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1.
Physiol Res ; 73(3): 449-459, 2024 07 17.
Article in English | MEDLINE | ID: mdl-39027961

ABSTRACT

Parallel fibers (PFs) in the cerebellar cortex are involved in a series of coordinated responses in the fear conditioning paradigm induced by footshock. However, whether footshock can activate cerebellar climbing fibers (CFs) remains unclear. In this study, we recorded calcium (Ca2+) activity in CFs by optical fiber photometry in the cerebellar vermis lobule IV/V of freely moving mice with footshock stimulation. We found that the activation of CFs in the lobule IV/V was highly correlated with footshock stimulation but not with the sound stimulation used as a control. This result suggests that afferent information from CFs might be associated with the motor initiation of fear-related behaviors or fear emotion itself. Thus, our results suggest that a characteristic CF signal in the cerebellar cortex might be related to fear processing or footshock-related behaviors (such as startle responses or pain sensation).


Subject(s)
Fear , Mice, Inbred C57BL , Animals , Mice , Male , Fear/physiology , Electroshock , Cerebellum/physiology , Cerebellar Cortex/physiology
2.
Elife ; 132024 Jul 16.
Article in English | MEDLINE | ID: mdl-39012692

ABSTRACT

Behavioral and pharmaceutical interventions reverse defects associated with increased cerebellar long-term depression in a mouse model of Fragile X syndrome.


Subject(s)
Cerebellum , Disease Models, Animal , Fragile X Syndrome , Learning , Animals , Fragile X Syndrome/physiopathology , Cerebellum/physiology , Mice , Fragile X Mental Retardation Protein/genetics , Fragile X Mental Retardation Protein/metabolism
3.
Nat Commun ; 15(1): 5563, 2024 Jul 09.
Article in English | MEDLINE | ID: mdl-38982047

ABSTRACT

The spatial organization of a neuronal circuit is critically important for its function since the location of neurons is often associated with function. In the cerebellum, the major output of the cerebellar cortex are synapses made from Purkinje cells onto neurons in the cerebellar nuclei, yet little has been known about the spatial organization of these synapses. We explored this question using whole-cell electrophysiology and optogenetics in acute sagittal cerebellar slices to produce spatial connectivity maps of cerebellar cortical output in mice. We observed non-random connectivity where Purkinje cell inputs clustered in cerebellar transverse zones: while many nuclear neurons received inputs from a single zone, several multi-zonal connectivity motifs were also observed. Single neurons receiving input from all four zones were overrepresented in our data. These findings reveal that the output of the cerebellar cortex is spatially structured and represents a locus for multimodal integration in the cerebellum.


Subject(s)
Cerebellar Cortex , Optogenetics , Purkinje Cells , Synapses , Animals , Cerebellar Cortex/physiology , Purkinje Cells/physiology , Mice , Synapses/physiology , Male , Cerebellar Nuclei/physiology , Patch-Clamp Techniques , Mice, Inbred C57BL , Neural Pathways/physiology , Female , Neurons/physiology , Cerebellum/physiology , Mice, Transgenic
4.
Elife ; 132024 Jul 09.
Article in English | MEDLINE | ID: mdl-38980147

ABSTRACT

Functional magnetic resonance imaging (fMRI) studies have documented cerebellar activity across a wide array of tasks. However, the functional contribution of the cerebellum within these task domains remains unclear because cerebellar activity is often studied in isolation. This is problematic, as cerebellar fMRI activity may simply reflect the transmission of neocortical activity through fixed connections. Here, we present a new approach that addresses this problem. Rather than focus on task-dependent activity changes in the cerebellum alone, we ask if neocortical inputs to the cerebellum are gated in a task-dependent manner. We hypothesize that input is upregulated when the cerebellum functionally contributes to a task. We first validated this approach using a finger movement task, where the integrity of the cerebellum has been shown to be essential for the coordination of rapid alternating movements but not for force generation. While both neocortical and cerebellar activity increased with increasing speed and force, the speed-related changes in the cerebellum were larger than predicted by an optimized cortico-cerebellar connectivity model. We then applied the same approach in a cognitive domain, assessing how the cerebellum supports working memory. Enhanced gating was associated with the encoding of items in working memory, but not with the manipulation or retrieval of the items. Focusing on task-dependent gating of neocortical inputs to the cerebellum offers a promising approach for using fMRI to understand the specific contributions of the cerebellum to cognitive function.


Subject(s)
Cerebellum , Magnetic Resonance Imaging , Cerebellum/physiology , Cerebellum/diagnostic imaging , Humans , Male , Adult , Female , Young Adult , Neocortex/physiology , Neocortex/diagnostic imaging , Memory, Short-Term/physiology , Fingers/physiology
5.
eNeuro ; 11(7)2024 Jul.
Article in English | MEDLINE | ID: mdl-38960706

ABSTRACT

The cerebellum is a conserved structure of the vertebrate brain involved in the timing and calibration of movements. Its function is supported by the convergence of fibers from granule cells (GCs) and inferior olive neurons (IONs) onto Purkinje cells (PCs). Theories of cerebellar function postulate that IONs convey error signals to PCs that, paired with the contextual information provided by GCs, can instruct motor learning. Here, we use the larval zebrafish to investigate (1) how sensory representations of the same stimulus vary across GCs and IONs and (2) how PC activity reflects these two different input streams. We use population calcium imaging to measure ION and GC responses to flashes of diverse luminance and duration. First, we observe that GCs show tonic and graded responses, as opposed to IONs, whose activity peaks mostly at luminance transitions, consistently with the notion that GCs and IONs encode context and error information, respectively. Second, we show that GC activity is patterned over time: some neurons exhibit sustained responses for the entire duration of the stimulus, while in others activity ramps up with slow time constants. This activity could provide a substrate for time representation in the cerebellum. Together, our observations give support to the notion of an error signal coming from IONs and provide the first experimental evidence for a temporal patterning of GC activity over many seconds.


Subject(s)
Cerebellum , Photic Stimulation , Zebrafish , Animals , Zebrafish/physiology , Cerebellum/physiology , Photic Stimulation/methods , Purkinje Cells/physiology , Neurons/physiology , Visual Perception/physiology
6.
Commun Biol ; 7(1): 806, 2024 Jul 03.
Article in English | MEDLINE | ID: mdl-38961250

ABSTRACT

Developmental synapse elimination is crucial for shaping mature neural circuits. In the neonatal mouse cerebellum, Purkinje cells (PCs) receive excitatory synaptic inputs from multiple climbing fibers (CFs) and synapses from all but one CF are eliminated by around postnatal day 20. Heterosynaptic interaction between CFs and parallel fibers (PFs), the axons of cerebellar granule cells (GCs) forming excitatory synapses onto PCs and molecular layer interneurons (MLIs), is crucial for CF synapse elimination. However, mechanisms for this heterosynaptic interaction are largely unknown. Here we show that deletion of AMPA-type glutamate receptor functions in GCs impairs CF synapse elimination mediated by metabotropic glutamate receptor 1 (mGlu1) signaling in PCs. Furthermore, CF synapse elimination is impaired by deleting NMDA-type glutamate receptors from MLIs. We propose that PF activity is crucial for CF synapse elimination by directly activating mGlu1 in PCs and indirectly enhancing the inhibition of PCs through activating NMDA receptors in MLIs.


Subject(s)
Cerebellum , Receptors, Metabotropic Glutamate , Synapses , Animals , Cerebellum/metabolism , Cerebellum/physiology , Cerebellum/cytology , Synapses/physiology , Synapses/metabolism , Mice , Receptors, Metabotropic Glutamate/metabolism , Receptors, Metabotropic Glutamate/genetics , Purkinje Cells/metabolism , Purkinje Cells/physiology , Receptors, AMPA/metabolism , Receptors, N-Methyl-D-Aspartate/metabolism , Interneurons/metabolism , Interneurons/physiology , Mice, Knockout , Mice, Inbred C57BL
7.
Sci Rep ; 14(1): 17056, 2024 Jul 24.
Article in English | MEDLINE | ID: mdl-39048594

ABSTRACT

Corticotropin-releasing factor (CRF) is mainly secreted from the hypothalamic paraventricular nuclei and plays a crucial role in stress-related responses. Recent studies have reported that CRF is a neuromodulator in the central nervous system. In the cerebellum, CRF is essential for the induction of long-term depression (LTD) at the parallel fiber-Purkinje cell synapses. Given that LTD is thought to be one of the fundamental mechanisms of motor learning, CRF may affect motor learning. However, the role of CRF in motor learning in vivo remains unclear. In this study, we aimed to examine the role of CRF in motor learning. This was achieved through a series of behavioral experiments involving the in vivo administration of CRF and its antagonists. Rats injected with CRF directly into the cerebellum exhibited superior performance on the rotarod test, especially during initial training phases, compared to control subjects. Conversely, rats receiving a CRF receptor antagonist demonstrated reduced endurance on the rotating rod compared to controls. Notably, CRF mRNA expression levels in the cerebellum did not show significant variance between the CRF-injected and control groups. These findings imply a critical role of endogenous CRF in cerebellar motor learning and suggest that exogenous CRF can augment this process. (199 words).


Subject(s)
Cerebellum , Corticotropin-Releasing Hormone , Learning , Animals , Corticotropin-Releasing Hormone/metabolism , Male , Rats , Learning/physiology , Learning/drug effects , Cerebellum/metabolism , Cerebellum/drug effects , Cerebellum/physiology , Motor Activity/drug effects , Receptors, Corticotropin-Releasing Hormone/metabolism , Rats, Sprague-Dawley
8.
BMC Neurol ; 24(1): 205, 2024 Jun 15.
Article in English | MEDLINE | ID: mdl-38879485

ABSTRACT

BACKGROUND: The application of cerebellar transcranial magnetic stimulation (TMS) in stroke patients has received increasing attention due to its neuromodulation mechanisms. However, studies on the effect and safety of cerebellar TMS to improve balance capacity and activity of daily living (ADL) for stroke patients are limited. This systematic review and meta-analysis aimed to investigate the effect and safety of cerebellar TMS on balance capacity and ADL in stroke patients. METHOD: A systematic search of seven electronic databases (PubMed, Embase, Web of Science, Cochrane Central Register of Controlled Trials, China National Knowledge Infrastructure, Wanfang and Chinese Scientific Journal) were conducted from their inception to October 20, 2023. The randomized controlled trials (RCTs) of cerebellar TMS on balance capacity and/or ADL in stroke patients were enrolled. The quality of included studies were assessed by Physiotherapy Evidence Database (PEDro) scale. RESULTS: A total of 13 studies involving 542 participants were eligible. The pooled results from 8 studies with 357 participants showed that cerebellar TMS could significantly improve the post-intervention Berg balance scale (BBS) score (MD = 4.24, 95%CI = 2.19 to 6.29, P < 0.00001; heterogeneity, I2 = 74%, P = 0.0003). The pooled results from 4 studies with 173 participants showed that cerebellar TMS could significantly improve the post-intervention Time Up and Go (TUG) (MD=-1.51, 95%CI=-2.8 to -0.22, P = 0.02; heterogeneity, I2 = 0%, P = 0.41). The pooled results from 6 studies with 280 participants showed that cerebellar TMS could significantly improve the post-intervention ADL (MD = 7.75, 95%CI = 4.33 to 11.17, P < 0.00001; heterogeneity, I2 = 56%, P = 0.04). The subgroup analysis showed that cerebellar TMS could improve BBS post-intervention and ADL post-intervention for both subacute and chronic stage stroke patients. Cerebellar high frequency TMS could improve BBS post-intervention and ADL post-intervention. Cerebellar TMS could still improve BBS post-intervention and ADL post-intervention despite of different cerebellar TMS sessions (less and more than 10 TMS sessions), different total cerebellar TMS pulse per week (less and more than 4500 pulse/week), and different cerebellar TMS modes (repetitive TMS and Theta Burst Stimulation). None of the studies reported severe adverse events except mild side effects in three studies. CONCLUSIONS: Cerebellar TMS is an effective and safe technique for improving balance capacity and ADL in stroke patients. Further larger-sample, higher-quality, and longer follow-up RCTs are needed to explore the more reliable evidence of cerebellar TMS in the balance capacity and ADL, and clarify potential mechanisms.


Subject(s)
Activities of Daily Living , Cerebellum , Postural Balance , Stroke Rehabilitation , Stroke , Transcranial Magnetic Stimulation , Humans , Transcranial Magnetic Stimulation/methods , Postural Balance/physiology , Stroke Rehabilitation/methods , Cerebellum/physiology , Cerebellum/physiopathology , Stroke/physiopathology , Stroke/therapy , Randomized Controlled Trials as Topic/methods
9.
Adv Exp Med Biol ; 1455: 95-116, 2024.
Article in English | MEDLINE | ID: mdl-38918348

ABSTRACT

Temporal information processing in the range of a few hundred milliseconds to seconds involves the cerebellum and basal ganglia. In this chapter, we present recent studies on nonhuman primates. In the studies presented in the first half of the chapter, monkeys were trained to make eye movements when a certain amount of time had elapsed since the onset of the visual cue (time production task). The animals had to report time lapses ranging from several hundred milliseconds to a few seconds based on the color of the fixation point. In this task, the saccade latency varied with the time length to be measured and showed stochastic variability from one trial to the other. Trial-to-trial variability under the same conditions correlated well with pupil diameter and the preparatory activity in the deep cerebellar nuclei and the motor thalamus. Inactivation of these brain regions delayed saccades when asked to report subsecond intervals. These results suggest that the internal state, which changes with each trial, may cause fluctuations in cerebellar neuronal activity, thereby producing variations in self-timing. When measuring different time intervals, the preparatory activity in the cerebellum always begins approximately 500 ms before movements, regardless of the length of the time interval being measured. However, the preparatory activity in the striatum persists throughout the mandatory delay period, which can be up to 2 s, with different rate of increasing activity. Furthermore, in the striatum, the visual response and low-frequency oscillatory activity immediately before time measurement were altered by the length of the intended time interval. These results indicate that the state of the network, including the striatum, changes with the intended timing, which lead to different time courses of preparatory activity. Thus, the basal ganglia appear to be responsible for measuring time in the range of several hundred milliseconds to seconds, whereas the cerebellum is responsible for regulating self-timing variability in the subsecond range. The second half of this chapter presents studies related to periodic timing. During eye movements synchronized with alternating targets at regular intervals, different neurons in the cerebellar nuclei exhibit activity related to movement timing, predicted stimulus timing, and the temporal error of synchronization. Among these, the activity associated with target appearance is particularly enhanced during synchronized movements and may represent an internal model of the temporal structure of stimulus sequence. We also considered neural mechanism underlying the perception of periodic timing in the absence of movement. During perception of rhythm, we predict the timing of the next stimulus and focus our attention on that moment. In the missing oddball paradigm, the subjects had to detect the omission of a regularly repeated stimulus. When employed in humans, the results show that the fastest temporal limit for predicting each stimulus timing is about 0.25 s (4 Hz). In monkeys performing this task, neurons in the cerebellar nuclei, striatum, and motor thalamus exhibit periodic activity, with different time courses depending on the brain region. Since electrical stimulation or inactivation of recording sites changes the reaction time to stimulus omission, these neuronal activities must be involved in periodic temporal processing. Future research is needed to elucidate the mechanism of rhythm perception, which appears to be processed by both cortico-cerebellar and cortico-basal ganglia pathways.


Subject(s)
Basal Ganglia , Cerebellum , Time Perception , Animals , Cerebellum/physiology , Basal Ganglia/physiology , Time Perception/physiology , Saccades/physiology , Time Factors , Humans
10.
Elife ; 132024 Jun 10.
Article in English | MEDLINE | ID: mdl-38856045

ABSTRACT

A key to motor control is the motor thalamus, where several inputs converge. One excitatory input originates from layer 5 of primary motor cortex (M1L5), while another arises from the deep cerebellar nuclei (Cb). M1L5 terminals distribute throughout the motor thalamus and overlap with GABAergic inputs from the basal ganglia output nuclei, the internal segment of the globus pallidus (GPi), and substantia nigra pars reticulata (SNr). In contrast, it is thought that Cb and basal ganglia inputs are segregated. Therefore, we hypothesized that one potential function of the GABAergic inputs from basal ganglia is to selectively inhibit, or gate, excitatory signals from M1L5 in the motor thalamus. Here, we tested this possibility and determined the circuit organization of mouse (both sexes) motor thalamus using an optogenetic strategy in acute slices. First, we demonstrated the presence of a feedforward transthalamic pathway from M1L5 through motor thalamus. Importantly, we discovered that GABAergic inputs from the GPi and SNr converge onto single motor thalamic cells with excitatory synapses from M1L5. Separately, we also demonstrate that, perhaps unexpectedly, GABAergic GPi and SNr inputs converge with those from the Cb. We interpret these results to indicate that a role of the basal ganglia is to gate the thalamic transmission of M1L5 and Cb information to cortex.


Subject(s)
Basal Ganglia , Cerebellum , Motor Cortex , Thalamus , Animals , Motor Cortex/physiology , Mice , Basal Ganglia/physiology , Thalamus/physiology , Male , Female , Cerebellum/physiology , Neural Pathways/physiology , Optogenetics , GABAergic Neurons/physiology , Mice, Inbred C57BL
11.
Neuroscience ; 551: 229-236, 2024 Jul 23.
Article in English | MEDLINE | ID: mdl-38843986

ABSTRACT

Prism adaptation (PA) induces the after-effects of adapted tasks and transfers after-effects of non-adapted tasks, in which PA with pointing movements transfers to postural displacement during eyes-closed standing. However, the neural mechanisms underlying the transfer of PA after-effects on standing postural displacement remain unclear. The present study investigated the region-specific effects of transcranial direct current stimulation (tDCS) over the posterior parietal cortex (PPC) and cerebellum during prism exposure (PE) on standing postural displacement in healthy adults. Forty-two healthy young adults were grouped into pointing during PE with cathodal tDCS over the right PPC, anodal tDCS over the right cerebellum, and sham tDCS groups. They received 20 min of tDCS, during which they pointed to the visual targets while wearing prism lenses with a leftward visual shift (30 diopters) for 15 min. During the early PE, the pointing errors in the cerebellum group were significantly displaced more accurately toward the targets than those in the PPC group. However, after leftward PE, all groups had similar rightward displacements of the straight-ahead pointing with eyes closed. The PPC group only exhibited significant rightward center-of-pressure displacement during eyes-closed standing with feet-closed after leftward PE. The perception of longitudinal body axis rotation, as an indicator of the subjective body vertical axis, did not differ significantly between the pre- and post-evaluations in all groups. These results show that the PPC during PE could make an important neural contribution to inducing transfer of PA after-effect on standing postural displacement.


Subject(s)
Adaptation, Physiological , Cerebellum , Parietal Lobe , Postural Balance , Transcranial Direct Current Stimulation , Humans , Male , Parietal Lobe/physiology , Female , Transcranial Direct Current Stimulation/methods , Young Adult , Adaptation, Physiological/physiology , Cerebellum/physiology , Postural Balance/physiology , Adult , Posture/physiology , Visual Perception/physiology , Psychomotor Performance/physiology
12.
Cell Rep ; 43(6): 114348, 2024 Jun 25.
Article in English | MEDLINE | ID: mdl-38865245

ABSTRACT

The cortex and cerebellum form multi-synaptic reciprocal connections. We investigate the functional connectivity between single spiking cerebellar neurons and the population activity of the mouse dorsal cortex using mesoscale imaging. Cortical representations of individual cerebellar neurons vary significantly across different brain states but are drawn from a common set of cortical networks. These cortical-cerebellar connectivity features are observed in mossy fibers and Purkinje cells as well as neurons in different cerebellar lobules, albeit with variations across cell types and regions. Complex spikes of Purkinje cells preferably associate with the sensorimotor cortex, whereas simple spikes display more diverse cortical connectivity patterns. The spontaneous functional connectivity patterns align with cerebellar neurons' functional responses to external stimuli in a modality-specific manner. The tuning properties of subsets of cerebellar neurons differ between anesthesia and awake states, mirrored by state-dependent changes in their long-range functional connectivity patterns with mesoscale cortical activity.


Subject(s)
Cerebellum , Animals , Mice , Cerebellum/physiology , Male , Purkinje Cells/physiology , Mice, Inbred C57BL , Neural Pathways/physiology , Neurons/physiology , Action Potentials/physiology , Female
13.
Nat Commun ; 15(1): 4645, 2024 May 31.
Article in English | MEDLINE | ID: mdl-38821918

ABSTRACT

Non-synaptic (intrinsic) plasticity of membrane excitability contributes to aspects of memory formation, but it remains unclear whether it merely facilitates synaptic long-term potentiation or plays a permissive role in determining the impact of synaptic weight increase. We use tactile stimulation and electrical activation of parallel fibers to probe intrinsic and synaptic contributions to receptive field plasticity in awake mice during two-photon calcium imaging of cerebellar Purkinje cells. Repetitive activation of both stimuli induced response potentiation that is impaired in mice with selective deficits in either synaptic or intrinsic plasticity. Spatial analysis of calcium signals demonstrated that intrinsic, but not synaptic plasticity, enhances the spread of dendritic parallel fiber response potentiation. Simultaneous dendrite and axon initial segment recordings confirm these dendritic events affect axonal output. Our findings support the hypothesis that intrinsic plasticity provides an amplification mechanism that exerts a permissive control over the impact of long-term potentiation on neuronal responsiveness.


Subject(s)
Cerebellum , Dendrites , Long-Term Potentiation , Neuronal Plasticity , Purkinje Cells , Synapses , Animals , Purkinje Cells/physiology , Mice , Neuronal Plasticity/physiology , Cerebellum/physiology , Cerebellum/cytology , Long-Term Potentiation/physiology , Dendrites/physiology , Synapses/physiology , Calcium/metabolism , Male , Axons/physiology , Mice, Inbred C57BL , Electric Stimulation , Female
14.
Sci Rep ; 14(1): 11847, 2024 05 24.
Article in English | MEDLINE | ID: mdl-38782921

ABSTRACT

Repetitive transcranial magnetic stimulation (rTMS) for alleviating negative symptoms and cognitive dysfunction in schizophrenia commonly targets the left dorsolateral prefrontal cortex (LDLPFC). However, the therapeutic effectiveness of rTMS at this site remains inconclusive and increasingly, studies are focusing on cerebellar rTMS. Recently, prolonged intermittent theta-burst stimulation (iTBS) has emerged as a rapid-acting form of rTMS with promising clinical benefits. This study explored the cognitive and neurophysiological effects of prolonged iTBS administered to the LDLPFC and cerebellum in a healthy cohort. 50 healthy participants took part in a cross-over study and received prolonged (1800 pulses) iTBS targeting the LDLPFC, cerebellar vermis, and sham iTBS. Mixed effects repeated measures models examined cognitive and event-related potentials (ERPs) from 2-back (P300, N200) and Stroop (N200, N450) tasks after stimulation. Exploratory non-parametric cluster-based permutation tests compared ERPs between conditions. There were no significant differences between conditions for behavioural and ERP outcomes on the 2-back and Stroop tasks. Exploratory cluster-based permutation tests of ERPs did not identify any significant differences between conditions. We did not find evidence that a single session of prolonged iTBS administered to either the LDLPFC or cerebellum could cause any cognitive or ERP changes compared to sham in a healthy sample.


Subject(s)
Cerebellum , Evoked Potentials , Executive Function , Prefrontal Cortex , Transcranial Magnetic Stimulation , Humans , Male , Transcranial Magnetic Stimulation/methods , Female , Adult , Cerebellum/physiology , Executive Function/physiology , Prefrontal Cortex/physiology , Evoked Potentials/physiology , Young Adult , Healthy Volunteers , Cross-Over Studies , Theta Rhythm/physiology , Cognition/physiology , Dorsolateral Prefrontal Cortex/physiology
15.
Exp Brain Res ; 242(7): 1583-1593, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38760469

ABSTRACT

The cerebellum is important for motor adaptation. Lesions to the vestibulo-cerebellum selectively cause gait ataxia. Here we investigate how such damage affects locomotor adaptation when performing the 'broken escalator' paradigm. Following an auditory cue, participants were required to step from the fixed surface onto a moving platform (akin to an airport travellator). The experiment included three conditions: 10 stationary (BEFORE), 15 moving (MOVING) and 10 stationary (AFTER) trials. We assessed both behavioural (gait approach velocity and trunk sway after stepping onto the moving platform) and neuromuscular outcomes (lower leg muscle activity, EMG). Unlike controls, cerebellar patients showed reduced after-effects (AFTER trials) with respect to gait approach velocity and leg EMG activity. However, patients with cerebellar damage maintain the ability to learn the trunk movement required to maximise stability after stepping onto the moving platform (i.e., reactive postural behaviours). Importantly, our findings reveal that these patients could even initiate these behaviours in a feedforward manner, leading to an after-effect. These findings reveal that the cerebellum is crucial for feedforward locomotor control, but that adaptive locomotor behaviours learned via feedback (i.e., reactive) mechanisms may be preserved following cerebellum damage.


Subject(s)
Adaptation, Physiological , Cerebellum , Gait , Humans , Male , Adaptation, Physiological/physiology , Female , Middle Aged , Adult , Gait/physiology , Cerebellum/physiology , Electromyography , Aged , Postural Balance/physiology , Muscle, Skeletal/physiology , Biomechanical Phenomena/physiology
16.
Nat Commun ; 15(1): 4003, 2024 May 11.
Article in English | MEDLINE | ID: mdl-38734715

ABSTRACT

Accurate perception and behavior rely on distinguishing sensory signals arising from unexpected events from those originating from our own voluntary actions. In the vestibular system, sensory input that is the consequence of active self-motion is canceled early at the first central stage of processing to ensure postural and perceptual stability. However, the source of the required cancellation signal was unknown. Here, we show that the cerebellum combines sensory and motor-related information to predict the sensory consequences of active self-motion. Recordings during attempted but unrealized head movements in two male rhesus monkeys, revealed that the motor-related signals encoded by anterior vermis Purkinje cells explain their altered sensitivity to active versus passive self-motion. Further, a model combining responses from ~40 Purkinje cells accounted for the cancellation observed in early vestibular pathways. These findings establish how cerebellar Purkinje cells predict sensory outcomes of self-movements, resolving a long-standing issue of sensory signal suppression during self-motion.


Subject(s)
Macaca mulatta , Purkinje Cells , Animals , Purkinje Cells/physiology , Male , Head Movements/physiology , Cerebellum/physiology , Cerebellum/cytology , Vestibule, Labyrinth/physiology , Motion Perception/physiology
17.
Neuroimage ; 295: 120648, 2024 Jul 15.
Article in English | MEDLINE | ID: mdl-38761882

ABSTRACT

BACKGROUND: Cerebellar intermittent theta burst stimulation (iTBS) modulates the excitability of the cerebral cortex and may enhance attentional performance. To date, few studies have conducted iTBS on healthy subjects for one week and used electroencephalography (EEG) to investigate the effect of multiple stimulation sessions on resting-state functional brain networks and the daily stimulation effect on attentional performance. METHODS: 16 healthy subjects participated in a one-week experiment, receiving bilateral cerebellar iTBS or sham stimulation and engaging in multi-task attentional training. The primary measures were the one-week attentional performance and pre- and post-experiment resting-state EEG activities. Amplitude Envelope Correlation (AEC) was used to construct the functional connectivity in the eye-open (EO) and eye-closed (EC) phases. RESULTS: At least three sessions of iTBS were required to enhance multi-task performance significantly, whereas only one or two sessions failed to elicit the improvement. Compared with the control group, iTBS induced significant changes in PSD, AEC functional connectivity, and AEC network properties during the EO phase, while it had little effect during the EC phase. During the EO phase, the network property changes of the iTBS subject were correlated with improved attentional performance. CONCLUSION: The multi-task performance requires multiple stimulations to enhance. iTBS affects the resting-state alpha band brain activities during the EO rather than the EC phase. The AEC network properties may serve as a biomarker to assess the attentional potential of healthy subjects.


Subject(s)
Attention , Cerebellum , Electroencephalography , Transcranial Magnetic Stimulation , Humans , Attention/physiology , Male , Female , Cerebellum/physiology , Cerebellum/diagnostic imaging , Adult , Young Adult , Transcranial Magnetic Stimulation/methods , Nerve Net/physiology , Nerve Net/diagnostic imaging , Rest/physiology , Healthy Volunteers
18.
Eur J Neurosci ; 60(2): 3984-3994, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38721642

ABSTRACT

Both the primary motor cortex (M1) and the cerebellum are crucial for postural stability and deemed as potential targets for non-invasive brain stimulation (NIBS) to enhance balance performance. However, the optimal target remains unknown. The purpose of this study was to compare the role of M1 and the cerebellum in modulating balance performance in young healthy adults using facilitatory 5 Hz repetitive transcranial magnetic stimulation (rTMS). Twenty-one healthy young adults (mean age = 27.95 ± 1.15 years) received a single session of 5 Hz rTMS on M1 and the cerebellum in a cross-over order with a 7-day washout period between the two sessions. Three balance assessments were performed on the Biodex Balance system SD: Limits of Stability (LOS), modified Clinical Test of Sensory Interaction on Balance (mCTSIB), and Balance Error Scoring System (BESS). No significant effect of rTMS was found on the LOS. The effect of rTMS on the mCTSIB was mediated by stimulation target, proprioception, and vision (p = .003, ηp 2 = 0.37). Cerebellar rTMS improved the mCTSIB sway index under eyes closed-foam surface condition (p = .02), whereas M1 rTMS did not result in improvement on the mCTSIB. The effect of rTMS on the BESS was mediated by stimulation target, posture, and proprioception (p = .049, ηp 2 = 0.14). Cerebellar rTMS enhanced reactive balance performance during most sensory deprived conditions.


Subject(s)
Cerebellum , Motor Cortex , Postural Balance , Transcranial Magnetic Stimulation , Humans , Postural Balance/physiology , Motor Cortex/physiology , Transcranial Magnetic Stimulation/methods , Adult , Cerebellum/physiology , Male , Female , Young Adult , Proprioception/physiology
19.
Exp Brain Res ; 242(6): 1517-1531, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38722346

ABSTRACT

Cerebellar strokes induce coordination disorders that can affect activities of daily living. Evidence-based neurorehabilitation programs are founded on motor learning principles. The cerebellum is a key neural structure in motor learning. It is unknown whether and how well chronic cerebellar stroke individuals (CCSIs) can learn to coordinate their upper limbs through bimanual motor skill learning. The aim was to determine whether CCSIs could achieve bimanual skill learning through a serious game with the REAplan® robot and to compare CCSIs with healthy individuals (HIs). Over three consecutive days, sixteen CCSIs and eighteen HIs were trained on an asymmetric bimanual coordination task ("CIRCUIT" game) with the REAplan® robot, allowing quantification of speed, accuracy and coordination. The primary outcomes were the bimanual speed/accuracy trade-off (BiSAT) and bimanual coordination factor (BiCo). They were also evaluated on a bimanual REACHING task on Days 1 and 3. Correlation analyses between the robotic outcomes and clinical scale scores were computed. Throughout the sessions, BiSAT and BiCo improved during the CIRCUIT task in both HIs and CCSIs. On Day 3, HIs and CCSIs showed generalization of BiSAT, BiCo and transferred to the REACHING task. There was no significant between-group difference in progression. Four CCSIs and two HIs were categorized as "poor learners" according to BiSAT and/or BiCo. Increasing age correlated with reduced BiSAT but not BiCo progression. Over three days of training, HIs and CCSIs improved, retained, generalized and transferred a coordinated bimanual skill. There was no between-group difference, suggesting plastic compensation in CCSIs. Clinical trial NCT04642599 approved the 24th of November 2020.


Subject(s)
Learning , Motor Skills , Stroke Rehabilitation , Stroke , Adult , Aged , Female , Humans , Male , Middle Aged , Cerebellar Diseases/physiopathology , Cerebellar Diseases/rehabilitation , Cerebellum/physiopathology , Cerebellum/physiology , Chronic Disease , Learning/physiology , Motor Skills/physiology , Psychomotor Performance/physiology , Robotics , Stroke/physiopathology , Stroke Rehabilitation/methods , Prospective Studies , Adolescent , Aged, 80 and over
20.
Curr Biol ; 34(9): R340-R343, 2024 05 06.
Article in English | MEDLINE | ID: mdl-38714159

ABSTRACT

The posterior cerebellum is emerging as a key structure for social cognition. A new study causally demonstrates its early involvement during emotion perception and functional connectivity with the posterior superior temporal sulcus, a cortical hub of the social brain.


Subject(s)
Cerebellum , Social Perception , Humans , Cerebellum/physiology , Emotions/physiology , Social Cognition , Temporal Lobe/physiology
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