Exercise and Neuroinflammation in Health and Disease
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D. Seo | H. Kwak | Dae-Yun Seo | Jun-Won Heo | Jeong Rim Ko | Hyo-Bum Kwak | Jun-Won Heo | J. Ko
[1] R. Maccioni,et al. Neuroinflammation in the pathogenesis of Alzheimer’s disease. A rational framework for the search of novel therapeutic approaches , 2014, Front. Cell. Neurosci..
[2] V. Perry,et al. Interleukin-1β-Induced Changes in Blood–Brain Barrier Permeability, Apparent Diffusion Coefficient, and Cerebral Blood Volume in the Rat Brain: A Magnetic Resonance Study , 2000, The Journal of Neuroscience.
[3] Hyunsik Kang,et al. Exercise Attenuates High-Fat Diet–induced Disease Progression in 3xTg-AD Mice , 2017, Medicine and science in sports and exercise.
[4] S. Rivest,et al. An Essential Role of Interleukin-1β in Mediating NF-κB Activity and COX-2 Transcription in Cells of the Blood–Brain Barrier in Response to a Systemic and Localized Inflammation But Not During Endotoxemia , 1999, The Journal of Neuroscience.
[5] So Hun Kim,et al. Role of exercise in age-related sarcopenia , 2018, Journal of exercise rehabilitation.
[6] M. Mattson,et al. Annals of the New York Academy of Sciences Brain-derived Neurotrophic Factor as a Regulator of Systemic and Brain Energy Metabolism and Cardiovascular Health , 2022 .
[7] S. Cuzzocrea,et al. Neuroinflammation and neurohormesis in the pathogenesis of Alzheimer’s disease and Alzheimer-linked pathologies: modulation by nutritional mushrooms , 2018, Immunity & Ageing.
[8] J. Rhodes,et al. Wheel running attenuates microglia proliferation and increases expression of a proneurogenic phenotype in the hippocampus of aged mice , 2012, Brain, Behavior, and Immunity.
[9] Hyunsik Kang,et al. Protective effect of exercise training against the progression of Alzheimer’s disease in 3xTg-AD mice , 2019, Behavioural Brain Research.
[10] H. Ichinose,et al. Cytokines in Parkinson’s Disease , 2000 .
[11] N. Garcia,et al. Running and swimming prevent the deregulation of the BDNF/TrkB neurotrophic signalling at the neuromuscular junction in mice with amyotrophic lateral sclerosis , 2019, Cellular and Molecular Life Sciences.
[12] D. Brites,et al. Microglia centered pathogenesis in ALS: insights in cell interconnectivity , 2014, Front. Cell. Neurosci..
[13] K. Kim,et al. Treadmill Exercise Improves Motor Function by Suppressing Purkinje Cell Loss in Parkinson Disease Rats , 2018, International neurourology journal.
[14] D. Seo,et al. Effects of a single bout of exercise on mitochondria-mediated apoptotic signaling in rat cardiac and skeletal muscles , 2019, Journal of exercise rehabilitation.
[15] C. Ozkul,et al. Effect of combined exercise training on serum brain-derived neurotrophic factor, suppressors of cytokine signaling 1 and 3 in patients with multiple sclerosis , 2018, Journal of Neuroimmunology.
[16] K. Kim,et al. Treadmill Exercise Ameliorates Short-Term Memory Disturbance in Scopolamine-Induced Amnesia Rats , 2014, International neurourology journal.
[17] D. Price,et al. Histological Evidence of Protein Aggregation in Mutant SOD1 Transgenic Mice and in Amyotrophic Lateral Sclerosis Neural Tissues , 2001, Neurobiology of Disease.
[18] T. Gilmore. Introduction to NF-κB: players, pathways, perspectives , 2006, Oncogene.
[19] L. Britto,et al. Treadmill Exercise Prevents Increase of Neuroinflammation Markers Involved in the Dopaminergic Damage of the 6-OHDA Parkinson’s Disease Model , 2017, Journal of Molecular Neuroscience.
[20] J. Viña,et al. Moderate exercise is an antioxidant: upregulation of antioxidant genes by training. , 2008, Free radical biology & medicine.
[21] H. Praag,et al. Bridging animal and human models of exercise-induced brain plasticity , 2013, Trends in Cognitive Sciences.
[22] Gokula Mohan,et al. Neuroinflammation pathways: a general review , 2017, The International journal of neuroscience.
[23] H. Kwak,et al. Treadmill Exercise Ameliorates Chemotherapy-Induced Muscle Weakness and Central Fatigue by Enhancing Mitochondrial Function and Inhibiting Apoptosis , 2019, International neurourology journal.
[24] Darpan I. Patel,et al. Cytokine responses to acute and chronic exercise in multiple sclerosis. , 2008, Journal of applied physiology.
[25] C. Svarer,et al. Molecular imaging of neuroinflammation in patients after mild traumatic brain injury: a longitudinal 123I‐CLINDE single photon emission computed tomography study , 2019, European journal of neurology.
[26] T. Outeiro,et al. Alpha-synuclein: from secretion to dysfunction and death , 2012, Cell Death and Disease.
[27] Paul Edison,et al. Neuroinflammation in Alzheimer's disease: Current evidence and future directions , 2016, Alzheimer's & Dementia.
[28] J. Kuiper,et al. The influence of cytokines on the integrity of the blood-brain barrier in vitro , 1996, Journal of Neuroimmunology.
[29] H. Kim,et al. Kaempferol acts through mitogen‐activated protein kinases and protein kinase B/AKT to elicit protection in a model of neuroinflammation in BV2 microglial cells , 2011, British journal of pharmacology.
[30] L. Tang,et al. The effects of exercise interventions on Parkinson’s disease: A Bayesian network meta-analysis , 2019, Journal of Clinical Neuroscience.
[31] Y. Leem,et al. Exercise training acts as a therapeutic strategy for reduction of the pathogenic phenotypes for Alzheimer's disease in an NSE/APPsw-transgenic model. , 2008, International journal of molecular medicine.
[32] V. Perry,et al. Systemic inflammation induces axon injury during brain inflammation , 2011, Annals of neurology.
[33] M. de Carvalho,et al. The Role of Moderate Aerobic Exercise as Determined by Cardiopulmonary Exercise Testing in ALS , 2018, Neurology research international.
[34] A. Verkhratsky,et al. Microglial response to Alzheimer’s disease is differentially modulated by voluntary wheel running and enriched environments , 2013, Brain Structure and Function.
[35] G. Ortiz,et al. Role of the blood-brain barrier in multiple sclerosis. , 2014, Archives of medical research.
[36] C. Herron,et al. A role for inflammatory mediators in the IL-18 mediated attenuation of LTP in the rat dentate gyrus , 2007, Neuropharmacology.
[37] L. White,et al. Cytokine responses to resistance training in people with multiple sclerosis , 2006, Journal of sports sciences.
[38] J. Fagius,et al. The T‐cell pool is anergized in patients with multiple sclerosis in remission , 2009, Immunology.
[39] A. Basu,et al. HSP60 plays a regulatory role in IL-1β-induced microglial inflammation via TLR4-p38 MAPK axis , 2016, Journal of Neuroinflammation.
[40] M. Tansey,et al. Neuroinflammatory mechanisms in Parkinson's disease: Potential environmental triggers, pathways, and targets for early therapeutic intervention , 2007, Experimental Neurology.
[41] M. Lynch,et al. Interleukin-1 beta (IL-1 beta) and tumour necrosis factor (TNF) inhibit long-term potentiation in the rat dentate gyrus in vitro. , 1996, Neuroscience letters.
[42] W. Lukiw,et al. Biological basis for amyloidogenesis in Alzheimer’S disease , 2017, Biochemistry (Moscow).
[43] Stuart Lisle,et al. Amyotrophic Lateral Sclerosis: the Role of Exercise , 2015, Current sports medicine reports.
[44] J. Das Sarma. Microglia-mediated neuroinflammation is an amplifier of virus-induced neuropathology , 2014, Journal of neurovirology.
[45] Mal-Soon Shin,et al. Impact of Several Types of Stresses on Short-term Memory and Apoptosis in the Hippocampus of Rats , 2013, International neurourology journal.
[46] W. Dauer,et al. Parkinson's Disease Mechanisms and Models , 2003, Neuron.
[47] Michael T. Heneka,et al. Innate immune activation in neurodegenerative disease , 2014, Nature Reviews Immunology.
[48] S. Maier,et al. Little Exercise, Big Effects: Reversing Aging and Infection-Induced Memory Deficits, and Underlying Processes , 2011, The Journal of Neuroscience.
[49] E. Alnemri,et al. AIM2 activates the inflammasome and cell death in response to cytoplasmic DNA , 2009, Nature.
[50] I. Bechmann,et al. Human brain-cell death induced by tumour-necrosis-factor-related apoptosis-inducing ligand (TRAIL) , 2000, The Lancet.
[51] Mohammed Akbar,et al. Mitochondrial dysfunction and cell death in neurodegenerative diseases through nitroxidative stress , 2016, Brain Research.
[52] F. LaFerla,et al. Lipopolysaccharide-Induced Inflammation Exacerbates Tau Pathology by a Cyclin-Dependent Kinase 5-Mediated Pathway in a Transgenic Model of Alzheimer's Disease , 2005, The Journal of Neuroscience.
[53] J. Antosiewicz,et al. Swim Training Modulates Mouse Skeletal Muscle Energy Metabolism and Ameliorates Reduction in Grip Strength in a Mouse Model of Amyotrophic Lateral Sclerosis , 2019, International journal of molecular sciences.
[54] H. Gendelman. Neural immunity: Friend or foe? , 2002, Journal of NeuroVirology.
[55] Na Zhao,et al. Treadmill Exercise Decreases Aβ Deposition and Counteracts Cognitive Decline in APP/PS1 Mice, Possibly via Hippocampal Microglia Modifications , 2019, Front. Aging Neurosci..
[56] M. LeDoux,et al. Effect of resistance training on blood oxidative stress in Parkinson disease. , 2008, Medicine and science in sports and exercise.
[57] W. Poewe,et al. Is there a need to redefine Parkinson’s disease? , 2013, Journal of Neural Transmission.
[58] K. Schroder,et al. Inflammasome inhibition prevents α-synuclein pathology and dopaminergic neurodegeneration in mice , 2018, Science Translational Medicine.
[59] B. Pakkenberg,et al. Misfolded SOD1 inclusions in patients with mutations in C9orf72 and other ALS/FTD-associated genes , 2019, Journal of Neurology, Neurosurgery, and Psychiatry.
[60] S. Daniel,et al. Glial pathology but absence of apoptotic nigral neurons in long‐standing Parkinson's disease , 1998, Movement disorders : official journal of the Movement Disorder Society.
[61] D. Ditor,et al. The effects of acute aerobic exercise on mood and inflammation in individuals with multiple sclerosis and incomplete spinal cord injury. , 2019, NeuroRehabilitation.
[62] G. Kreutzberg,et al. Microglia: Intrinsic immuneffector cell of the brain , 1995, Brain Research Reviews.
[63] M. Vizcaychipi,et al. Neuroinflammation: The role and consequences , 2014, Neuroscience Research.
[64] Carl W. Cotman,et al. Exercise builds brain health: key roles of growth factor cascades and inflammation , 2007, Trends in Neurosciences.
[65] Fred H. Gage,et al. Mechanisms Underlying Inflammation in Neurodegeneration , 2010, Cell.
[66] L. Galluzzi,et al. Mitochondria: master regulators of danger signalling , 2012, Nature Reviews Molecular Cell Biology.
[67] Roberto Maestri,et al. Intensive Rehabilitation Treatment in Early Parkinson’s Disease , 2015, Neurorehabilitation and neural repair.
[68] Jonathan Kipnis,et al. Interactions of innate and adaptive immunity in brain development and function , 2015, Brain Research.
[69] D. Crawford,et al. Degraded mitochondrial DNA is a newly identified subtype of the damage associated molecular pattern (DAMP) family and possible trigger of neurodegeneration. , 2012, Journal of Alzheimer's disease : JAD.
[70] H. Gendelman,et al. Nitrated alpha‐synuclein‐activated microglial profiling for Parkinson’s disease , 2008, Journal of neurochemistry.
[71] L. Ji,et al. Exercise-Induced Neuroprotection of Hippocampus in APP/PS1 Transgenic Mice via Upregulation of Mitochondrial 8-Oxoguanine DNA Glycosylase , 2014, Oxidative medicine and cellular longevity.
[72] C. Coronel,et al. Respiratory training improved ventilatory function and respiratory muscle strength in patients with multiple sclerosis and lateral amyotrophic sclerosis: systematic review and meta-analysis. , 2016, Physiotherapy.
[73] Belinda Wilson,et al. Aggregated α‐synuclein activates microglia: a process leading to disease progression in Parkinson's disease , 2005, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[74] Berislav V. Zlokovic,et al. Blood–brain barrier breakdown in Alzheimer disease and other neurodegenerative disorders , 2018, Nature Reviews Neurology.
[75] P. Sanberg,et al. Blood-CNS Barrier Impairment in ALS patients versus an animal model , 2014, Front. Cell. Neurosci..
[76] P. Carvey,et al. Blood–Brain Barrier Pathology in Alzheimer's and Parkinson's Disease: Implications for Drug Therapy , 2007, Cell transplantation.
[77] D. Arnold,et al. B-cell depletion with rituximab in relapsing-remitting multiple sclerosis. , 2008, The New England journal of medicine.
[78] J. Zoladz,et al. Moderate-intensity interval training increases serum brain-derived neurotrophic factor level and decreases inflammation in Parkinson's disease patients. , 2014, Journal of physiology and pharmacology : an official journal of the Polish Physiological Society.
[79] J. J. O'Connor,et al. Interleukin-1β (IL-1β) and tumour necrosis factor (TNF) inhibit long-term potentiation in the rat dentate gyrus in vitro , 1996, Neuroscience Letters.
[80] N. Inestrosa,et al. Voluntary Running Attenuates Memory Loss, Decreases Neuropathological Changes and Induces Neurogenesis in a Mouse Model of Alzheimer's Disease , 2016, Brain pathology.
[81] Jung-Hoon Koo,et al. Treadmill exercise produces neuroprotective effects in a murine model of Parkinson’s disease by regulating the TLR2/MyD88/NF-κB signaling pathway , 2017, Neuroscience.
[82] T. Olsson,et al. High-intensity resistance training in multiple sclerosis — An exploratory study of effects on immune markers in blood and cerebrospinal fluid, and on mood, fatigue, health-related quality of life, muscle strength, walking and cognition , 2016, Journal of the Neurological Sciences.
[83] J. Antosiewicz,et al. Swim Training Modulates Skeletal Muscle Energy Metabolism, Oxidative Stress, and Mitochondrial Cholesterol Content in Amyotrophic Lateral Sclerosis Mice , 2018, Oxidative Medicine and Cellular Longevity.
[84] N. Rothwell,et al. Inflammation in central nervous system injury. , 2003, Philosophical transactions of the Royal Society of London. Series B, Biological sciences.
[85] A. Kraft,et al. Microglia in the developing brain: a potential target with lifetime effects. , 2012, Neurotoxicology.
[86] Ricardo Aurino Pinho,et al. Physical training exerts neuroprotective effects in the regulation of neurochemical factors in an animal model of Parkinson’s disease , 2012, Neuroscience.
[87] K. Erickson,et al. Exercise Is Medicine, for the Body and the Brain Editorial , 2022 .
[88] M. Bentivoglio,et al. Effect of physical exercise and anabolic steroid treatment on spinal motoneurons and surrounding glia of wild-type and ALS mice , 2017, Brain Research.
[89] R. Camicioli,et al. Parkinson Disease: The Relationship Between Non-motor Symptoms and Motor Phenotype , 2015, Canadian Journal of Neurological Sciences / Journal Canadien des Sciences Neurologiques.
[90] Ying-Jan Wang,et al. Arsenic modulates heme oxygenase-1, interleukin-6, and vascular endothelial growth factor expression in endothelial cells: roles of ROS, NF-κB, and MAPK pathways , 2012, Archives of Toxicology.
[91] Houeto Jean-Luc. [Parkinson's disease]. , 2022, La Revue du praticien.
[92] J. Kim,et al. Insulin resistance impairs nigrostriatal dopamine function , 2011, Experimental Neurology.
[93] Jia Newcombe,et al. Interleukin-17 production in central nervous system-infiltrating T cells and glial cells is associated with active disease in multiple sclerosis. , 2008, The American journal of pathology.
[94] Y. Kuo,et al. Physical Exercise Inhibits Inflammation and Microglial Activation , 2019, Cells.
[95] William Charles Kreisl,et al. Neuroinflammation in Neurodegenerative Disorders—a Review , 2017, Current Neurology and Neuroscience Reports.
[96] D. Seo,et al. Effects of Acute Exercise on Mitochondrial Function, Dynamics, and Mitophagy in Rat Cardiac and Skeletal Muscles , 2019, International neurourology journal.
[97] J. Das Sarma. Microglia-mediated neuroinflammation is an amplifier of virus-induced neuropathology , 2013, Journal of NeuroVirology.
[98] Sung-Chun Tang,et al. Toll-like receptors in neurodegeneration , 2009, Brain Research Reviews.
[99] B. McGuinness,et al. Inflammation and Anti-Inflammatory Strategies for Alzheimer’s Disease – A Mini-Review , 2009, Gerontology.
[100] M. Carson,et al. The cellular response in neuroinflammation: The role of leukocytes, microglia and astrocytes in neuronal death and survival , 2006, Clinical Neuroscience Research.
[101] F. Meissner,et al. Mutant superoxide dismutase 1-induced IL-1β accelerates ALS pathogenesis , 2010, Proceedings of the National Academy of Sciences.
[102] Bart Post,et al. Effectiveness of home-based and remotely supervised aerobic exercise in Parkinson's disease: a double-blind, randomised controlled trial , 2019, The Lancet Neurology.