1.Research progress of the dopamine system in neurological diseases.
Yu-Qi NIU ; Jin-Jin WANG ; Wen-Fei CUI ; Peng QIN ; Jian-Feng GAO
Acta Physiologica Sinica 2025;77(2):309-317
The etiology of nervous system diseases is complicated, posing significant harm to patients and often resulting in poor prognoses. In recent years, the role of dopaminergic system in nervous system diseases has attracted much attention, and its complex regulatory mechanism and therapeutic potential have been gradually revealed. This paper reviews the role of dopaminergic neurons, the neurotransmitter dopamine, dopamine receptors and dopamine transporters in neurological diseases (including Alzheimer's disease, Parkinson's disease and schizophrenia), with a view to further elucidating the disease mechanism and providing new insights and strategies for the treatment of neurological diseases.
Humans
;
Dopamine/metabolism*
;
Nervous System Diseases/physiopathology*
;
Parkinson Disease/physiopathology*
;
Receptors, Dopamine/metabolism*
;
Dopaminergic Neurons/physiology*
;
Dopamine Plasma Membrane Transport Proteins/metabolism*
;
Alzheimer Disease/physiopathology*
;
Schizophrenia/physiopathology*
;
Animals
2.From Physiology to Pathology of Astrocytes: Highlighting Their Potential as Therapeutic Targets for CNS Injury.
Yimin YUAN ; Hong LIU ; Ziwei DAI ; Cheng HE ; Shangyao QIN ; Zhida SU
Neuroscience Bulletin 2025;41(1):131-154
In the mammalian central nervous system (CNS), astrocytes are the ubiquitous glial cells that have complex morphological and molecular characteristics. These fascinating cells play essential neurosupportive and homeostatic roles in the healthy CNS and undergo morphological, molecular, and functional changes to adopt so-called 'reactive' states in response to CNS injury or disease. In recent years, interest in astrocyte research has increased dramatically and some new biological features and roles of astrocytes in physiological and pathological conditions have been discovered thanks to technological advances. Here, we will review and discuss the well-established and emerging astroglial biology and functions, with emphasis on their potential as therapeutic targets for CNS injury, including traumatic and ischemic injury. This review article will highlight the importance of astrocytes in the neuropathological process and repair of CNS injury.
Astrocytes/drug effects*
;
Humans
;
Animals
;
Central Nervous System/pathology*
;
Central Nervous System Diseases/physiopathology*
3.Electroacupuncture at ST36 improves gastrointestinal motility disorders by promoting enteric nervous system regeneration through GDNF/Ret signaling in diabetic mice.
Jin-Lu GUO ; Shi LIU ; Sheng-Jie DING ; Xin YANG ; Fan DU
Journal of Integrative Medicine 2025;23(5):548-559
OBJECTIVE:
Diabetes-induced gastrointestinal (GI) motility disorders are increasingly prevalent. Damage to the enteric nervous system (ENS), composed primarily of enteric neurons and glial cells, is an essential mechanism involved in these disorders. Although electroacupuncture (EA) has shown the potential to mitigate enteric neuronal loss, its mechanism is not fully understood. Additionally, the effects of EA on enteric glial cells have not been investigated. Enteric neural precursor cells (ENPCs) contribute to the structural and functional integrity of the ENS, yet whether EA enhances their differentiation into enteric neurons and glial cells remains unexplored. This study investigates whether EA promotes ENS repair through enhancing ENPC-derived neurogenesis and gliogenesis and elucidates the potential molecular mechanisms involved.
METHODS:
Transgenic mice were used to trace Nestin+/nerve growth factor receptor (Ngfr)+ ENPCs labeled with green fluorescent protein (GFP) in vivo. Mice were randomly divided into four groups: control, diabetes mellitus (DM), DM + sham EA, and DM + EA. The effects of EA on diabetic mice were evaluated by GI motility, ENS structure, and ENPC differentiation. Glial cell line-derived neurotrophic factor (GDNF)/Ret signaling was detected to clarify the underlying molecular mechanisms.
RESULTS:
EA alleviated diabetes-induced GI motility disorders, as indicated by reduced whole gut transit time, shortened colonic bead expulsion time, and enhanced smooth muscle contractility. Furthermore, EA attenuated diabetes-induced losses of enteric neurons and glial cells, thereby restoring ENS integrity. Notably, EA reversed the diabetes-induced decrease in ENPCs and significantly increased the absolute number and the proportion of ENPC-derived enteric neurons. However, immunofluorescence analyses revealed no colocalization between EA-induced glial fibrillary acidic protein+ glial cells and GFP-labeled ENPCs. Mechanistically, GDNF/Ret signaling was elevated in intestinal tissues and upregulated in ENPCs in EA-treated diabetic mice.
CONCLUSION
EA facilitates ENS repair by promoting Nestin+/Ngfr+ ENPC differentiation into enteric neurons via upregulation of GDNF/Ret signaling, and driving enteric gliogenesis from non-Nestin+/Ngfr+ ENPCs. These findings highlight EA's role in ameliorating diabetes-induced GI dysmotility through ENPC-derived ENS restoration. Please cite this article as: Guo JL, Liu S, Ding SJ, Yang X, Du F. Electroacupuncture at ST36 improves gastrointestinal motility disorders by promoting enteric nervous system regeneration through GDNF/Ret signaling in diabetic mice. J Integr Med. 2025; 23(5):548-559.
Animals
;
Electroacupuncture
;
Enteric Nervous System/physiology*
;
Gastrointestinal Motility/physiology*
;
Glial Cell Line-Derived Neurotrophic Factor/metabolism*
;
Diabetes Mellitus, Experimental/therapy*
;
Signal Transduction
;
Mice
;
Gastrointestinal Diseases/physiopathology*
;
Proto-Oncogene Proteins c-ret/metabolism*
;
Mice, Transgenic
;
Male
;
Nerve Regeneration
;
Neural Stem Cells
;
Mice, Inbred C57BL
;
Acupuncture Points
4.Research advances on the structure, function, and related diseases of TREK-1 potassium channels.
Xiao-Ling LI ; Yang LI ; Hong ZHANG
Acta Physiologica Sinica 2024;76(6):1043-1055
Two-pore-domain potassium channels (K2P) family is widely expressed in many human cell types and organs, which has important regulatory effect on physiological processes. K2P is sensitive to a variety of chemical and physical stimuli, and they have also been critically implicated in transmission of neural signal, ion homeostasis, cell development and death, and synaptic plasticity. Aberrant expression and dysfunction of K2P channels are involved in a range of diseases, including autoimmune, central nervous system, cardiovascular disease and others. The scope of this review is to give a detailed overview of the structure, function, pharmacological regulation, and related diseases of TREK-1 channels, a member of the K2P family.
Potassium Channels, Tandem Pore Domain/genetics*
;
Humans
;
Animals
;
Cardiovascular Diseases/physiopathology*
;
Autoimmune Diseases/metabolism*
;
Central Nervous System Diseases/physiopathology*
5.Intrinsic and extrinsic mechanisms regulating neuronal dendrite morphogenesis.
Journal of Zhejiang University. Medical sciences 2020;49(1):90-99
Neurons are the structural and functional unit of the nervous system. Precisely regulated dendrite morphogenesis is the basis of neural circuit assembly. Numerous studies have been conducted to explore the regulatory mechanisms of dendritic morphogenesis. According to their action regions, we divide them into two categories: the intrinsic and extrinsic regulators of neuronal dendritic morphogenesis. Intrinsic factors are cell type-specific transcription factors, actin polymerization or depolymerization regulators and regulators of the secretion or endocytic pathways. These intrinsic factors are produced by neuron itself and play an important role in regulating the development of dendrites. The extrinsic regulators are either secreted proteins or transmembrane domain containing cell adhesion molecules. They often form receptor-ligand pairs to mediate attractive or repulsive dendritic guidance. In this review, we summarize recent findings on the intrinsic and external molecular mechanisms of dendrite morphogenesis from multiple model organisms, including , and mice. These studies will provide a better understanding on how defective dendrite development and maintenance are associated with neurological diseases.
Animals
;
Caenorhabditis elegans
;
cytology
;
Dendrites
;
Mice
;
Morphogenesis
;
Nervous System Diseases
;
physiopathology
;
Neurons
;
cytology
;
Transcription Factors
;
metabolism
7.Pharmacological Modulation of Vagal Nerve Activity in Cardiovascular Diseases.
Longzhu LIU ; Ming ZHAO ; Xiaojiang YU ; Weijin ZANG
Neuroscience Bulletin 2019;35(1):156-166
Cardiovascular diseases are life-threatening illnesses with high morbidity and mortality. Suppressed vagal (parasympathetic) activity and increased sympathetic activity are involved in these diseases. Currently, pharmacological interventions primarily aim to inhibit over-excitation of sympathetic nerves, while vagal modulation has been largely neglected. Many studies have demonstrated that increased vagal activity reduces cardiovascular risk factors in both animal models and human patients. Therefore, the improvement of vagal activity may be an alternate approach for the treatment of cardiovascular diseases. However, drugs used for vagus nerve activation in cardiovascular diseases are limited in the clinic. In this review, we provide an overview of the potential drug targets for modulating vagal nerve activation, including muscarinic, and β-adrenergic receptors. In addition, vagomimetic drugs (such as choline, acetylcholine, and pyridostigmine) and the mechanism underlying their cardiovascular protective effects are also discussed.
Acetylcholine
;
pharmacology
;
Animals
;
Cardiovascular Diseases
;
drug therapy
;
Cholinergic Agents
;
therapeutic use
;
Humans
;
Receptors, Muscarinic
;
drug effects
;
Sympathetic Nervous System
;
drug effects
;
physiopathology
;
Vagus Nerve
;
drug effects
;
physiopathology
8.Role of the system of orexin/receptors in neurological diseases.
Jing CUI ; Wei-Yan ZHAO ; Fei CAO ; Qian XIANG ; Yan GAO ; Yan-You PAN ; Qin-Qin WANG
Acta Physiologica Sinica 2019;71(4):657-670
The neuropeptide orexin is widely distributed in the nervous system. Previous studies showed that orexin is involved in the feeding behavior regulation by binding to its receptor 1 (OX1R) and receptor 2 (OX2R) to activate the downstream signaling pathway. Recent studies have demonstrated that the system of orexin and its receptors are also involved in important physiological processes such as sleep-wake, learning and memory, and pathological processes of various neurological diseases. In this review, we summarized the research progress on the function of the orexin and its receptor system in physiological and pathological processes, and revealed the correlation between orexin and nervous system diseases, in order to provide the theoretical guidance for the diagnosis and treatment of the related diseases in the future.
Humans
;
Nervous System Diseases
;
physiopathology
;
Orexin Receptors
;
physiology
;
Orexins
;
physiology
;
Signal Transduction
9.Peripheral neuropathy induced by drinking water contaminated with low-dose arsenic in Myanmar.
Hitoshi MOCHIZUKI ; Khin Phyu PHYU ; Myo Nanda AUNG ; Phyo Wai ZIN ; Yasunori YANO ; Moe Zaw MYINT ; Win Min THIT ; Yuka YAMAMOTO ; Yoshitaka HISHIKAWA ; Kyaw Zin THANT ; Masugi MARUYAMA ; Yoshiki KURODA
Environmental Health and Preventive Medicine 2019;24(1):23-23
BACKGROUND:
More than 140 million people drink arsenic-contaminated groundwater. It is unknown how much arsenic exposure is necessary to cause neurological impairment. Here, we evaluate the relationship between neurological impairments and the arsenic concentration in drinking water (ACDW).
PARTICIPANTS AND METHODS:
A cross-sectional study design was employed. We performed medical examinations of 1867 residents in seven villages in the Thabaung township in Myanmar. Medical examinations consisted of interviews regarding subjective neurological symptoms and objective neurological examinations of sensory disturbances. For subjective neurological symptoms, we ascertained the presence or absence of defects in smell, vision, taste, and hearing; the feeling of weakness; and chronic numbness or pain. For objective sensory disturbances, we examined defects in pain sensation, vibration sensation, and two-point discrimination. We analyzed the relationship between the subjective symptoms, objective sensory disturbances, and ACDW.
RESULTS:
Residents with ACDW ≥ 10 parts per billion (ppb) had experienced a "feeling of weakness" and "chronic numbness or pain" significantly more often than those with ACDW < 10 ppb. Residents with ACDW ≥ 50 ppb had three types of sensory disturbances significantly more often than those with ACDW < 50 ppb. In children, there was no significant association between symptoms or signs and ACDW.
CONCLUSION
Subjective symptoms, probably due to peripheral neuropathy, occurred at very low ACDW (around 10 ppb). Objective peripheral nerve disturbances of both small and large fibers occurred at low ACDW (> 50 ppb). These data suggest a threshold for the occurrence of peripheral neuropathy due to arsenic exposure, and indicate that the arsenic concentration in drinking water should be less than 10 ppb to ensure human health.
Adolescent
;
Adult
;
Arsenic
;
analysis
;
toxicity
;
Cross-Sectional Studies
;
Dietary Exposure
;
adverse effects
;
Dose-Response Relationship, Drug
;
Drinking Water
;
adverse effects
;
chemistry
;
Female
;
Groundwater
;
chemistry
;
Humans
;
Male
;
Middle Aged
;
Myanmar
;
epidemiology
;
Peripheral Nervous System Diseases
;
chemically induced
;
epidemiology
;
physiopathology
;
Sensation Disorders
;
chemically induced
;
epidemiology
;
physiopathology
;
Water Pollutants, Chemical
;
analysis
;
toxicity
;
Young Adult
10.The Role of Synapsins in Neurological Disorders.
Fatima Javed MIRZA ; Saadia ZAHID
Neuroscience Bulletin 2018;34(2):349-358
Synapsins serve as flagships among the presynaptic proteins due to their abundance on synaptic vesicles and contribution to synaptic communication. Several studies have emphasized the importance of this multi-gene family of neuron-specific phosphoproteins in maintaining brain physiology. In the recent times, increasing evidence has established the relevance of alterations in synapsins as a major determinant in many neurological disorders. Here, we give a comprehensive description of the diverse roles of the synapsin family and the underlying molecular mechanisms that contribute to several neurological disorders. These physiologically important roles of synapsins associated with neurological disorders are just beginning to be understood. A detailed understanding of the diversified expression of synapsins may serve to strategize novel therapeutic approaches for these debilitating neurological disorders.
Animals
;
Central Nervous System Diseases
;
physiopathology
;
Humans
;
Synapsins
;
physiology

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