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Chu, H.-y.

Publications and source records attributed to Chu, H.-y..

3 recordsLinked to original sources

Reduced Thalamic Excitation to Motor Cortical Pyramidal Tract Neurons in a Mouse Model of Parkinsonism

Degeneration of midbrain dopaminergic (DA) neurons causes a reduced motor output from the primary motor cortex (M1), underlying the motor symptoms of Parkinsons disease (PD). However, cellular and circuitry mechanisms of M1 dysfunction in PD remain undefined. Using multidisciplinary approaches, we found that DA degeneration induces cell-subtype- and inputs-specific reduction of thalamic excitation to M1 pyramidal tract (PT) neurons. Physiological and anatomical analyses suggest that DA degeneration induces a loss of thalamocortical synapses to M1 PT neurons, resulting in an impaired thalamic driving of their activities. Moreover, we showed that the decreased thalamocortical connectivity are mediated by an excessive activation of NMDA receptors of M1 PT neurons. Further, the decreased thalamocortical transmission in parkinsonism can be rescued by chemogenetically suppressing basal ganglia outputs. Together, our data suggest that the reduced motor cortical outputs in parkinsonism are not only an immediate consequence of basal ganglia inhibition but also involves specific local circuitry adaptations within M1. This study reveals novel insight in the pathophysiology of parkinsonian motor deficits.

neuroscience↗

Synaptic Location Is a Determinant of the Detrimental Effects of α-Synuclein Pathology to Glutamatergic Transmission in the Basolateral Amygdala

The presynaptic protein -synuclein (Syn) has been suggested to be involved in the pathogenesis of Parkinsons disease (PD). In PD, the amygdala is prone to develop insoluble Syn aggregates, and it has been suggested that circuit dysfunction involving the amygdala contributes to the psychiatric symptoms. Yet, how Syn aggregates affect amygdala function is unknown. In this study, we examined Syn in glutamatergic axon terminals and the impact of its aggregation on glutamatergic transmission in the basolateral amygdala (BLA). We found that Syn is primarily present in the vesicular glutamate transporter 1-expressing (vGluT1+) terminals in mouse BLA, which is consistent with higher levels of Syn expression in vGluT1+ glutamatergic neurons in the cerebral cortex relative to the vGluT2+ glutamatergic neurons in the thalamus. We found that Syn aggregation selectively decreased the cortico-BLA, but not the thalamo-BLA, transmission; and that cortico-BLA synapses displayed enhanced short-term depression upon repetitive stimulation. In addition, using confocal microscopy, we found that vGluT1+ axon terminals exhibited decreased levels of soluble Syn, which suggests that lower levels of soluble Syn might underlie the enhanced short-term depression of cortico-BLA synapses. In agreement with this idea, we found that cortico-BLA synaptic depression was also enhanced in Syn knockout mice. In conclusion, both basal and dynamic cortico-BLA transmission were disrupted by abnormal aggregation of Syn and these changes might be relevant to the perturbed cortical control of the amygdala that has been suggested to play a role in psychiatric symptoms in PD.

neuroscience↗

Cell-Type-Specific Decrease of the Intrinsic Excitability of Motor Cortical Pyramidal Neurons in Parkinsonian Mice

The hypokinetic motor symptoms of Parkinsons disease (PD) are closely linked with a decreased motor cortical output as a consequence of elevated basal ganglia inhibition. However, whether and how the loss of dopamine alters the cellular properties of motor cortical neurons in PD remains undefined. We induced parkinsonism in adult C57BL6 mice of both sexes by injecting neurotoxin, 6-hydroxydopamine, into the medial forebrain bundle. By using ex vivo patch-clamp recording and retrograde tracing approach, we found that the intrinsic excitability of pyramidal tract neurons (PTNs) in the motor cortical layer 5b was greatly decreased in parkinsonism; but the intratelencephalic neurons (ITNs) were not affected. The cell-type-specific intrinsic adaptations were associated with a depolarized threshold and broadened width of action potentials in PTNs. Moreover, the loss of midbrain dopaminergic neurons impaired the capability of M1 PTNs to sustain high-frequency firing, which could underlie their abnormal pattern of activity in the parkinsonian state. We also showed that the decreased excitability in parkinsonism was caused by an impaired function of both persistent sodium channels and the large conductance, Ca2+-activated K+ channels. Acute activation of dopaminergic receptors failed to rescue the impaired intrinsic excitability of M1 PTNs in parkinsonian mice. Altogether, our data demonstrated a cell-type-specific decrease of the excitability of M1 pyramidal neurons in parkinsonism. Thus, intrinsic adaptations in the motor cortex, together with pathological basal ganglia inhibition, underlie the decreased motor cortical output in parkinsonian state and exacerbate parkinsonian motor deficits. Significance statementThe degeneration of midbrain dopaminergic neurons in Parkinsons disease remodels the connectivity and function of cortico-basal ganglia-thalamocortical network. However, whether and how dopaminergic degeneration and the associated basal ganglia dysfunction alter motor cortical circuitry remain undefined. We found that pyramidal neurons in the layer 5b of the primary motor cortex (M1) exhibit distinct adaptations in response to the loss of midbrain dopaminergic neurons, depending on their long-range projections. Besides the decreased thalamocortical synaptic excitation as proposed by the classical model of Parkinsons pathophysiology, these results, for the first time, show novel cellular and molecular mechanisms underlying the abnormal motor cortical output in parkinsonism.

neuroscience↗