1.Research progress on the mechanism of pain related neural pathways above the spinal cord.
Dong-Yang CHEN ; Qing-Rong HAN ; Hai-Yan SHENG
Acta Physiologica Sinica 2023;75(3):475-485
Pain is a multi-dimensional emotional experience, and pain sensation and pain emotion are the two main components. As for pain, previous studies only focused on a certain link of the pain transmission pathway or a certain key brain region, and there is a lack of evidence that connectivity of brain regions is involved in pain or pain regulation in the overall state. The establishment of new experimental tools and techniques has brought light to the study of neural pathways of pain sensation and pain emotion. In this paper, the structure and functional basis of the neural pathways involved in the formation of pain sensation and the regulation of pain emotion in the nervous system above the spinal cord level, including thalamus, amygdala, midbrain periaqueductal gray (PAG), parabrachial nucleus (PB) and medial prefrontal cortex (mPFC), are reviewed in recent years, providing clues for the in-depth study of pain.
Humans
;
Pain
;
Neural Pathways/physiology*
;
Periaqueductal Gray/physiology*
;
Brain
;
Spinal Cord/physiology*
;
Magnetic Resonance Imaging
3.Lighting Up Neural Circuits by Viral Tracing.
Liyao QIU ; Bin ZHANG ; Zhihua GAO
Neuroscience Bulletin 2022;38(11):1383-1396
Neurons are highly interwoven to form intricate neural circuits that underlie the diverse functions of the brain. Dissecting the anatomical organization of neural circuits is key to deciphering how the brain processes information, produces thoughts, and instructs behaviors. Over the past decades, recombinant viral vectors have become the most commonly used tracing tools to define circuit architecture. In this review, we introduce the current categories of viral tools and their proper application in circuit tracing. We further discuss some advances in viral tracing strategy and prospective innovations of viral tools for future study.
Synapses/physiology*
;
Prospective Studies
;
Neurons/physiology*
;
Genetic Vectors
;
Brain/physiology*
;
Neural Pathways/physiology*
4.Sexual Dimorphism of Inputs to the Lateral Habenula in Mice.
Xue LIU ; Hongren HUANG ; Yulin ZHANG ; Liping WANG ; Feng WANG
Neuroscience Bulletin 2022;38(12):1439-1456
The lateral habenula (LHb), which is a critical neuroanatomical hub and a regulator of midbrain monoaminergic centers, is activated by events resulting in negative valence and contributes to the expression of both appetitive and aversive behaviors. However, whole-brain cell-type-specific monosynaptic inputs to the LHb in both sexes remain incompletely elucidated. In this study, we used viral tracing combined with in situ hybridization targeting vesicular glutamate transporter 2 (vGlut2) and glutamic acid decarboxylase 2 (Gad2) to generate a comprehensive whole-brain atlas of inputs to glutamatergic and γ-aminobutyric acid (GABA)ergic neurons in the LHb. We found >30 ipsilateral and contralateral brain regions that projected to the LHb. Of these, there were significantly more monosynaptic LHb-projecting neurons from the lateral septum, anterior hypothalamus, dorsomedial hypothalamus, and ventromedial hypothalamus in females than in males. More interestingly, we found a stronger GABAergic projection from the medial septum to the LHb in males than in females. Our results reveal a comprehensive connectivity atlas of glutamatergic and GABAergic inputs to the LHb in both sexes, which may facilitate a better understanding of sexual dimorphism in physiological and pathological brain functions.
Animals
;
Male
;
Mice
;
Glutamic Acid/metabolism*
;
Habenula/metabolism*
;
Hypothalamus/metabolism*
;
Neural Pathways/physiology*
;
Sex Characteristics
;
Vesicular Glutamate Transport Protein 2/metabolism*
;
Female
5.The Glutamatergic Postrhinal Cortex-Ventrolateral Orbitofrontal Cortex Pathway Regulates Spatial Memory Retrieval.
Xinyang QI ; Zhanhong Jeff DU ; Lin ZHU ; Xuemei LIU ; Hua XU ; Zheng ZHOU ; Cheng ZHONG ; Shijiang LI ; Liping WANG ; Zhijun ZHANG
Neuroscience Bulletin 2019;35(3):447-460
A deficit in spatial memory has been taken as an early predictor of Alzheimer's disease (AD) or mild cognitive impairment (MCI). The uncinate fasciculus (UF) is a long-range white-matter tract that connects the anterior temporal lobe with the orbitofrontal cortex (OFC) in primates. Previous studies have shown that the UF impairment associated with spatial memory deficits may be an important pathological change in aging and AD, but its exact role in spatial memory is not well understood. The pathway arising from the postrhinal cortex (POR) and projecting to the ventrolateral orbitofrontal cortex (vlOFC) performs most of the functions of the UF in rodents. Although the literature suggests an association between spatial memory and the regions connected by the POR-vlOFC pathway, the function of the pathway in spatial memory is relatively unknown. To further illuminate the function of the UF in spatial memory, we dissected the POR-vlOFC pathway in mice. We determined that the POR-vlOFC pathway is a glutamatergic structure, and that glutamatergic neurons in the POR regulate spatial memory retrieval. We also demonstrated that the POR-vlOFC pathway specifically transmits spatial information to participate in memory retrieval. These findings provide a deeper understanding of UF function and dysfunction related to disorders of memory, as in MCI and AD.
Animals
;
Glutamic Acid
;
physiology
;
Male
;
Mental Recall
;
physiology
;
Mice, Inbred C57BL
;
Neural Pathways
;
cytology
;
physiology
;
Neuroanatomical Tract-Tracing Techniques
;
Neurons
;
physiology
;
Prefrontal Cortex
;
cytology
;
physiology
;
Spatial Memory
;
physiology
;
Temporal Lobe
;
cytology
;
physiology
6.Altered Local Field Potential Relationship Between the Parafascicular Thalamic Nucleus and Dorsal Striatum in Hemiparkinsonian Rats.
Haiyan ZHANG ; Jing YANG ; Xuenan WANG ; Xiaomeng YAO ; Hongyu HAN ; Yunfeng GAO ; Hongli CHANG ; Tianyu XIANG ; Shuang SUN ; Yanan WANG ; Xiusong WANG ; Min WANG
Neuroscience Bulletin 2019;35(2):315-324
The thalamostriatal pathway is implicated in Parkinson's disease (PD); however, PD-related changes in the relationship between oscillatory activity in the centromedian-parafascicular complex (CM/Pf, or the Pf in rodents) and the dorsal striatum (DS) remain unclear. Therefore, we simultaneously recorded local field potentials (LFPs) in both the Pf and DS of hemiparkinsonian and control rats during epochs of rest or treadmill walking. The dopamine-lesioned rats showed increased LFP power in the beta band (12 Hz-35 Hz) in the Pf and DS during both epochs, but decreased LFP power in the delta (0.5 Hz-3 Hz) band in the Pf during rest epochs and in the DS during both epochs, compared to control rats. In addition, exaggerated low gamma (35 Hz-70 Hz) oscillations after dopamine loss were restricted to the Pf regardless of the behavioral state. Furthermore, enhanced synchronization of LFP oscillations was found between the Pf and DS after the dopamine lesion. Significant increases occurred in the mean coherence in both theta (3 Hz-7 Hz) and beta bands, and a significant increase was also noted in the phase coherence in the beta band between the Pf and DS during rest epochs. During the treadmill walking epochs, significant increases were found in both the alpha (7 Hz-12 Hz) and beta bands for two coherence measures. Collectively, dramatic changes in the relative LFP power and coherence in the thalamostriatal pathway may underlie the dysfunction of the basal ganglia-thalamocortical network circuits in PD, contributing to some of the motor and non-motor symptoms of the disease.
Animals
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Brain Waves
;
physiology
;
Corpus Striatum
;
physiopathology
;
Cortical Synchronization
;
physiology
;
Dopaminergic Neurons
;
physiology
;
Electrocorticography
;
Male
;
Neural Pathways
;
physiopathology
;
Oxidopamine
;
Parkinsonian Disorders
;
physiopathology
;
Rats, Wistar
;
Thalamic Nuclei
;
physiopathology
;
Walking
;
physiology
7.Hierarchical Control of Drosophila Sleep, Courtship, and Feeding Behaviors by Male-Specific P1 Neurons.
Wenxuan ZHANG ; Chao GUO ; Dandan CHEN ; Qionglin PENG ; Yufeng PAN
Neuroscience Bulletin 2018;34(6):1105-1110
Animals choose among sleep, courtship, and feeding behaviors based on the integration of both external sensory cues and internal states; such choices are essential for survival and reproduction. These competing behaviors are closely related and controlled by distinct neural circuits, but whether they are also regulated by shared neural nodes is unclear. Here, we investigated how a set of male-specific P1 neurons controls sleep, courtship, and feeding behaviors in Drosophila males. We found that mild activation of P1 neurons was sufficient to affect sleep, but not courtship or feeding, while stronger activation of P1 neurons labeled by four out of five independent drivers induced courtship, but only the driver that targeted the largest number of P1 neurons affected feeding. These results reveal a common neural node that affects sleep, courtship, and feeding in a threshold-dependent manner, and provide insights into how competing behaviors can be regulated by a shared neural node.
Animals
;
Animals, Genetically Modified
;
Brain
;
cytology
;
Courtship
;
Drosophila
;
Drosophila Proteins
;
genetics
;
metabolism
;
Feeding Behavior
;
physiology
;
Locomotion
;
Male
;
Neural Inhibition
;
physiology
;
Neural Pathways
;
physiology
;
Neurons
;
physiology
;
Sex Factors
;
Sleep
;
physiology
8.Separate Neural Networks for Gains and Losses in Intertemporal Choice.
Yang-Yang ZHANG ; Lijuan XU ; Zhu-Yuan LIANG ; Kun WANG ; Bing HOU ; Yuan ZHOU ; Shu LI ; Tianzi JIANG
Neuroscience Bulletin 2018;34(5):725-735
An important and unresolved question is how human brain regions process information and interact with each other in intertemporal choice related to gains and losses. Using psychophysiological interaction and dynamic causal modeling analyses, we investigated the functional interactions between regions involved in the decision-making process while participants performed temporal discounting tasks in both the gains and losses domains. We found two distinct intrinsic valuation systems underlying temporal discounting in the gains and losses domains: gains were specifically evaluated in the medial regions, including the medial prefrontal and orbitofrontal cortices, and losses were evaluated in the lateral dorsolateral prefrontal cortex. In addition, immediate reward or punishment was found to modulate the functional interactions between the dorsolateral prefrontal cortex and distinct regions in both the gains and losses domains: in the gains domain, the mesolimbic regions; in the losses domain, the medial prefrontal cortex, anterior cingulate cortex, and insula. These findings suggest that intertemporal choice of gains and losses might involve distinct valuation systems, and more importantly, separate neural interactions may implement the intertemporal choices of gains and losses. These findings may provide a new biological perspective for understanding the neural mechanisms underlying intertemporal choice of gains and losses.
Adult
;
Brain
;
diagnostic imaging
;
physiology
;
Brain Mapping
;
Delay Discounting
;
physiology
;
Female
;
Humans
;
Magnetic Resonance Imaging
;
Male
;
Neural Pathways
;
diagnostic imaging
;
physiology
;
Neuropsychological Tests
;
Psychophysics
;
Reward
;
Young Adult
9.Functional Connectivity-Based Modelling Simulates Subject-Specific Network Spreading Effects of Focal Brain Stimulation.
Xiaoyu CHEN ; Chencheng ZHANG ; Yuxin LI ; Pei HUANG ; Qian LV ; Wenwen YU ; Shengdi CHEN ; Bomin SUN ; Zheng WANG
Neuroscience Bulletin 2018;34(6):921-938
Neurostimulation remarkably alleviates the symptoms in a variety of brain disorders by modulating the brain-wide network. However, how brain-wide effects on the direct and indirect pathways evoked by focal neurostimulation elicit therapeutic effects in an individual patient is unknown. Understanding this remains crucial for advancing neural circuit-based guidance to optimize candidate patient screening, pre-surgical target selection, and post-surgical parameter tuning. To address this issue, we propose a functional brain connectome-based modeling approach that simulates the spreading effects of stimulating different brain regions and quantifies the rectification of abnormal network topology in silico. We validated these analyses by pinpointing nuclei in the basal ganglia circuits as top-ranked targets for 43 local patients with Parkinson's disease and 90 patients from a public database. Individual connectome-based analysis demonstrated that the globus pallidus was the best choice for 21.1% and the subthalamic nucleus for 19.5% of patients. Down-regulation of functional connectivity (up to 12%) at these prioritized targets optimally maximized the therapeutic effects. Notably, the priority rank of the subthalamic nucleus significantly correlated with motor symptom severity (Unified Parkinson's Disease Rating Scale III) in the local cohort. These findings underscore the potential of neural network modeling for advancing personalized brain stimulation therapy, and warrant future experimental investigation to validate its clinical utility.
Adult
;
Aged
;
Brain Mapping
;
Connectome
;
Deep Brain Stimulation
;
methods
;
Female
;
Humans
;
Image Processing, Computer-Assisted
;
Magnetic Resonance Imaging
;
Male
;
Middle Aged
;
Neural Pathways
;
diagnostic imaging
;
physiology
;
Oxygen
;
blood
;
Parkinson Disease
;
diagnostic imaging
;
pathology
;
therapy
;
ROC Curve
;
United Kingdom
10.Whole-Brain Mapping of Direct Inputs to and Axonal Projections from GABAergic Neurons in the Parafacial Zone.
Yun-Ting SU ; Meng-Yang GU ; Xi CHU ; Xiang FENG ; Yan-Qin YU
Neuroscience Bulletin 2018;34(3):485-496
The GABAergic neurons in the parafacial zone (PZ) play an important role in sleep-wake regulation and have been identified as part of a sleep-promoting center in the brainstem, but the long-range connections mediating this function remain poorly characterized. Here, we performed whole-brain mapping of both the inputs and outputs of the GABAergic neurons in the PZ of the mouse brain. We used the modified rabies virus EnvA-ΔG-DsRed combined with a Cre/loxP gene-expression strategy to map the direct monosynaptic inputs to the GABAergic neurons in the PZ, and found that they receive inputs mainly from the hypothalamic area, zona incerta, and parasubthalamic nucleus in the hypothalamus; the substantia nigra, pars reticulata and deep mesencephalic nucleus in the midbrain; and the intermediate reticular nucleus and medial vestibular nucleus (parvocellular part) in the pons and medulla. We also mapped the axonal projections of the PZ GABAergic neurons with adeno-associated virus, and defined the reciprocal connections of the PZ GABAergic neurons with their input and output nuclei. The newly-found inputs and outputs of the PZ were also listed compared with the literature. This cell-type-specific neuronal whole-brain mapping of the PZ GABAergic neurons may reveal the circuits underlying various functions such as sleep-wake regulation.
Animals
;
Axons
;
physiology
;
Brain
;
anatomy & histology
;
Brain Mapping
;
Brain Stem
;
cytology
;
GABAergic Neurons
;
physiology
;
Green Fluorescent Proteins
;
genetics
;
metabolism
;
Mice
;
Mice, Inbred C57BL
;
Mice, Transgenic
;
Neural Pathways
;
physiology
;
Peptide Elongation Factor 1
;
genetics
;
metabolism
;
Rabies virus
;
genetics
;
metabolism
;
Transduction, Genetic
;
Vesicular Inhibitory Amino Acid Transport Proteins
;
genetics
;
metabolism

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