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1.
Cells ; 13(10)2024 May 08.
Article in English | MEDLINE | ID: mdl-38786023

ABSTRACT

Parkinson's disease (PD) is the second-most common neurodegenerative disorder worldwide and is diagnosed based on motor impairments. Non-motor symptoms are also well-recognised in this disorder, and peripheral neuropathy is a frequent but poorly appreciated non-motor sign. Studying how central and peripheral sensory systems are affected can contribute to the development of targeted therapies and deepen our understanding of the pathophysiology of PD. Although the cause of sporadic PD is unknown, chronic exposure to the pesticide rotenone in humans increases the risk of developing the disease. Here, we aimed to investigate whether peripheral neuropathy is present in a traditional model of PD. Mice receiving intrastriatal rotenone showed greatly reduced dopamine terminals in the striatum and a reduction in tyrosine hydroxylase-positive neurons in the Substantia nigra pars compacta and developed progressive motor impairments in hindlimb stepping and rotarod but no change in spontaneous activity. Interestingly, repeated testing using gold-standard protocols showed no change in gut motility, a well-known non-motor symptom of PD. Importantly, we did not observe any change in heat, cold, or touch sensitivity, again based upon repeated testing with well-validated protocols that were statistically well powered. Therefore, this traditional model fails to replicate PD, and our data again reiterate the importance of the periphery to the disorder.


Subject(s)
Disease Models, Animal , Parkinson Disease , Rotenone , Animals , Mice , Parkinson Disease/physiopathology , Parkinson Disease/pathology , Rotenone/pharmacology , Mice, Inbred C57BL , Male , Peripheral Nervous System Diseases/physiopathology , Peripheral Nervous System Diseases/pathology , Corpus Striatum/pathology , Corpus Striatum/metabolism , Dopamine/metabolism
2.
Proc Natl Acad Sci U S A ; 121(22): e2316176121, 2024 May 28.
Article in English | MEDLINE | ID: mdl-38771878

ABSTRACT

The striato-nigral (Str-SN) circuit is composed of medium spiny neuronal projections that are mainly sent from the striatum to the midbrain substantial nigra (SN), which is essential for regulating motor behaviors. Dysfunction of the Str-SN circuitry may cause a series of motor disabilities that are associated with neurodegenerative disorders, such as Huntington's disease (HD). Although the etiology of HD is known as abnormally expanded CAG repeats of the huntingtin gene, treatment of HD remains tremendously challenging. One possible reason is the lack of effective HD model that resembles Str-SN circuitry deficits for pharmacological studies. Here, we first differentiated striatum-like organoids from human pluripotent stem cells (hPSCs), containing functional medium spiny neurons (MSNs). We then generated 3D Str-SN assembloids by assembling striatum-like organoids with midbrain SN-like organoids. With AAV-hSYN-GFP-mediated viral tracing, extensive MSN projections from the striatum to the SN are established, which formed synaptic connection with GABAergic neurons in SN organoids and showed the optically evoked inhibitory postsynaptic currents and electronic field potentials by labeling the striatum-like organoids with optogenetic virus. Furthermore, these Str-SN assembloids exhibited enhanced calcium activity compared to that of individual striatal organoids. Importantly, we further demonstrated the reciprocal projection defects in HD iPSC-derived assembloids, which could be ameliorated by treatment of brain-derived neurotrophic factor. Taken together, these findings suggest that Str-SN assembloids could be used for identifying MSN projection defects and could be applied as potential drug test platforms for HD.


Subject(s)
Huntington Disease , Organoids , Humans , Huntington Disease/pathology , Huntington Disease/metabolism , Organoids/pathology , Organoids/metabolism , Substantia Nigra/pathology , Substantia Nigra/metabolism , Corpus Striatum/pathology , Corpus Striatum/metabolism , Neurons/metabolism , Neurons/pathology , Cell Differentiation , GABAergic Neurons/metabolism , GABAergic Neurons/pathology , Pluripotent Stem Cells/metabolism , Optogenetics
3.
Behav Brain Res ; 468: 115040, 2024 Jun 25.
Article in English | MEDLINE | ID: mdl-38723675

ABSTRACT

Neurotoxins have been extensively investigated, particularly in the field of neuroscience. They induce toxic damage, oxidative stress, and inflammation on neurons, triggering neuronal dysfunction and neurodegenerative diseases. Here we demonstrate the neuroprotective effect of a silicon (Si)-based hydrogen-producing agent (Si-based agent) in a juvenile neurotoxic mouse model induced by 6-hydroxydopamine (6-OHDA). The Si-based agent produces hydrogen in bowels and functions as an antioxidant and anti-inflammatory agent. However, the effects of the Si-based agent on neural degeneration in areas other than the lesion and behavioral alterations caused by it are largely unknown. Moreover, the neuroprotective effects of Si-based agent in the context of lactation and use during infancy have not been explored in prior studies. In this study, we show the neuroprotective effect of the Si-based agent on 6-OHDA during lactation period and infancy using the mouse model. The Si-based agent safeguards against the degradation and neuronal cell death of dopaminergic neurons and loss of dopaminergic fibers in the striatum (STR) and ventral tegmental area (VTA) caused by 6-OHDA. Furthermore, the Si-based agent exhibits a neuroprotective effect on the length of axon initial segment (AIS) in the layer 2/3 (L2/3) neurons of the medial prefrontal cortex (mPFC). As a result, the Si-based agent mitigates hyperactive behavior in a juvenile neurotoxic mouse model induced by 6-OHDA. These results suggest that the Si-based agent serves as an effective neuroprotectant and antioxidant against neurotoxic effects in the brain, offering the possibility of the Si-based agent as a neuroprotectant for nervous system diseases.


Subject(s)
Disease Models, Animal , Dopaminergic Neurons , Hydrogen , Neuroprotective Agents , Oxidopamine , Silicon , Animals , Neuroprotective Agents/pharmacology , Oxidopamine/pharmacology , Mice , Silicon/pharmacology , Dopaminergic Neurons/drug effects , Female , Hydrogen/pharmacology , Hydrogen/administration & dosage , Male , Neurotoxicity Syndromes/drug therapy , Corpus Striatum/drug effects , Corpus Striatum/metabolism , Ventral Tegmental Area/drug effects , Mice, Inbred C57BL
4.
PLoS Comput Biol ; 20(5): e1012082, 2024 May.
Article in English | MEDLINE | ID: mdl-38701077

ABSTRACT

Many self-motivated and goal-directed behaviours display highly flexible, approximately 4 hour ultradian (shorter than a day) oscillations. Despite lacking direct correspondence to physical cycles in the environment, these ultradian rhythms may be involved in optimizing functional interactions with the environment and reflect intrinsic neural dynamics. Current evidence supports a role of mesostriatal dopamine (DA) in the expression and propagation of ultradian rhythmicity, however, the biochemical processes underpinning these oscillations remain to be identified. Here, we use a mathematical model to investigate D2 autoreceptor-dependent DA self-regulation as the source of ultradian behavioural rhythms. DA concentration at the midbrain-striatal synapses is governed through a dual-negative feedback-loop structure, which naturally gives rise to rhythmicity. This model shows the propensity of striatal DA to produce an ultradian oscillation characterized by a flexible period that is highly sensitive to parameter variations. Circadian (approximately 24 hour) regulation consolidates the ultradian oscillations and alters their response to the phase-dependent, rapid-resetting effect of a transient excitatory stimulus. Within a circadian framework, the ultradian rhythm orchestrates behavioural activity and enhances responsiveness to an external stimulus. This suggests a role for the circadian-ultradian timekeeping hierarchy in governing organized behaviour and shaping daily experience through coordinating the motivation to engage in recurring, albeit not highly predictable events, such as social interactions.


Subject(s)
Dopamine , Receptors, Dopamine D2 , Ultradian Rhythm , Dopamine/metabolism , Dopamine/physiology , Receptors, Dopamine D2/metabolism , Ultradian Rhythm/physiology , Animals , Models, Neurological , Humans , Circadian Rhythm/physiology , Corpus Striatum/physiology , Corpus Striatum/metabolism , Computational Biology
5.
Sci Adv ; 10(20): eadl2036, 2024 May 17.
Article in English | MEDLINE | ID: mdl-38758800

ABSTRACT

Huntington's disease (HD) is an autosomal dominant neurodegenerative disease characterized by preferential neuronal loss in the striatum. The mechanism underlying striatal selective neurodegeneration remains unclear, making it difficult to develop effective treatments for HD. In the brains of nonhuman primates, we examined the expression of Huntingtin (HTT), the gene responsible for HD. We found that HTT protein is highly expressed in striatal neurons due to its slow degradation in the striatum. We also identified tripartite motif-containing 37 (TRIM37) as a primate-specific protein that interacts with HTT and is selectively reduced in the primate striatum. TRIM37 promotes the ubiquitination and degradation of mutant HTT (mHTT) in vitro and modulates mHTT aggregation in mouse and monkey brains. Our findings suggest that nonhuman primates are crucial for understanding the mechanisms of human diseases such as HD and support TRIM37 as a potential therapeutic target for treating HD.


Subject(s)
Corpus Striatum , Huntingtin Protein , Huntington Disease , Tripartite Motif Proteins , Ubiquitin-Protein Ligases , Ubiquitination , Huntington Disease/metabolism , Huntington Disease/pathology , Huntington Disease/genetics , Animals , Huntingtin Protein/genetics , Huntingtin Protein/metabolism , Ubiquitin-Protein Ligases/metabolism , Ubiquitin-Protein Ligases/genetics , Tripartite Motif Proteins/metabolism , Tripartite Motif Proteins/genetics , Corpus Striatum/metabolism , Corpus Striatum/pathology , Mice , Humans , Disease Models, Animal , Neurons/metabolism , Neurons/pathology , Proteolysis , Primates
6.
Cell Death Dis ; 15(5): 337, 2024 May 14.
Article in English | MEDLINE | ID: mdl-38744826

ABSTRACT

Huntington's disease (HD) is a monogenic neurodegenerative disease, caused by the CAG trinucleotide repeat expansion in exon 1 of the Huntingtin (HTT) gene. The HTT gene encodes a large protein known to interact with many proteins. Huntingtin-associated protein 40 (HAP40) is one that shows high binding affinity with HTT and functions to maintain HTT conformation in vitro. However, the potential role of HAP40 in HD pathogenesis remains unknown. In this study, we found that the expression level of HAP40 is in parallel with HTT but inversely correlates with mutant HTT aggregates in mouse brains. Depletion of endogenous HAP40 in the striatum of HD140Q knock-in (KI) mice leads to enhanced mutant HTT aggregation and neuronal loss. Consistently, overexpression of HAP40 in the striatum of HD140Q KI mice reduced mutant HTT aggregation and ameliorated the behavioral deficits. Mechanistically, HAP40 preferentially binds to mutant HTT and promotes Lysine 48-linked ubiquitination of mutant HTT. Our results revealed that HAP40 is an important regulator of HTT protein homeostasis in vivo and hinted at HAP40 as a therapeutic target in HD treatment.


Subject(s)
Huntingtin Protein , Huntington Disease , Animals , Huntington Disease/metabolism , Huntington Disease/genetics , Huntington Disease/pathology , Huntingtin Protein/metabolism , Huntingtin Protein/genetics , Mice , Humans , Disease Models, Animal , Ubiquitination , Protein Aggregation, Pathological/genetics , Protein Aggregation, Pathological/metabolism , Mutation , Protein Aggregates , Mice, Transgenic , Corpus Striatum/metabolism , Corpus Striatum/pathology , Neurons/metabolism , Neurons/pathology
7.
Acta Neuropathol Commun ; 12(1): 75, 2024 May 14.
Article in English | MEDLINE | ID: mdl-38745295

ABSTRACT

In Parkinson's disease and other synucleinopathies, fibrillar forms of α-synuclein (aSyn) are hypothesized to structurally convert and pathologize endogenous aSyn, which then propagates through the neural connections, forming Lewy pathologies and ultimately causing neurodegeneration. Inoculation of mouse-derived aSyn preformed fibrils (PFFs) into the unilateral striatum of wild-type mice causes widespread aSyn pathologies in the brain through the neural network. Here, we used the local injection of antisense oligonucleotides (ASOs) against Snca mRNA to confine the area of endogenous aSyn protein reduction and not to affect the PFFs properties in this model. We then varied the timing and location of ASOs injection to examine their impact on the initiation and propagation of aSyn pathologies in the whole brain and the therapeutic effect using abnormally-phosphorylated aSyn (pSyn) as an indicator. By injecting ASOs before or 0-14 days after the PFFs were inoculated into the same site in the left striatum, the reduction in endogenous aSyn in the striatum leads to the prevention and inhibition of the regional spread of pSyn pathologies to the whole brain including the contralateral right hemisphere. ASO post-injection inhibited extension from neuritic pathologies to somatic ones. Moreover, injection of ASOs into the right striatum prevented the remote regional spread of pSyn pathologies from the left striatum where PFFs were inoculated and no ASO treatment was conducted. This indicated that the reduction in endogenous aSyn protein levels at the propagation destination site can attenuate pSyn pathologies, even if those at the propagation initiation site are not inhibited, which is consistent with the original concept of prion-like propagation that endogenous aSyn is indispensable for this regional spread. Our results demonstrate the importance of recruiting endogenous aSyn in this neural network propagation model and indicate a possible potential for ASO treatment in synucleinopathies.


Subject(s)
Mice, Inbred C57BL , Nerve Net , Oligonucleotides, Antisense , alpha-Synuclein , Animals , alpha-Synuclein/metabolism , alpha-Synuclein/genetics , Oligonucleotides, Antisense/pharmacology , Oligonucleotides, Antisense/administration & dosage , Mice , Nerve Net/metabolism , Nerve Net/drug effects , Nerve Net/pathology , Male , Corpus Striatum/metabolism , Corpus Striatum/pathology , Corpus Striatum/drug effects , Disease Models, Animal , Brain/metabolism , Brain/pathology , Brain/drug effects , RNA, Messenger/metabolism
8.
Biochem Biophys Res Commun ; 716: 150010, 2024 Jul 05.
Article in English | MEDLINE | ID: mdl-38704892

ABSTRACT

Calcium (Ca2+) in mitochondria plays crucial roles in neurons including modulating metabolic processes. Moreover, excessive Ca2+ in mitochondria can lead to cell death. Thus, altered mitochondrial Ca2+ regulation has been implicated in several neurodegenerative diseases including Huntington's disease (HD). HD is a progressive hereditary neurodegenerative disorder that results from abnormally expanded cytosine-adenine-guanine trinucleotide repeats in the huntingtin gene. One neuropathological hallmark of HD is neuronal loss in the striatum and cortex. However, mechanisms underlying selective loss of striatal and cortical neurons in HD remain elusive. Here, we measured the basal Ca2+ levels and Ca2+ uptake in single presynaptic mitochondria during 100 external electrical stimuli using highly sensitive mitochondria-targeted Ca2+ indicators in cultured cortical and striatal neurons of a knock-in mouse model of HD (zQ175 mice). We observed elevated presynaptic mitochondrial Ca2+ uptake during 100 electrical stimuli in HD cortical neurons compared with wild-type (WT) cortical neurons. We also found the highly elevated presynaptic mitochondrial basal Ca2+ level and Ca2+ uptake during 100 stimuli in HD striatal neurons. The elevated presynaptic mitochondrial basal Ca2+ level in HD striatal neurons and Ca2+ uptake during stimulation in HD striatal and cortical neurons can disrupt neurotransmission and induce mitochondrial Ca2+ overload, eventually leading to neuronal death in the striatum and cortex of HD.


Subject(s)
Calcium , Cerebral Cortex , Corpus Striatum , Disease Models, Animal , Gene Knock-In Techniques , Huntington Disease , Mitochondria , Presynaptic Terminals , Animals , Huntington Disease/metabolism , Huntington Disease/pathology , Huntington Disease/genetics , Calcium/metabolism , Mitochondria/metabolism , Mice , Corpus Striatum/metabolism , Corpus Striatum/pathology , Cerebral Cortex/metabolism , Cerebral Cortex/pathology , Presynaptic Terminals/metabolism , Cells, Cultured , Neurons/metabolism , Neurons/pathology , Mice, Transgenic
9.
Sci Adv ; 10(18): eadm7039, 2024 May 03.
Article in English | MEDLINE | ID: mdl-38701209

ABSTRACT

Long-range glutamatergic inputs originating from the cortex and thalamus are indispensable for striatal development, providing the foundation for motor and cognitive functions. Despite their significance, transcriptional regulation governing these inputs remains largely unknown. We investigated the role of a transcription factor encoded by a high-risk autism-associated gene, FOXP1, in sculpting glutamatergic inputs onto spiny projection neurons (SPNs) within the striatum. We find a neuron subtype-specific role of FOXP1 in strengthening and maturing glutamatergic inputs onto dopamine receptor 2-expressing SPNs (D2 SPNs). We also find that FOXP1 promotes synaptically driven excitability in these neurons. Using single-nuclei RNA sequencing, we identify candidate genes that mediate these cell-autonomous processes through postnatal FOXP1 function at the post-synapse. Last, we demonstrate that postnatal FOXP1 reinstatement rescues electrophysiological deficits, cell type-specific gene expression changes, and behavioral phenotypes. Together, this study enhances our understanding of striatal circuit development and provides proof of concept for a therapeutic approach for FOXP1 syndrome and other neurodevelopmental disorders.


Subject(s)
Corpus Striatum , Forkhead Transcription Factors , Neurons , Receptors, Dopamine D2 , Repressor Proteins , Animals , Forkhead Transcription Factors/metabolism , Forkhead Transcription Factors/genetics , Corpus Striatum/metabolism , Corpus Striatum/cytology , Mice , Neurons/metabolism , Repressor Proteins/metabolism , Repressor Proteins/genetics , Phenotype , Synapses/metabolism , Synapses/physiology , Male
10.
Int J Mol Sci ; 25(9)2024 Apr 30.
Article in English | MEDLINE | ID: mdl-38732120

ABSTRACT

Adenosine A2A receptor (A2AR) antagonists are the leading nondopaminergic therapy to manage Parkinson's disease (PD) since they afford both motor benefits and neuroprotection. PD begins with a synaptic dysfunction and damage in the striatum evolving to an overt neuronal damage of dopaminergic neurons in the substantia nigra. We tested if A2AR antagonists are equally effective in controlling these two degenerative processes. We used a slow intracerebroventricular infusion of the toxin MPP+ in male rats for 15 days, which caused an initial loss of synaptic markers in the striatum within 10 days, followed by a neuronal loss in the substantia nigra within 30 days. Interestingly, the initial loss of striatal nerve terminals involved a loss of both dopaminergic and glutamatergic synaptic markers, while GABAergic markers were preserved. The daily administration of the A2AR antagonist SCH58261 (0.1 mg/kg, i.p.) in the first 10 days after MPP+ infusion markedly attenuated both the initial loss of striatal synaptic markers and the subsequent loss of nigra dopaminergic neurons. Strikingly, the administration of SCH58261 (0.1 mg/kg, i.p. for 10 days) starting 20 days after MPP+ infusion was less efficacious to attenuate the loss of nigra dopaminergic neurons. This prominent A2AR-mediated control of synaptotoxicity was directly confirmed by showing that the MPTP-induced dysfunction (MTT assay) and damage (lactate dehydrogenase release assay) of striatal synaptosomes were prevented by 50 nM SCH58261. This suggests that A2AR antagonists may be more effective to counteract the onset rather than the evolution of PD pathology.


Subject(s)
Adenosine A2 Receptor Antagonists , Corpus Striatum , Disease Models, Animal , Parkinson Disease , Receptor, Adenosine A2A , Animals , Adenosine A2 Receptor Antagonists/pharmacology , Adenosine A2 Receptor Antagonists/therapeutic use , Rats , Male , Parkinson Disease/drug therapy , Parkinson Disease/metabolism , Parkinson Disease/pathology , Receptor, Adenosine A2A/metabolism , Corpus Striatum/metabolism , Corpus Striatum/drug effects , Corpus Striatum/pathology , Dopaminergic Neurons/drug effects , Dopaminergic Neurons/metabolism , Dopaminergic Neurons/pathology , Pyrimidines/pharmacology , Pyrimidines/therapeutic use , Triazoles/pharmacology , Substantia Nigra/drug effects , Substantia Nigra/metabolism , Substantia Nigra/pathology , Neuroprotective Agents/pharmacology , Neuroprotective Agents/therapeutic use , Rats, Sprague-Dawley
11.
Int J Mol Sci ; 25(10)2024 May 09.
Article in English | MEDLINE | ID: mdl-38791173

ABSTRACT

Astrocytes actively participate in neurotransmitter homeostasis by bidirectional communication with neuronal cells, a concept named the tripartite synapse, yet their role in dopamine (DA) homeostasis remains understudied. In the present study, we investigated the kinetic and molecular mechanisms of DA transport in cultured striatal astrocytes of adult rats. Kinetic uptake experiments were performed using radiolabeled [3H]-DA, whereas mRNA expression of the dopamine, norepinephrine, organic cation and plasma membrane monoamine transporters (DAT, NET, OCTs and PMAT) and DA receptors D1 and D2 was determined by qPCR. Additionally, astrocyte cultures were subjected to a 24 h treatment with the DA receptor agonist apomorphine, the DA receptor antagonist haloperidol and the DA precursor L-DOPA. [3H]-DA uptake exhibited temperature, concentration and sodium dependence, with potent inhibition by desipramine, nortriptyline and decynium-22, suggesting the involvement of multiple transporters. qPCR revealed prominent mRNA expression of the NET, the PMAT and OCT1, alongside lower levels of mRNA for OCT2, OCT3 and the DAT. Notably, apomorphine significantly altered NET, PMAT and D1 mRNA expression, while haloperidol and L-DOPA had a modest impact. Our findings demonstrate that striatal astrocytes aid in DA clearance by multiple transporters, which are influenced by dopaminergic drugs. Our study enhances the understanding of regional DA uptake, paving the way for targeted therapeutic interventions in dopaminergic disorders.


Subject(s)
Astrocytes , Corpus Striatum , Dopamine , Animals , Astrocytes/metabolism , Astrocytes/drug effects , Dopamine/metabolism , Rats , Corpus Striatum/metabolism , Corpus Striatum/drug effects , Haloperidol/pharmacology , Kinetics , Dopamine Plasma Membrane Transport Proteins/metabolism , Dopamine Plasma Membrane Transport Proteins/genetics , Apomorphine/pharmacology , Cells, Cultured , Male , Receptors, Dopamine D1/metabolism , Biological Transport/drug effects , Levodopa/pharmacology
12.
Behav Brain Res ; 468: 115035, 2024 Jun 25.
Article in English | MEDLINE | ID: mdl-38703793

ABSTRACT

Parkinson's Disease is a progressive neurodegenerative disorder characterized by motor symptoms resulting from the loss of nigrostriatal dopaminergic neurons. Kisspeptins (KPs) are a family of neuropeptides that are encoded by the Kiss-1 gene, which exert their physiological effects through interaction with the GPR54 receptor. In the current investigation, we investigated the prospective protective effects of central KP-54 treatments on nigrostriatal dopaminergic neurons and consequent motor performance correlates in 6-hydroxydopamine (6-OHDA)-lesioned rats. Male adult Sprague Dawley rats underwent stereotaxic injection of 6-OHDA into the right medial forebrain bundle to induce hemiparkinsonism. Following surgery, rats received chronic central treatments of nasal or intracerebroventricular KP-54 (logarithmically increasing doses) for seven consecutive days. Motor performance was evaluated seven days post-surgery utilizing the open field test and catalepsy test. The levels of dopamine in the striatum were determined with mass spectrometry. Immunohistochemical analysis was conducted to assess the immunoreactivities of tyrosine hydroxylase (TH) and the GPR54 in the substantia nigra. The dose-response curve revealed a median effective dose value of ≈3 nmol/kg for both central injections. Due to its non-invasive and effective nature, nasal administration was utilized in the second phase of our study. Chronic administration of KP-54 (3nmol/kg, nasally) significantly protected 6-OHDA-induced motor deficits. Nasal KP-54 attenuated the loss of nigrostriatal dopaminergic neurons induced by 6-OHDA. Additionally, significant correlations were observed between motor performance and nigrostriatal dopamine levels. Immunohistochemical analysis demonstrated the localization of the GPR54 within TH-positive nigral cells. These findings suggest the potential efficacy of central KP-54 on motor impairments in hemiparkinsonism.


Subject(s)
Administration, Intranasal , Corpus Striatum , Dopamine , Dopaminergic Neurons , Kisspeptins , Oxidopamine , Parkinsonian Disorders , Rats, Sprague-Dawley , Substantia Nigra , Animals , Male , Substantia Nigra/drug effects , Substantia Nigra/metabolism , Dopamine/metabolism , Oxidopamine/pharmacology , Rats , Corpus Striatum/drug effects , Corpus Striatum/metabolism , Kisspeptins/administration & dosage , Kisspeptins/pharmacology , Kisspeptins/metabolism , Parkinsonian Disorders/drug therapy , Parkinsonian Disorders/metabolism , Dopaminergic Neurons/drug effects , Dopaminergic Neurons/metabolism , Disease Models, Animal , Motor Activity/drug effects , Tyrosine 3-Monooxygenase/metabolism
13.
Nat Commun ; 15(1): 4434, 2024 May 24.
Article in English | MEDLINE | ID: mdl-38789416

ABSTRACT

Compulsive behaviors are a hallmark symptom of obsessive compulsive disorder (OCD). Striatal hyperactivity has been linked to compulsive behavior generation in correlative studies in humans and causal studies in rodents. However, the contribution of the two distinct striatal output populations to the generation and treatment of compulsive behavior is unknown. These populations of direct and indirect pathway-projecting spiny projection neurons (SPNs) have classically been thought to promote or suppress actions, respectively, leading to a long-held hypothesis that increased output of direct relative to indirect pathway promotes compulsive behavior. Contrary to this hypothesis, here we find that indirect pathway hyperactivity is associated with compulsive grooming in the Sapap3-knockout mouse model of OCD-relevant behavior. Furthermore, we show that suppression of indirect pathway activity using optogenetics or treatment with the first-line OCD pharmacotherapy fluoxetine is associated with reduced grooming in Sapap3-knockouts. Together, these findings highlight the striatal indirect pathway as a potential treatment target for compulsive behavior.


Subject(s)
Compulsive Behavior , Disease Models, Animal , Fluoxetine , Grooming , Mice, Knockout , Neurons , Obsessive-Compulsive Disorder , Optogenetics , Animals , Obsessive-Compulsive Disorder/physiopathology , Obsessive-Compulsive Disorder/genetics , Compulsive Behavior/physiopathology , Mice , Neurons/metabolism , Grooming/physiology , Fluoxetine/pharmacology , Fluoxetine/therapeutic use , Nerve Tissue Proteins/metabolism , Nerve Tissue Proteins/genetics , Male , Corpus Striatum/metabolism , Behavior, Animal , Mice, Inbred C57BL , Female , Neural Pathways
14.
Int J Mol Sci ; 25(9)2024 Apr 23.
Article in English | MEDLINE | ID: mdl-38731799

ABSTRACT

Parkinson's disease (PD) is the second most common neurodegenerative disorder. Dopamine (DA) neurons in the substantia nigra pars compacta, which have axonal projections to the dorsal striatum (dSTR), degenerate in PD. In contrast, DA neurons in the ventral tegmental area, with axonal projections to the ventral striatum, including the nucleus accumbens (NAcc) shell, are largely spared. This study aims to uncover the relative contributions of glycolysis and oxidative phosphorylation (OxPhos) to DA release in the striatum. We measured evoked DA release in mouse striatal brain slices using fast-scan cyclic voltammetry applied every two minutes. Blocking OxPhos resulted in a greater reduction in evoked DA release in the dSTR when compared to the NAcc shell, while blocking glycolysis caused a more significant decrease in evoked DA release in the NAcc shell than in the dSTR. Furthermore, when glycolysis was bypassed in favor of direct OxPhos, evoked DA release in the NAcc shell decreased by approximately 50% over 40 min, whereas evoked DA release in the dSTR was largely unaffected. These results demonstrate that the dSTR relies primarily on OxPhos for energy production to maintain evoked DA release, whereas the NAcc shell depends more on glycolysis. Consistently, two-photon imaging revealed higher oxidation levels of DA terminals in the dSTR than in the NAcc shell. Together, these findings partly explain the selective vulnerability of DA terminals in the dSTR to degeneration in PD.


Subject(s)
Corpus Striatum , Dopamine , Glycolysis , Oxidative Phosphorylation , Animals , Dopamine/metabolism , Mice , Corpus Striatum/metabolism , Male , Mice, Inbred C57BL , Dopaminergic Neurons/metabolism , Nucleus Accumbens/metabolism
15.
Commun Biol ; 7(1): 555, 2024 May 09.
Article in English | MEDLINE | ID: mdl-38724614

ABSTRACT

Spatio-temporal activity patterns have been observed in a variety of brain areas in spontaneous activity, prior to or during action, or in response to stimuli. Biological mechanisms endowing neurons with the ability to distinguish between different sequences remain largely unknown. Learning sequences of spikes raises multiple challenges, such as maintaining in memory spike history and discriminating partially overlapping sequences. Here, we show that anti-Hebbian spike-timing dependent plasticity (STDP), as observed at cortico-striatal synapses, can naturally lead to learning spike sequences. We design a spiking model of the striatal output neuron receiving spike patterns defined as sequential input from a fixed set of cortical neurons. We use a simple synaptic plasticity rule that combines anti-Hebbian STDP and non-associative potentiation for a subset of the presented patterns called rewarded patterns. We study the ability of striatal output neurons to discriminate rewarded from non-rewarded patterns by firing only after the presentation of a rewarded pattern. In particular, we show that two biological properties of striatal networks, spiking latency and collateral inhibition, contribute to an increase in accuracy, by allowing a better discrimination of partially overlapping sequences. These results suggest that anti-Hebbian STDP may serve as a biological substrate for learning sequences of spikes.


Subject(s)
Corpus Striatum , Learning , Neuronal Plasticity , Neuronal Plasticity/physiology , Learning/physiology , Corpus Striatum/physiology , Models, Neurological , Animals , Action Potentials/physiology , Neurons/physiology , Humans
16.
Addict Biol ; 29(5): e13399, 2024 May.
Article in English | MEDLINE | ID: mdl-38711213

ABSTRACT

Excessive use of the internet, which is a typical scenario of self-control failure, could lead to potential consequences such as anxiety, depression, and diminished academic performance. However, the underlying neuropsychological mechanisms remain poorly understood. This study aims to investigate the structural basis of self-control and internet addiction. In a cohort of 96 internet gamers, we examined the relationships among grey matter volume and white matter integrity within the frontostriatal circuits and internet addiction severity, as well as self-control measures. The results showed a significant and negative correlation between dACC grey matter volume and internet addiction severity (p < 0.001), but not with self-control. Subsequent tractography from the dACC to the bilateral ventral striatum (VS) was conducted. The fractional anisotropy (FA) and radial diffusivity of dACC-right VS pathway was negatively (p = 0.011) and positively (p = 0.020) correlated with internet addiction severity, respectively, and the FA was also positively correlated with self-control (p = 0.036). These associations were not observed for the dACC-left VS pathway. Further mediation analysis demonstrated a significant complete mediation effect of self-control on the relationship between FA of the dACC-right VS pathway and internet addiction severity. Our findings suggest that the dACC-right VS pathway is a critical neural substrate for both internet addiction and self-control. Deficits in this pathway may lead to impaired self-regulation over internet usage, exacerbating the severity of internet addiction.


Subject(s)
Diffusion Tensor Imaging , Gray Matter , Internet Addiction Disorder , Self-Control , White Matter , Humans , White Matter/diagnostic imaging , White Matter/pathology , Male , Internet Addiction Disorder/diagnostic imaging , Internet Addiction Disorder/physiopathology , Female , Diffusion Tensor Imaging/methods , Adult , Young Adult , Gray Matter/diagnostic imaging , Gray Matter/pathology , Ventral Striatum/diagnostic imaging , Ventral Striatum/physiopathology , Ventral Striatum/pathology , Severity of Illness Index , Neural Pathways/diagnostic imaging , Neural Pathways/physiopathology , Corpus Striatum/diagnostic imaging , Corpus Striatum/pathology , Corpus Striatum/physiopathology , Internet , Frontal Lobe/diagnostic imaging , Frontal Lobe/pathology , Frontal Lobe/physiopathology
17.
Nat Commun ; 15(1): 4201, 2024 May 17.
Article in English | MEDLINE | ID: mdl-38760337

ABSTRACT

The dorsolateral prefrontal cortex (dlPFC) is crucial for regulation of emotion that is known to aid prevention of depression. The broader fronto-cingulo-striatal (FCS) network, including cognitive dlPFC and limbic cingulo-striatal regions, has been associated with a negative evaluation bias often seen in depression. The mechanism by which dlPFC regulates the limbic system remains largely unclear. Here we have successfully induced a negative bias in decision-making in female primates performing a conflict decision-making task, by directly microstimulating the subgenual cingulate cortex while simultaneously recording FCS local field potentials (LFPs). The artificially induced negative bias in decision-making was associated with a significant decrease in functional connectivity from cognitive to limbic FCS regions, represented by a reduction in Granger causality in beta-range LFPs from the dlPFC to the other regions. The loss of top-down directional influence from cognitive to limbic regions, we suggest, could underlie negative biases in decision-making as observed in depressive states.


Subject(s)
Decision Making , Gyrus Cinguli , Animals , Gyrus Cinguli/physiology , Decision Making/physiology , Female , Corpus Striatum/physiology , Macaca mulatta/physiology , Dorsolateral Prefrontal Cortex/physiology , Prefrontal Cortex/physiology , Electric Stimulation , Nerve Net/physiology , Neural Pathways/physiology
18.
Sci Rep ; 14(1): 12132, 2024 May 27.
Article in English | MEDLINE | ID: mdl-38802497

ABSTRACT

The striatum plays a crucial role in providing input to the basal ganglia circuit and is implicated in the pathological process of Parkinson's disease (PD). Disruption of the dynamic equilibrium in the basal ganglia loop can be attributed to the abnormal functioning of the medium spiny neurons (MSNs) within the striatum, potentially acting as a trigger for PD. Exercise has been shown to mitigate striatal neuronal dysfunction through neuroprotective and neurorestorative effects and to improve behavioral deficits in PD model mice. In addition, this effect is offset by the activation of MSNs expressing dopamine D2 receptors (D2-MSNs). In the current study, we investigated the underlying neurobiological mechanisms of this effect. Our findings indicated that exercise reduces the power spectral density of the beta-band in the striatum and decreases the overall firing frequency of MSNs, particularly in the case of striatal D2-MSNs. These observations were consistent with the results of molecular biology experiments, which revealed that aerobic training specifically enhanced the expression of striatal dopamine D2 receptors (D2R). Taken together, our results suggest that aerobic training aimed at upregulating striatal D2R expression to inhibit the functional activity of D2-MSNs represents a potential therapeutic strategy for the amelioration of motor dysfunction in PD.


Subject(s)
Corpus Striatum , Disease Models, Animal , Parkinson Disease , Physical Conditioning, Animal , Receptors, Dopamine D2 , Animals , Receptors, Dopamine D2/metabolism , Receptors, Dopamine D2/genetics , Corpus Striatum/metabolism , Mice , Parkinson Disease/therapy , Parkinson Disease/metabolism , Parkinson Disease/physiopathology , Male , Neurons/metabolism , Mice, Inbred C57BL , Motor Activity/physiology , Medium Spiny Neurons
19.
J Stroke Cerebrovasc Dis ; 33(6): 106578, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38636320

ABSTRACT

BACKGROUND: Notch1 signaling inhibiton with N-[N-(3,5-difluorophenacetyl)-1-alanyl]-S-phenylglycine t-butylester] (DAPT) treatment could promote brain recovery and the intervention effect is different between striatum (STR) and cortex (CTX), which might be accounted for different changes of glial activities, but the in-depth mechanism is still unknown. The purpose of this study was to identify whether DAPT could modulate microglial subtype shifts and astroglial-endfeet aquaporin-4 (AQP4) mediated waste solute drainage. METHODS: Sprague-Dawley rats (n=10) were subjected to 90min of middle cerebral artery occlusion (MCAO) and were treated with DAPT (n=5) or act as control with no treatment (n=5). Two groups of rats underwent MRI scans at 24h and 4 week, and sacrificed at 4 week after stroke for immunofluorescence (IF). RESULTS: Compared with control rats, MRI data showed structural recovery in ipsilateral STR but not CTX. And IF showed decreased pro-inflammatory M1 microglia and increased anti-inflammatory M2 microglia in striatal lesion core and peri-lesions of STR, CTX. Meanwhile, IF showed decreased AQP4 polarity in ischemic brain tissue, however, AQP4 polarity in striatal peri-lesions of DAPT treated rats was higher than that in control rats but shows no difference in cortical peri-lesions between control and treated rats. CONCLUSIONS: The present study indicated that DAPT could promote protective microglia subtype shift and striatal astrocyte mediated waste solute drainage, that the later might be the major contributor of waste solute metabolism and one of the accounts for discrepant recovery of STR and CTX.


Subject(s)
Aquaporin 4 , Astrocytes , Dipeptides , Disease Models, Animal , Infarction, Middle Cerebral Artery , Microglia , Rats, Sprague-Dawley , Receptor, Notch1 , Recovery of Function , Signal Transduction , Animals , Aquaporin 4/metabolism , Receptor, Notch1/metabolism , Infarction, Middle Cerebral Artery/metabolism , Infarction, Middle Cerebral Artery/pathology , Infarction, Middle Cerebral Artery/drug therapy , Infarction, Middle Cerebral Artery/physiopathology , Male , Astrocytes/metabolism , Astrocytes/drug effects , Astrocytes/pathology , Microglia/metabolism , Microglia/drug effects , Microglia/pathology , Dipeptides/pharmacology , Cerebral Cortex/drug effects , Cerebral Cortex/metabolism , Cerebral Cortex/diagnostic imaging , Cerebral Cortex/pathology , Corpus Striatum/metabolism , Corpus Striatum/drug effects , Corpus Striatum/pathology , Time Factors , Neuroprotective Agents/pharmacology , Ischemic Stroke/metabolism , Ischemic Stroke/drug therapy , Ischemic Stroke/physiopathology , Ischemic Stroke/pathology
20.
Curr Biol ; 34(9): 1831-1843.e7, 2024 05 06.
Article in English | MEDLINE | ID: mdl-38604168

ABSTRACT

The coordination of neural activity across brain areas during a specific behavior is often interpreted as neural communication involved in controlling the behavior. However, whether information relevant to the behavior is actually transferred between areas is often untested. Here, we used information-theoretic tools to quantify how motor cortex and striatum encode and exchange behaviorally relevant information about specific reach-to-grasp movement features during skill learning in rats. We found a temporal shift in the encoding of behaviorally relevant information during skill learning, as well as a reversal in the primary direction of behaviorally relevant information flow, from cortex-to-striatum during naive movements to striatum-to-cortex during skilled movements. Standard analytical methods that quantify the evolution of overall neural activity during learning-such as changes in neural signal amplitude or the overall exchange of information between areas-failed to capture these behaviorally relevant information dynamics. Using these standard methods, we instead found a consistent coactivation of overall neural signals during movement production and a bidirectional increase in overall information propagation between areas during learning. Our results show that skill learning is achieved through a transformation in how behaviorally relevant information is routed across cortical and subcortical brain areas and that isolating the components of neural activity relevant to and informative about behavior is critical to uncover directional interactions within a coactive and coordinated network.


Subject(s)
Corpus Striatum , Learning , Motor Cortex , Motor Skills , Rats, Long-Evans , Animals , Motor Cortex/physiology , Learning/physiology , Rats , Corpus Striatum/physiology , Male , Motor Skills/physiology
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