1.BMP7 expression in mammalian cortical radial glial cells increases the length of the neurogenic period.
Zhenmeiyu LI ; Guoping LIU ; Lin YANG ; Mengge SUN ; Zhuangzhi ZHANG ; Zhejun XU ; Yanjing GAO ; Xin JIANG ; Zihao SU ; Xiaosu LI ; Zhengang YANG
Protein & Cell 2024;15(1):21-35
The seat of human intelligence is the human cerebral cortex, which is responsible for our exceptional cognitive abilities. Identifying principles that lead to the development of the large-sized human cerebral cortex will shed light on what makes the human brain and species so special. The remarkable increase in the number of human cortical pyramidal neurons and the size of the human cerebral cortex is mainly because human cortical radial glial cells, primary neural stem cells in the cortex, generate cortical pyramidal neurons for more than 130 days, whereas the same process takes only about 7 days in mice. The molecular mechanisms underlying this difference are largely unknown. Here, we found that bone morphogenic protein 7 (BMP7) is expressed by increasing the number of cortical radial glial cells during mammalian evolution (mouse, ferret, monkey, and human). BMP7 expression in cortical radial glial cells promotes neurogenesis, inhibits gliogenesis, and thereby increases the length of the neurogenic period, whereas Sonic Hedgehog (SHH) signaling promotes cortical gliogenesis. We demonstrate that BMP7 signaling and SHH signaling mutually inhibit each other through regulation of GLI3 repressor formation. We propose that BMP7 drives the evolutionary expansion of the mammalian cortex by increasing the length of the neurogenic period.
Animals
;
Mice
;
Humans
;
Ependymoglial Cells/metabolism*
;
Hedgehog Proteins/metabolism*
;
Ferrets/metabolism*
;
Cerebral Cortex
;
Neurogenesis
;
Mammals/metabolism*
;
Neuroglia/metabolism*
;
Bone Morphogenetic Protein 7/metabolism*
2.Inhibition of Foxp4 Disrupts Cadherin-based Adhesion of Radial Glial Cells, Leading to Abnormal Differentiation and Migration of Cortical Neurons in Mice.
Xue LI ; Shimin ZOU ; Xiaomeng TU ; Shishuai HAO ; Tian JIANG ; Jie-Guang CHEN
Neuroscience Bulletin 2023;39(7):1131-1145
Heterozygous loss-of-function variants of FOXP4 are associated with neurodevelopmental disorders (NDDs) that exhibit delayed speech development, intellectual disability, and congenital abnormalities. The etiology of NDDs is unclear. Here we found that FOXP4 and N-cadherin are expressed in the nuclei and apical end-feet of radial glial cells (RGCs), respectively, in the mouse neocortex during early gestation. Knockdown or dominant-negative inhibition of Foxp4 abolishes the apical condensation of N-cadherin in RGCs and the integrity of neuroepithelium in the ventricular zone (VZ). Inhibition of Foxp4 leads to impeded radial migration of cortical neurons and ectopic neurogenesis from the proliferating VZ. The ectopic differentiation and deficient migration disappear when N-cadherin is over-expressed in RGCs. The data indicate that Foxp4 is essential for N-cadherin-based adherens junctions, the loss of which leads to periventricular heterotopias. We hypothesize that FOXP4 variant-associated NDDs may be caused by disruption of the adherens junctions and malformation of the cerebral cortex.
Mice
;
Animals
;
Ependymoglial Cells/physiology*
;
Cadherins
;
Neurons/metabolism*
;
Cerebral Cortex/metabolism*
;
Cell Differentiation
;
Cell Movement
3.Chronic hypoperfusion due to intracranial large artery stenosis is not associated with cerebral β-amyloid deposition and brain atrophy.
Dongyu FAN ; Huiyun LI ; Dongwan CHEN ; Yang CHEN ; Xu YI ; Heng YANG ; Qianqian SHI ; Fangyang JIAO ; Yi TANG ; Qiming LI ; Fangyang WANG ; Shunan WANG ; Rongbing JIN ; Fan ZENG ; Yanjiang WANG
Chinese Medical Journal 2022;135(5):591-597
BACKGROUND:
Insufficient cerebral perfusion is suggested to play a role in the development of Alzheimer disease (AD). However, there is a lack of direct evidence indicating whether hypoperfusion causes or aggravates AD pathology. We investigated the effect of chronic cerebral hypoperfusion on AD-related pathology in humans.
METHODS:
We enrolled a group of cognitively normal patients (median age: 64 years) with unilateral chronic cerebral hypoperfusion. Regions of interest with the most pronounced hypoperfusion changes were chosen in the hypoperfused region and were then mirrored in the contralateral hemisphere to create a control region with normal perfusion. 11C-Pittsburgh compound-positron emission tomography standard uptake ratios and brain atrophy indices were calculated from the computed tomography images of each patient.
RESULTS:
The median age of the 10 participants, consisting of 4 males and 6 females, was 64 years (47-76 years). We found that there were no differences in standard uptake ratios of the cortex (volume of interest [VOI]: P = 0.721, region of interest [ROI]: P = 0.241) and grey/white ratio (VOI: P = 0.333, ROI: P = 0.445) and brain atrophy indices (Bicaudate, Bifrontal, Evans, Cella, Cella media, and Ventricular index, P > 0.05) between the hypoperfused regions and contralateral normally perfused regions in patients with unilateral chronic cerebral hypoperfusion.
CONCLUSION
Our findings suggest that chronic hypoperfusion due to large vessel stenosis may not directly induce cerebral β-amyloid deposition and neurodegeneration in humans.
Aged
;
Alzheimer Disease/pathology*
;
Amyloid beta-Peptides/metabolism*
;
Arteries
;
Atrophy
;
Brain/metabolism*
;
Cerebral Cortex/metabolism*
;
Cerebrovascular Circulation
;
Constriction, Pathologic/pathology*
;
Female
;
Humans
;
Magnetic Resonance Imaging/methods*
;
Male
;
Middle Aged
;
Positron-Emission Tomography/methods*
4.Time-dependent injury of mouse cerebral cortex and hippocampus by acute hypoxia.
Hua-Xiang SHI ; Meng-Wei ZHOU ; Hu ZHOU ; Jing-Xin ZHANG ; Wei-Guo SHI ; Li-Yun WANG
Acta Physiologica Sinica 2022;74(2):145-154
The aim of this study was to investigate the harmful effects of acute hypoxia on mouse cerebral cortex and hippocampus and the underlying mechanism. Mouse model of acute hypoxia was constructed by using a sealed glass jar. Laser speckle contrast imaging was used to detect the changes of cerebral blood flow after different time duration of hypoxia. Total superoxide dismutase (T-SOD) and malondialdehyde (MDA) assay kits were used to detect oxidative stress in cerebral cortex and hippocampus. Immunofluorescent staining was used to detect neuroinflammatory response of microglia in the cerebral cortex and hippocampus. One-step TUNEL method was used to detect neuronal apoptosis. The results showed that, compared with non-hypoxia (0 min hypoxia) group, 30 min hypoxia group exhibited decreased cerebral blood flow, higher percentage of CD68+/Iba1+ microglia, and increased neural apoptosis in the cerebral cortex and hippocampus. Compared with 30 min group, 60 min hypoxia group showed significantly decreased cerebral blood flow, increased MDA content in the cortex, as well as greater percentage of CD68+/Iba1+ microglia and neuronal apoptosis in the cerebral cortex and hippocampus. These results suggest that acute hypoxia damages brain tissue in a time-dependent manner and the oxidative stress and neuroinflammation are important mechanisms.
Animals
;
Cerebral Cortex/metabolism*
;
Hippocampus/metabolism*
;
Hypoxia
;
Malondialdehyde
;
Mice
;
Oxidative Stress
;
Superoxide Dismutase/pharmacology*
5.Effects of ring finger and tryptophan-aspartic acid 2 on dendritic spines and synapse formation in cerebral cortex neurons of mice.
Ting Ting SUN ; Yuan Yuan WANG ; Zhu Ling FANG ; Jia Jia XU ; Shi Wen MA ; Jiu Xiang CHANG ; Gao Feng LIU ; Yu GUO ; Chang Qing LIU
Journal of Southern Medical University 2022;42(1):78-85
OBJECTIVE:
To clarify the functional effects of differential expression of ring finger and tryptophan-aspartic acid 2 (RFWD2) on dendritic development and formation of dendritic spines in cerebral cortex neurons of mice.
METHODS:
Immunofluorescent staining was used to identify the location and global expression profile of RFWD2 in mouse brain and determine the co-localization of RFWD2 with the synaptic proteins in the cortical neurons. We also examined the effects of RFWD2 over-expression (RFWD2-Myc) and RFWD2 knockdown (RFWD2-shRNA) on dendritic development, dendritic spine formation and synaptic function in cultured cortical neurons.
RESULTS:
RFWD2 is highly expressed in the cerebral cortex and hippocampus of mice, and its expression level was positively correlated with the development of cerebral cortex neurons and dendrites. RFWD2 expression was detected on the presynaptic membrane and postsynaptic membrane of the neurons, and its expression levels were positively correlated with the length, number of branches and complexity of the dendrites. In cultured cortical neurons, RFWD2 overexpression significantly lowered the expressions of the synaptic proteins synaptophysin (P < 0.01) and postsynapic density protein 95 (P < 0.01), while RFWD2 knockdown significantly increased their expressions (both P < 0.05). Compared with the control and RFWD2-overexpressing cells, the neurons with RFWD2 knockdown showed significantly reduced number of dendritic spines (both P < 0.05).
CONCLUSION
RFWD2 can regulate the expression of the synaptic proteins, the development of the dendrites, the formation of the dendritic spines and synaptic function in mouse cerebral cortex neurons through ubiquitination of Pea3 family members and c-Jun, which may serve as potential treatment targets for neurological diseases.
Animals
;
Aspartic Acid/metabolism*
;
Cerebral Cortex
;
Dendritic Spines/metabolism*
;
Mice
;
Neurons/metabolism*
;
Synapses
;
Tryptophan/metabolism*
6.Identification of proteins differentially expressed by glutamate treatment in cerebral cortex of neonatal rats
Ju Bin KANG ; Dong Ju PARK ; Phil Ok KOH
Laboratory Animal Research 2019;35(4):172-179
Glutamate leads to neuronal cell damage by generating neurotoxicity during brain development. The objective of this study is to identify proteins that differently expressed by glutamate treatment in neonatal cerebral cortex. Sprague-Dawley rat pups (post-natal day 7) were intraperitoneally injected with vehicle or glutamate (10 mg/kg). Brain tissues were isolated 4 h after drug treatment and fixed for morphological study. Moreover, cerebral cortices were collected for protein study. Two-dimensional gel electrophoresis and mass spectrometry were carried out to identify specific proteins. We observed severe histopathological changes in glutamate-exposed cerebral cortex. We identified various proteins that differentially expressed by glutamate exposure. Identified proteins were thioredoxin, peroxiredoxin 5, ubiquitin carboxy-terminal hydrolase L1, proteasome subunit alpha proteins, isocitrate dehydrogenase, and heat shock protein 60. Heat shock protein 60 was increased in glutamate exposed condition. However, other proteins were decreased in glutamate-treated animals. These proteins are related to anti-oxidant, protein degradation, metabolism, signal transduction, and anti-apoptotic function. Thus, our findings can suggest that glutamate leads to neonatal cerebral cortex damage by regulation of specific proteins that mediated with various functions.
Animals
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Brain
;
Cerebral Cortex
;
Chaperonin 60
;
Electrophoresis, Gel, Two-Dimensional
;
Glutamic Acid
;
Humans
;
Infant, Newborn
;
Isocitrate Dehydrogenase
;
Mass Spectrometry
;
Metabolism
;
Neurons
;
Peroxiredoxins
;
Proteasome Endopeptidase Complex
;
Proteolysis
;
Proteomics
;
Rats
;
Rats, Sprague-Dawley
;
Signal Transduction
;
Thioredoxins
;
Ubiquitin Thiolesterase
7.Cortical Inflammation is Increased in a DSS-Induced Colitis Mouse Model.
Ying HAN ; Tong ZHAO ; Xiang CHENG ; Ming ZHAO ; Sheng-Hui GONG ; Yong-Qi ZHAO ; Hai-Tao WU ; Ming FAN ; Ling-Ling ZHU
Neuroscience Bulletin 2018;34(6):1058-1066
While inflammatory bowel disease (IBD) might be a risk factor in the development of brain dysfunctions, the underlying mechanisms are largely unknown. Here, mice were treated with 5% dextran sodium sulfate (DSS) in drinking water and sacrificed on day 7. The serum level of IL-6 increased, accompanied by elevation of the IL-6 and TNF-α levels in cortical tissue. However, the endotoxin concentration in plasma and brain of mice with DSS-induced colitis showed a rising trend, but with no significant difference. We also found significant activation of microglial cells and reduction in occludin and claudin-5 expression in the brain tissue after DSS-induced colitis. These results suggested that DSS-induced colitis increases systemic inflammation which then results in cortical inflammation via up-regulation of serum cytokines. Here, we provide new information on the impact of colitis on the outcomes of cortical inflammation.
Animals
;
Calcium-Binding Proteins
;
metabolism
;
Caspase 3
;
metabolism
;
Cerebral Cortex
;
pathology
;
Claudin-5
;
metabolism
;
Colitis
;
chemically induced
;
complications
;
pathology
;
Cytokines
;
genetics
;
metabolism
;
Dextran Sulfate
;
toxicity
;
Disease Models, Animal
;
Encephalitis
;
etiology
;
Gene Expression Regulation
;
drug effects
;
Mice
;
Microfilament Proteins
;
metabolism
;
Occludin
;
metabolism
;
Polysaccharides
;
blood
;
toxicity
;
Time Factors
8.Laminar Distribution of Neurochemically-Identified Interneurons and Cellular Co-expression of Molecular Markers in Epileptic Human Cortex.
Qiyu ZHU ; Wei KE ; Quansheng HE ; Xiongfei WANG ; Rui ZHENG ; Tianfu LI ; Guoming LUAN ; Yue-Sheng LONG ; Wei-Ping LIAO ; Yousheng SHU
Neuroscience Bulletin 2018;34(6):992-1006
Inhibitory GABAergic interneurons are fundamental elements of cortical circuits and play critical roles in shaping network activity. Dysfunction of interneurons can lead to various brain disorders, including epilepsy, schizophrenia, and anxiety. Based on the electrophysiological properties, cell morphology, and molecular identity, interneurons could be classified into various subgroups. In this study, we investigated the density and laminar distribution of different interneuron types and the co-expression of molecular markers in epileptic human cortex. We found that parvalbumin (PV) and somatostatin (SST) neurons were distributed in all cortical layers except layer I, while tyrosine hydroxylase (TH) and neuropeptide Y (NPY) were abundant in the deep layers and white matter. Cholecystokinin (CCK) neurons showed a high density in layers IV and VI. Neurons with these markers constituted ~7.2% (PV), 2.6% (SST), 0.5% (TH), 0.5% (NPY), and 4.4% (CCK) of the gray-matter neuron population. Double- and triple-labeling revealed that NPY neurons were also SST-immunoreactive (97.7%), and TH neurons were more likely to express SST (34.2%) than PV (14.6%). A subpopulation of CCK neurons (28.0%) also expressed PV, but none contained SST. Together, these results revealed the density and distribution patterns of different interneuron populations and the overlap between molecular markers in epileptic human cortex.
Adolescent
;
Adult
;
Brain Chemistry
;
genetics
;
physiology
;
Cerebral Cortex
;
metabolism
;
pathology
;
Child
;
Cholecystokinin
;
metabolism
;
Epilepsy
;
etiology
;
pathology
;
Female
;
Gene Expression Regulation
;
physiology
;
Humans
;
Interneurons
;
metabolism
;
Male
;
Middle Aged
;
Neuropeptide Y
;
metabolism
;
Parvalbumins
;
metabolism
;
Phosphopyruvate Hydratase
;
metabolism
;
Somatostatin
;
metabolism
;
Tyrosine 3-Monooxygenase
;
metabolism
;
Young Adult
9.Clinics in diagnostic imaging (193). Sporadic Creutzfeldt-Jakob disease (sCJD).
Jun Si Yuan LI ; Kheng Choon LIM ; Winston Eng Hoe LIM ; Robert Chun CHEN
Singapore medical journal 2018;59(12):634-641
A 68-year-old man presented with a three-week history of rapidly progressive dementia, gait ataxia and myoclonus. Subsequent electroencephalography showed periodic sharp wave complexes, and cerebrospinal fluid assay revealed the presence of a 14-3-3 protein. A probable diagnosis of sporadic Creutzfeldt-Jakob disease was made, which was further supported by magnetic resonance (MR) imaging of the brain showing asymmetric signal abnormality in the cerebral cortices and basal ganglia. The aetiology, clinical features, diagnostic criteria, various MR imaging patterns and radiologic differential diagnosis of sporadic Creutzfeldt-Jakob disease are discussed in this article.
Aged
;
Brain
;
pathology
;
Cerebral Cortex
;
Cerebrospinal Fluid
;
metabolism
;
Creutzfeldt-Jakob Syndrome
;
diagnostic imaging
;
Dementia
;
physiopathology
;
Diagnosis, Differential
;
Diffusion Magnetic Resonance Imaging
;
Electroencephalography
;
Humans
;
Hypoxia-Ischemia, Brain
;
diagnostic imaging
;
Male
;
Prion Diseases
;
physiopathology
10.Protective effect of histone acetylation against cortical injury in neonatal rats.
Ji-Chong HUANG ; Ya-Fei LI ; Feng-Yan ZHAO ; Yi QU ; De-Zhi MU
Chinese Journal of Contemporary Pediatrics 2017;19(1):81-87
OBJECTIVETo investigate the protective effect of histone acetylation against hypoxic-ischemic cortical injury in neonatal rats.
METHODSA total of 90 neonatal rats aged 3 days were divided into three groups: sham-operation, cortical injury model, and sodium butyrate (a histone deacetylase inhibitor) treatment. The rats in the model and the sodium butyrate treatment groups were intraperitoneally injected with lipopolysaccharide (0.05 mg/kg), and then right common carotid artery ligation was performed 2 hours later and the rats were put in a hypoxic chamber (oxygen concentration 6.5%) for 90 minutes. The rats in the sham-operation group were intraperitoneally injected with normal saline and the right common carotid artery was only separated and exposed without ligation or hypoxic treatment. The rats in the sodium butyrate treatment group were intraperitoneally injected with sodium butyrate (300 mg/kg) immediately after establishment of the cortical injury model once a day for 7 days. Those in the sham-operation and the model groups were injected with the same volume of normal saline. At 7 days after establishment of the model, Western blot was used to measure the protein expression of histone H3 (HH3), acetylated histone H3 (AH3), B-cell lymphoma/leukemia-2 (Bcl-2), Bcl-2-associated X protein (BAX), cleaved caspase-3 (CC3), and brain-derived neurotrophic factor (BDNF). Immunofluorescence assay was used to measure the expression of 5-bromo-2'-deoxyuridine (BrdU) as the cortex cell proliferation index.
RESULTSThe sodium butyrate treatment group had a significantly lower HH3/AH3 ratio than the model group (P<0.05), which suggested that the sodium butyrate treatment group had increased acetylation of HH3. Compared with the model group, the sodium butyrate treatment group had a significant increase in Bcl-2/Bax ratio, a significant reduction in CC3 expression, and a significant increase in BDNF expression (P<0.05). The sodium butyrate treatment group had a significant increase in the number of BrdU-positive cells in the cortex compared with the model group (P<0.05), and BrdU was mainly expressed in the neurons.
CONCLUSIONSIncreased histone acetylation may protect neonatal rats against cortical injury by reducing apoptosis and promoting regeneration of neurons. The mechanism may be associated with increased expression of BDNF.
Acetylation ; Animals ; Animals, Newborn ; Apoptosis ; drug effects ; Brain-Derived Neurotrophic Factor ; analysis ; Butyric Acid ; therapeutic use ; Cerebral Cortex ; pathology ; Female ; Histones ; metabolism ; Male ; Rats ; Rats, Sprague-Dawley

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