The association between blood lymphocyte NMDAR, group I mGluRs and cognitive function changes in occupationally aluminum-exposed workers and verification in rats.
暂无分享,去创建一个
Q. Niu | Chanting He | Xiaoyan Zhao | Shanshan Wang | Yang Lei | C. He | Y. Lei
[1] Yanni Wang,et al. Regulation of mGluR1 on the Expression of PKC and NMDAR in Aluminum-Exposed PC12 Cells , 2021, Neurotoxicity Research.
[2] Hui Yang,et al. Longitudinal study of the effects of occupational aluminium exposure on workers' cognition. , 2021, Chemosphere.
[3] Hui Yang,et al. Cross-sectional study based on occupational aluminium exposure population. , 2021, Environmental toxicology and pharmacology.
[4] Owen A. Williams,et al. Associations between cognitive and brain volume changes in cognitively normal older adults , 2020, NeuroImage.
[5] A. Shanker,et al. Critical Neurotransmitters in the Neuroimmune Network , 2020, Frontiers in Immunology.
[6] J. Ge,et al. Impaired Learning and Memory Ability Induced by a Bilaterally Hippocampal Injection of Streptozotocin in Mice: Involved With the Adaptive Changes of Synaptic Plasticity , 2020, bioRxiv.
[7] Haiyang Yu,et al. Involvement of NMDAR/PSD-95/nNOS-NO-cGMP pathway in embryonic exposure to BPA induced learning and memory dysfunction of rats. , 2020, Environmental pollution.
[8] Q. Niu,et al. Role of mGluR 1 in synaptic plasticity impairment induced by maltol aluminium in rats. , 2020, Environmental toxicology and pharmacology.
[9] Q. Niu,et al. Aluminum-Induced Synaptic Plasticity Impairment via PI3K-Akt-mTOR Signaling Pathway , 2020, Neurotoxicity Research.
[10] Q. Niu,et al. Effects of Chronic Aluminum Lactate Exposure on Neuronal Apoptosis and Hippocampal Synaptic Plasticity in Rats , 2019, Biological Trace Element Research.
[11] Q. Niu,et al. Aluminium-induced synaptic plasticity injury via the PHF8-H3K9me2-BDNF signalling pathway. , 2019, Chemosphere.
[12] Junhong Guo,et al. The Relationship between Plasma Al Levels and Multi-domain Cognitive Performance among In-service Aluminum-exposed Workers at the SH Aluminum Factory in China: A Cross-sectional Study. , 2019, Neurotoxicology.
[13] Junhong Guo,et al. Cognitive impairment of workers in a large-scale aluminium factory in China: a cross-sectional study , 2019, BMJ Open.
[14] Xiao-Min Wang,et al. Glutamate receptor delocalization in postsynaptic membrane and reduced hippocampal synaptic plasticity in the early stage of Alzheimer’s disease , 2019, Neural regeneration research.
[15] A. Terracciano,et al. Verbal fluency and risk of dementia , 2019, International journal of geriatric psychiatry.
[16] R. Ho,et al. Psychometric validation of Fuld Object Memory Evaluation in older adults with cognitive impairments , 2019, Aging & mental health.
[17] A. Atri. The Alzheimer's Disease Clinical Spectrum: Diagnosis and Management. , 2019, The Medical clinics of North America.
[18] Daniel Casey,et al. Cognitive tests for the detection of mild cognitive impairment (MCI), the prodromal stage of dementia: Meta‐analysis of diagnostic accuracy studies , 2018, International journal of geriatric psychiatry.
[19] A. Reiner,et al. Glutamatergic Signaling in the Central Nervous System: Ionotropic and Metabotropic Receptors in Concert , 2018, Neuron.
[20] R. Moqbel,et al. Neurotransmitter signalling via NMDA receptors leads to decreased T helper type 1‐like and enhanced T helper type 2‐like immune balance in humans , 2018, Immunology.
[21] J. Nie. Exposure to Aluminum in Daily Life and Alzheimer's Disease. , 2018, Advances in experimental medicine and biology.
[22] A. Mietelska-Porowska,et al. T Lymphocytes and Inflammatory Mediators in the Interplay between Brain and Blood in Alzheimer's Disease: Potential Pools of New Biomarkers , 2017, Journal of immunology research.
[23] S. Ferguson,et al. Metabotropic glutamate receptors and neurodegenerative diseases. , 2017, Pharmacological research.
[24] P. Reddy,et al. Role of Glutamate and NMDA Receptors in Alzheimer's Disease. , 2017, Journal of Alzheimer's disease : JAD.
[25] M. Potegal,et al. Molecular mechanisms of group I metabotropic glutamate receptor mediated LTP and LTD in basolateral amygdala in vitro , 2016, Psychopharmacology.
[26] Y. Liu,et al. The RAS/PI3K Pathway is Involved in the Impairment of Long-term Potentiation Induced by Acute Aluminum Treatment in Rats. , 2016, Biomedical and environmental sciences : BES.
[27] X. Shi,et al. Protective effect of tetrahydroxy stilbene glucoside on learning and memory by regulating synaptic plasticity , 2016, Neural regeneration research.
[28] H. Anisman,et al. Chronic Pharmacological mGluR5 Inhibition Prevents Cognitive Impairment and Reduces Pathogenesis in an Alzheimer Disease Mouse Model. , 2016, Cell reports.
[29] Wanyue Huang,et al. Aluminum chloride induces neuroinflammation, loss of neuronal dendritic spine and cognition impairment in developing rat. , 2016, Chemosphere.
[30] T. Kodadek,et al. The Immune System and Neuroinflammation as Potential Sources of Blood-Based Biomarkers for Alzheimer's Disease, Parkinson's Disease, and Huntington's Disease. , 2016, ACS chemical neuroscience.
[31] Q. Niu,et al. Caspase-3 is Involved in Aluminum-Induced Impairment of Long-Term Potentiation in Rats Through the Akt/GSK-3β Pathway , 2016, Neurotoxicity Research.
[32] U. Wojda. Alzheimer's disease lymphocytes: potential for biomarkers? , 2016, Biomarkers in medicine.
[33] A. Kirova,et al. Working Memory and Executive Function Decline across Normal Aging, Mild Cognitive Impairment, and Alzheimer's Disease , 2015, BioMed research international.
[34] G. Collingridge,et al. Long-term potentiation and the role of N-methyl-d-aspartate receptors , 2015, Brain Research.
[35] Q. Niu,et al. The Relationship Between Cognitive Impairment and Global DNA Methylation Decrease Among Aluminum Potroom Workers , 2015, Journal of occupational and environmental medicine.
[36] S. Ferguson,et al. Glutamate receptors function as scaffolds for the regulation of β-amyloid and cellular prion protein signaling complexes , 2015, Molecular Brain.
[37] N. Demiryas,et al. Effects of curcumin and tannic acid on the aluminum- and lead-induced oxidative neurotoxicity and alterations in NMDA receptors , 2015, Toxicology mechanisms and methods.
[38] H. Lane,et al. NMDA neurotransmission dysfunction in mild cognitive impairment and Alzheimer's disease. , 2014, Current pharmaceutical design.
[39] Z. Fei,et al. Activation of mGluR5 Attenuates NMDA-Induced Neurotoxicity through Disruption of the NMDAR-PSD-95 Complex and Preservation of Mitochondrial Function in Differentiated PC12 Cells , 2014, International journal of molecular sciences.
[40] S. Gangemi,et al. Neurocognitive effects in welders exposed to aluminium , 2014, Toxicology and industrial health.
[41] Fei Wang,et al. Fluoride and Arsenic Exposure Impairs Learning and Memory and Decreases mGluR5 Expression in the Hippocampus and Cortex in Rats , 2014, PloS one.
[42] D. G. Clark,et al. Lexical factors and cerebral regions influencing verbal fluency performance in MCI , 2014, Neuropsychologia.
[43] S. Cuzzocrea,et al. Inflammation and Programmed Cell Death in Alzheimer’s Disease: Comparison of the Central Nervous System and Peripheral Blood , 2014, Molecular Neurobiology.
[44] R. Sprengel,et al. Immunosuppression by N-Methyl-d-Aspartate Receptor Antagonists Is Mediated through Inhibition of Kv1.3 and KCa3.1 Channels in T Cells , 2013, Molecular and Cellular Biology.
[45] K. Frick,et al. The Memory-Enhancing Effects of Hippocampal Estrogen Receptor Activation Involve Metabotropic Glutamate Receptor Signaling , 2013, The Journal of Neuroscience.
[46] Giuseppe Battaglia,et al. Metabotropic glutamate receptors in neurodegeneration/neuroprotection: Still a hot topic? , 2012, Neurochemistry International.
[47] R. Malenka,et al. NMDA receptor-dependent long-term potentiation and long-term depression (LTP/LTD). , 2012, Cold Spring Harbor perspectives in biology.
[48] H. Hampel,et al. Blood-Based Protein Biomarkers for Diagnosis and Classification of Neurodegenerative Diseases , 2011, Molecular Diagnosis & Therapy.
[49] Yih-Jing Lee,et al. Aluminum alters NMDA receptor 1A and 2A/B expression on neonatal hippocampal neurons in rats , 2011, Journal of Biomedical Science.
[50] L. Tomljenovic,et al. Aluminum and Alzheimer's disease: after a century of controversy, is there a plausible link? , 2011, Journal of Alzheimer's disease : JAD.
[51] Hyoung-Gon Lee,et al. Up-regulation of astrocyte metabotropic glutamate receptor 5 by amyloid-β peptide , 2009, Brain Research.
[52] D. Commenges,et al. Aluminum and silica in drinking water and the risk of Alzheimer's disease or cognitive decline: findings from 15-year follow-up of the PAQUID cohort. , 2008, American journal of epidemiology.
[53] Andrew W. Ellis,et al. The anatomical bases of semantic retrieval deficits in early Alzheimer's disease , 2008, Neuropsychologia.
[54] T. I. Solovyova,et al. The excitotoxic effect of NMDA on human lymphocyte immune function , 2007, Neurochemistry International.
[55] G. Lombardi,et al. Human T lymphocytes express N-methyl-D-aspartate receptors functionally active in controlling T cell activation. , 2005, Biochemical and biophysical research communications.
[56] D. Carpenter,et al. Rodent lymphocytes express functionally active glutamate receptors. , 2004, Biochemical and biophysical research communications.
[57] F. Ciruela,et al. Group I Metabotropic Glutamate Receptors Mediate a Dual Role of Glutamate in T Cell Activation* , 2004, Journal of Biological Chemistry.
[58] M. Bugiani,et al. Neurotoxic effects of aluminium among foundry workers and Alzheimer's disease. , 2002, Neurotoxicology.
[59] J. Roder,et al. Gene targeting reveals a role for the glutamate receptors mGluR5 and GluR2 in learning and memory , 2001, Physiology & Behavior.
[60] K. Shulman. Clock‐drawing: is it the ideal cognitive screening test? , 2000, International journal of geriatric psychiatry.