1.Effect of 40 Hz pulsed magnetic field on mitochondrial dynamics and heart rate variability in dementia mice.
Lifan ZHANG ; Duyan GENG ; Guizhi XU ; Hongxia AN
Journal of Biomedical Engineering 2025;42(4):707-715
Alzheimer's disease (AD) is the most common degenerative disease of the nervous system. Studies have found that the 40 Hz pulsed magnetic field has the effect of improving cognitive ability in AD, but the mechanism of action is not clear. In this study, APP/PS1 double transgenic AD model mice were used as the research object, the water maze was used to group dementia, and 40 Hz/10 mT pulsed magnetic field stimulation was applied to AD model mice with different degrees of dementia. The behavioral indicators, mitochondrial samples of hippocampal CA1 region and electrocardiogram signals were collected from each group, and the effects of 40 Hz pulsed magnetic field on mouse behavior, mitochondrial kinetic indexes and heart rate variability (HRV) parameters were analyzed. The results showed that compared with the AD group, the loss of mitochondrial crest structure was alleviated and the mitochondrial dynamics related indexes were significantly improved in the AD + stimulated group ( P < 0.001), sympathetic nerve excitation and parasympathetic nerve inhibition were improved, and the spatial cognitive memory ability of mice was significantly improved ( P < 0.05). The preliminary results of this study show that 40 Hz pulsed magnetic field stimulation can improve the mitochondrial structure and mitochondrial kinetic homeostasis imbalance of AD mice, and significantly improve the autonomic neuromodulation ability and spatial cognition ability of AD mice, which lays a foundation for further exploring the mechanism of ultra-low frequency magnetic field in delaying the course of AD disease and realizing personalized neurofeedback therapy for AD.
Animals
;
Heart Rate/physiology*
;
Mice
;
Alzheimer Disease/therapy*
;
Mice, Transgenic
;
Mitochondrial Dynamics/radiation effects*
;
Magnetic Field Therapy/methods*
;
Magnetic Fields
;
Disease Models, Animal
;
Mitochondria
;
Male
;
Maze Learning
;
Cognition
;
Dementia/therapy*
2.Synchronized neural rhythms in rat hippocampal CA1 region and orbitofrontal cortex are involved in learning and memory consolidation in spatial goal-directed tasks.
Lingwei TANG ; Jiasong LI ; Haibing XU
Journal of Southern Medical University 2025;45(3):479-487
OBJECTIVES:
To investigate the neural mechanisms of rhythmic activity in the hippocampal CA1 region and orbitofrontal cortex (OFC) during a spatial goal-directed task.
METHODS:
Four long-Evans rats were trained to perform a spatial goal-directed task in a land-based water maze (Cheese-board maze). The task was divided into 5 periods: Pre-test, Pre-sleep, Learning, Post-sleep, and Post-test. During the Learning phase, the task was split into two goal navigation and two reward acquisition processes with a total of 8 learning stages. Local field potentials (LFP) from the CA1 and the OFC were recorded, and power spectral density analysis was performed on Theta (6-12 Hz), Beta (15-30 Hz), Low gamma (30-60 Hz), and High gamma (60-90 Hz) bands. Coherence, phase-locking value (PLV), and phase-amplitude cross coupling (PAC) were used to assess the interactions between the CA1 and the OFC during learning and memory.
RESULTS:
During the task training, the rats showed consistent rhythms of OFC neural activity across the task states (P>0.05) while exhibiting significant changes in Beta and High gamma rhythms in the CA1 region (P<0.05). Coherence and PLV between the CA1 and the OFC were higher during goal navigation, especially in the stable learning phase (Stage 8 vs Stage 1, P<0.01). The rats showed stronger cross-frequency coupling between CA1-Theta and OFC-Low gamma in the Post-test phase than in the Pre-test phase (P<0.05).
CONCLUSIONS
Learning and memory consolidation in goal-directed tasks involve synchronized activity between the CA1 region and the OFC, and cross-frequency coupling plays a key role in maintaining short-term memory of reward locations in rats.
Animals
;
Rats
;
Rats, Long-Evans
;
CA1 Region, Hippocampal/physiology*
;
Memory Consolidation/physiology*
;
Prefrontal Cortex/physiology*
;
Maze Learning/physiology*
;
Goals
;
Male
;
Memory/physiology*
;
Learning/physiology*
3.A study on the effects of learning on the properties of rats hippocampal-prefrontal connections in a memory task.
Shuangyan LI ; Weiran ZHENG ; Lan A ; Longlong WANG ; Suhong LIU ; Hui LIU
Journal of Biomedical Engineering 2024;41(6):1095-1102
The transmission and interaction of neural information between the hippocampus and the prefrontal cortex play an important role in learning and memory. However, the specific effects of learning memory-related tasks on the connectivity characteristics between these two brain regions remain inadequately understood. This study employed in vivo microelectrode recording to obtain local field potentials (LFPs) from the ventral hippocampus (vHPC) and medial prefrontal cortex (mPFC) in eight rats during the performance of a T-maze task, assessed both before and after task learning. Additionally, dynamic causal modeling (DCM) was utilized to analyze alterations in causal connectivity between the vHPC and the mPFC during memory task execution pre- and post-learning. Results indicated the presence of forward connections from vHPC to mPFC and backward connections from mPFC to vHPC during the T-maze task. Moreover, the forward connection between these brain regions was slightly enhanced after task learning, whereas the backward connection was diminished. These changes in connectivity corresponded with the observed trends when the rats correctly performed the T-maze task. In conclusion, this study may facilitate future investigations into the underlying mechanisms of learning and memory from the perspective of connectivity characteristics between distinct brain regions.
Animals
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Hippocampus/physiology*
;
Rats
;
Prefrontal Cortex/physiology*
;
Memory/physiology*
;
Maze Learning/physiology*
;
Learning/physiology*
;
Male
4.NMDA Receptor Antagonist MK801 Protects Against 1-Bromopropane-Induced Cognitive Dysfunction.
Lin XU ; Xiaofei QIU ; Shuo WANG ; Qingshan WANG ; Xiu-Lan ZHAO
Neuroscience Bulletin 2019;35(2):347-361
Occupational exposure to 1-bromopropane (1-BP) induces learning and memory deficits. However, no therapeutic strategies are currently available. Accumulating evidence has suggested that N-methyl-D-aspartate receptors (NMDARs) and neuroinflammation are involved in the cognitive impairments in neurodegenerative diseases. In this study we aimed to investigate whether the noncompetitive NMDAR antagonist MK801 protects against 1-BP-induced cognitive dysfunction. Male Wistar rats were administered with MK801 (0.1 mg/kg) prior to 1-BP intoxication (800 mg/kg). Their cognitive performance was evaluated by the Morris water maze test. The brains of rats were dissected for biochemical, neuropathological, and immunological analyses. We found that the spatial learning and memory were significantly impaired in the 1-BP group, and this was associated with neurodegeneration in both the hippocampus (especially CA1 and CA3) and cortex. Besides, the protein levels of phosphorylated NMDARs were increased after 1-BP exposure. MK801 ameliorated the 1-BP-induced cognitive impairments and degeneration of neurons in the hippocampus and cortex. Mechanistically, MK801 abrogated the 1-BP-induced disruption of excitatory and inhibitory amino-acid balance and NMDAR abnormalities. Subsequently, MK801 inhibited the microglial activation and release of pro-inflammatory cytokines in 1-BP-treated rats. Our findings, for the first time, revealed that MK801 protected against 1-BP-induced cognitive dysfunction by ameliorating NMDAR function and blocking microglial activation, which might provide a potential target for the treatment of 1-BP poisoning.
Animals
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Brain
;
drug effects
;
metabolism
;
pathology
;
Cognitive Dysfunction
;
drug therapy
;
metabolism
;
pathology
;
Disease Models, Animal
;
Dizocilpine Maleate
;
pharmacology
;
Excitatory Amino Acid Antagonists
;
pharmacology
;
Hydrocarbons, Brominated
;
Inflammasomes
;
drug effects
;
metabolism
;
Male
;
Maze Learning
;
drug effects
;
physiology
;
Microglia
;
drug effects
;
metabolism
;
pathology
;
NLR Family, Pyrin Domain-Containing 3 Protein
;
metabolism
;
Neurons
;
drug effects
;
metabolism
;
pathology
;
Nootropic Agents
;
pharmacology
;
Random Allocation
;
Rats, Wistar
;
Receptors, N-Methyl-D-Aspartate
;
antagonists & inhibitors
;
metabolism
;
Spatial Memory
;
drug effects
;
physiology
;
Specific Pathogen-Free Organisms
5.A Critical Time-Window for the Selective Induction of Hippocampal Memory Consolidation by a Brief Episode of Slow-Wave Sleep.
Yi LU ; Zheng-Gang ZHU ; Qing-Qing MA ; Yun-Ting SU ; Yong HAN ; Xiaodong WANG ; Shumin DUAN ; Yan-Qin YU
Neuroscience Bulletin 2018;34(6):1091-1099
Although extensively studied, the exact role of sleep in learning and memory is still not very clear. Sleep deprivation has been most frequently used to explore the effects of sleep on learning and memory, but the results from such studies are inevitably complicated by concurrent stress and distress. Furthermore, it is not clear whether there is a strict time-window between sleep and memory consolidation. In the present study we were able to induce time-locked slow-wave sleep (SWS) in mice by optogenetically stimulating GABAergic neurons in the parafacial zone (PZ), providing a direct approach to analyze the influences of SWS on learning and memory with precise time-windows. We found that SWS induced by light for 30 min immediately or 15 min after the training phase of the object-in-place task significantly prolonged the memory from 30 min to 6 h. However, induction of SWS 30 min after the training phase did not improve memory, suggesting a critical time-window between the induction of a brief episode of SWS and learning for memory consolidation. Application of a gentle touch to the mice during light stimulation to prevent SWS induction also failed to improve memory, indicating the specific role of SWS, but not the activation of PZ GABAergic neurons itself, in memory consolidation. Similar influences of light-induced SWS on memory consolidation also occurred for Y-maze spatial memory and contextual fear memory, but not for cued fear memory. SWS induction immediately before the test phase had no effect on memory performance, indicating that SWS does not affect memory retrieval. Thus, by induction of a brief-episode SWS we have revealed a critical time window for the consolidation of hippocampus-dependent memory.
Animals
;
Cues
;
Electroencephalography
;
Electromyography
;
Evoked Potentials, Motor
;
physiology
;
Fear
;
psychology
;
Glutamate Decarboxylase
;
metabolism
;
Hippocampus
;
physiology
;
Light
;
Luminescent Proteins
;
genetics
;
metabolism
;
Maze Learning
;
physiology
;
Memory Consolidation
;
physiology
;
Mice
;
Mice, Inbred C57BL
;
Mice, Transgenic
;
Sleep Deprivation
;
Sleep, Slow-Wave
;
physiology
;
Time Factors
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Vesicular Inhibitory Amino Acid Transport Proteins
;
genetics
;
metabolism
6.Sex Differences in Neuropathology and Cognitive Behavior in APP/PS1/tau Triple-Transgenic Mouse Model of Alzheimer's Disease.
Jun-Ting YANG ; Zhao-Jun WANG ; Hong-Yan CAI ; Li YUAN ; Meng-Ming HU ; Mei-Na WU ; Jin-Shun QI
Neuroscience Bulletin 2018;34(5):736-746
Alzheimer's disease (AD) is the most common form of dementia among the elderly, characterized by amyloid plaques, neurofibrillary tangles, and neuroinflammation in the brain, as well as impaired cognitive behaviors. A sex difference in the prevalence of AD has been noted, while sex differences in the cerebral pathology and relevant molecular mechanisms are not well clarified. In the present study, we systematically investigated the sex differences in pathological characteristics and cognitive behavior in 12-month-old male and female APP/PS1/tau triple-transgenic AD mice (3×Tg-AD mice) and examined the molecular mechanisms. We found that female 3×Tg-AD mice displayed more prominent amyloid plaques, neurofibrillary tangles, neuroinflammation, and spatial cognitive deficits than male 3×Tg-AD mice. Furthermore, the expression levels of hippocampal protein kinase A-cAMP response element-binding protein (PKA-CREB) and p38-mitogen-activated protein kinases (MAPK) also showed sex difference in the AD mice, with a significant increase in the levels of p-PKA/p-CREB and a decrease in the p-p38 in female, but not male, 3×Tg-AD mice. We suggest that an estrogen deficiency-induced PKA-CREB-MAPK signaling disorder in 12-month-old female 3×Tg-AD mice might be involved in the serious pathological and cognitive damage in these mice. Therefore, sex differences should be taken into account in investigating AD biomarkers and related target molecules, and estrogen supplementation or PKA-CREB-MAPK stabilization could be beneficial in relieving the pathological damage in AD and improving the cognitive behavior of reproductively-senescent females.
Alzheimer Disease
;
metabolism
;
pathology
;
psychology
;
Amyloid beta-Protein Precursor
;
genetics
;
metabolism
;
Animals
;
Cyclic AMP Response Element-Binding Protein
;
metabolism
;
Cyclic AMP-Dependent Protein Kinases
;
metabolism
;
Disease Models, Animal
;
Female
;
Hippocampus
;
metabolism
;
pathology
;
Humans
;
Inflammation
;
metabolism
;
pathology
;
psychology
;
Male
;
Maze Learning
;
physiology
;
Mice, Inbred C57BL
;
Mice, Transgenic
;
Neurofibrillary Tangles
;
metabolism
;
pathology
;
Plaque, Amyloid
;
metabolism
;
pathology
;
psychology
;
Presenilin-1
;
genetics
;
metabolism
;
Sex Characteristics
;
Spatial Memory
;
physiology
;
p38 Mitogen-Activated Protein Kinases
;
metabolism
;
tau Proteins
;
genetics
;
metabolism
7.Propofol combined with hypoxia induces cognitive dysfunction in immature rats p38 pathway.
Jing ZHANG ; Qing YU ; Yang LIU ; Hui LIU ; Mang SUN ; Qin TIAN ; Shengfen TU
Journal of Southern Medical University 2018;38(11):1294-1299
OBJECTIVE:
To investigate the effects of propofol combined with hypoxia on cognitive function of immature rats and the possible role of p38 pathway and tau protein in mediating such effects.
METHODS:
Ninety 7-day-old (P7) SD rats were randomized for daily intraperitoneal injection of propofol (50 mg/kg) or lipid emulsion (5.0 mL/kg) for 7 consecutive days. After each injection, the rats were placed in a warm box (38 ℃) with an oxygen concentration of 18% (hypoxia), 21% (normal air), or 50% (oxygen) until full recovery of the righting reflex. Another 90 P7 rats were similarly grouped and received intraperitoneal injections of p-p38 blocker (15 mg/kg) 30 min before the same treaments. The phosphorylated tau protein, total tau protein and p-p38 content in the hippocampus were detected using Western blotting. The spatial learning and memory abilities of the rats were evaluated with Morris water maze test.
RESULTS:
Compared with lipid emulsion, propofol injection resulted in significantly increased levels of p-p38, phosphorylated tau and total tau proteins in rats with subsequent hypoxic or normal air treatment ( < 0.05), but propofol with oxygen and injections of the blocker before propofol did not cause significant changes in the proteins. Without subsequent oxygenation, the rats receiving injections of propofol, with and without prior blocker injection, all showed significantly prolonged latency time and reduced platform-crossing times and third quadrant residence time compared with the corresponding lipid emulsion groups ( < 0.05). With oxygen treatment, the rats in propofoland blocker-treated groups showed no significant difference in the performance in Morris water maze test from the corresponding lipid emulsion group. The results of Morris water maze test differed significantly between blocker-propofol group and propofol groups irrespective of exposures to different oxygen levels ( < 0.05), but not between the lipid emulsion and blocker group pairs with exposures to different oxygen levels.
CONCLUSIONS
Propofol combined with hypoxia can affect the expression of tau protein through p38 pathway to impair the cognitive function of immature rats, in which oxygen plays a protective role.
Animals
;
Cognitive Dysfunction
;
etiology
;
metabolism
;
Hippocampus
;
chemistry
;
Hypnotics and Sedatives
;
pharmacology
;
Hypoxia, Brain
;
complications
;
metabolism
;
MAP Kinase Signaling System
;
Maze Learning
;
drug effects
;
physiology
;
Memory
;
drug effects
;
physiology
;
Propofol
;
pharmacology
;
Random Allocation
;
Rats
;
Rats, Sprague-Dawley
;
tau Proteins
;
analysis
8.Basal Forebrain Cholinergic Deficits Reduce Glucose Metabolism and Function of Cholinergic and GABAergic Systems in the Cingulate Cortex.
Da Un JEONG ; Jin Hwan OH ; Ji Eun LEE ; Jihyeon LEE ; Zang Hee CHO ; Jin Woo CHANG ; Won Seok CHANG
Yonsei Medical Journal 2016;57(1):165-172
PURPOSE: Reduced brain glucose metabolism and basal forebrain cholinergic neuron degeneration are common features of Alzheimer's disease and have been correlated with memory function. Although regions representing glucose hypometabolism in patients with Alzheimer's disease are targets of cholinergic basal forebrain neurons, the interaction between cholinergic denervation and glucose hypometabolism is still unclear. The aim of the present study was to evaluate glucose metabolism changes caused by cholinergic deficits. MATERIALS AND METHODS: We lesioned basal forebrain cholinergic neurons in rats using 192 immunoglobulin G-saporin. After 3 weeks, lesioned animals underwent water maze testing or were analyzed by 18F-2-fluoro-2-deoxyglucose positron emission tomography. RESULTS: During water maze probe testing, performance of the lesioned group decreased with respect to time spent in the target quadrant and platform zone. Cingulate cortex glucose metabolism in the lesioned group decreased, compared with the normal group. Additionally, acetylcholinesterase activity and glutamate decarboxylase 65/67 expression declined in the cingulate cortex. CONCLUSION: Our results reveal that spatial memory impairment in animals with selective basal forebrain cholinergic neuron damage is associated with a functional decline in the GABAergic and cholinergic system associated with cingulate cortex glucose hypometabolism.
Acetylcholine/metabolism
;
Alzheimer Disease
;
Animals
;
Antibodies, Monoclonal/*pharmacology
;
Basal Forebrain/*drug effects/metabolism
;
Cholinergic Agents/administration & dosage/*pharmacology
;
Cholinergic Neurons/*drug effects/metabolism
;
Fluorodeoxyglucose F18
;
GABAergic Neurons/*drug effects/metabolism
;
Glucose/*metabolism
;
Gyrus Cinguli/*drug effects/metabolism
;
Humans
;
Injections
;
Maze Learning
;
Motor Activity/physiology
;
Positron-Emission Tomography
;
Rats
;
Ribosome Inactivating Proteins, Type 1/*pharmacology
9.Opioid μ receptors mediate the stress-induced spatial reference memory impairment.
Lan-Qin CAO ; Jie WEN ; Zhi-Qiang LIU
Acta Physiologica Sinica 2015;67(2):173-180
Learning/memory impairment is one of the most serious problems induced by stress, and the underlying mechanisms remain unclear. Opiates and opioid receptors are implicated in multiple physiological functions including learning and memory. However, there is no clear evidence whether the endogenous opioid system is involved in the formation of the stress-induced spatial reference memory impairment. The aim of the present study was to evaluate the role of μ opioid receptor in the stress-induced spatial reference memory impairment by means of Morris water maze (MWM) test in a mouse elevated platform stress model. The mice were trained in the MWM for four trials a session for 4 consecutive days after receiving the elevated platform stress, and intracerebroventricular injection of μ opioid receptor agonist DAMGO, antagonist CTAP or saline. Retention of the spatial training was assessed 24 h after the last training session with a 60-s free-swim probe trial using a new starting position. The results showed that intracerebroventricular injection of μ opioid receptor agonist DAMGO but not antagonist CTAP before MWM training impaired the memory retrieval of mice. Elevated platform stress before MWM training also impaired memory retrieval, which could be reversed by pre-injection of CTAP, and aggravated by DAMGO. These results suggest that endogenous opioid system may play a crucial role in the formation of the stress-induced memory impairment.
Animals
;
Enkephalin, Ala(2)-MePhe(4)-Gly(5)-
;
pharmacology
;
Maze Learning
;
Memory Disorders
;
Mice
;
Receptors, Opioid, mu
;
physiology
;
Spatial Memory
;
Stress, Physiological
10.Effect of hypobaric hypoxia exposure on memory and tau phosphorylation in brain of mice.
Yuan CHEN ; Li-Xia YU ; Yan HONG ; Chao NIU ; Jing-Wei GAO ; Hong JIN ; Xue-Lan WANG ; Hai WANG
Chinese Journal of Applied Physiology 2014;30(3):285-288
OBJECTIVETo investigate the effect of hypobaric hypoxia (HH)on the cognitive function of mice and the phosphorylation of tau protein in mice brain.
METHODSForty male mice were randomly divided into 4 groups (n = 10): static control (control) group, 8 hours (8 h) group, 7 days(7 d) group and 28 days(28 d) group, which were exposed to simulated HH equivalent to 5 500 m in an animal decompression chamber for 0 hour, 8 hours, 7 days and 28 days, respectively. Cognitive performances were examined by open field and passive avoidance test, tan phosphorylation was assayed by Western blot.
RESULTSIn open field test,the group exposed in hypobaric hypoxia for 28 d showed lower mean velocity (P < 0.05), time in central zone (P < 0.05) was longer than control group. In passive avoidance test 28 d group presented worse performance in both latency time and number of mistakes (P < 0.05) compared with control group. Western blot showed that phosphorylated tau was increased significantly following exposure to HH for 7 d in cortex and 28 d in hippocampus (P < 0.05).
CONCLUSIONTau hyperphosphorylation in brain of mice may play a role in chronic HH-induced cognitive function impairment.
Animals ; Cerebral Cortex ; metabolism ; Disease Models, Animal ; Hippocampus ; metabolism ; Hypoxia ; metabolism ; physiopathology ; Male ; Maze Learning ; physiology ; Memory ; physiology ; Mice ; Phosphorylation ; tau Proteins ; metabolism

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