial electrodes in rodents, would benefit from the use of MRI to study the longitudinal effects and mechanisms of stimulation as well as novel targets, as it is a non-invasive technique that allows the analysis of structural and functional changes in the brain. To do this, there is a need for MRI-compatible electrodes that allow for MRI acquisition with minimal distortion of the magnetic field. In this protocol, we present a method for the construction and surgery of chronically implantable monopolar carbon electrodes for use in rats. Unlike conventional electrodes, carbon electrodes are resistant to high temperatures, flexible, and generate fewer artifacts in MRI compared to conventional ones. We validated its use by using a focal electrical stimulation high-frequency (20 Hz) protocol that lasted ~10 sessions. We propose that this technique can also be used for the research of the neurophysiological bases of the neuromodulatory treatment in other preclinical substance use disorders (SUD) models.

neuroscience↗