Palmitic Acid Modulates Microglial Cell Response to Metabolic Endotoxemia in an In Vitro Study
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M. Wawrzyńska | Beata Sobieszczańska | K. Środa-Pomianek | A. Teisseyre | Edyta Bożemska | Mateusz Chmielarz
[1] Jinti Lin,et al. Cyclooxygenase-2-Prostaglandin E2 pathway: A key player in tumor-associated immune cells , 2023, Frontiers in Oncology.
[2] Heping Zhou,et al. Meta-analysis of the effects of palmitic acid on microglia activation and neurodegeneration , 2022, NeuroImmune Pharmacology and Therapeutics.
[3] J. Zawilska,et al. Role of Chemokines in the Development and Progression of Alzheimer’s Disease , 2022, Journal of Molecular Neuroscience.
[4] A. Pinzón,et al. Fatty Acids: An Insight into the Pathogenesis of Neurodegenerative Diseases and Therapeutic Potential , 2022, International Journal of Molecular Sciences.
[5] H. Kuo,et al. Neuron–Microglia Contacts Govern the PGE2 Tolerance through TLR4-Mediated de Novo Protein Synthesis , 2022, Biomedicines.
[6] F. McGillicuddy,et al. Palmitic Acid and Oleic Acid Differently Modulate TLR2-Mediated Inflammatory Responses in Microglia and Macrophages , 2022, Molecular Neurobiology.
[7] D. Kell,et al. The Role of Lipopolysaccharide-Induced Cell Signalling in Chronic Inflammation , 2022, Chronic stress.
[8] Kiliaan,et al. Dietary lipids from body to brain. , 2021, Progress in lipid research.
[9] A. Niraula,et al. Prostaglandin PGE2 receptor EP4 regulates microglial phagocytosis and increases susceptibility to diet-induced obesity , 2021, bioRxiv.
[10] M. S. Hernandes,et al. Sepsis-Associated Encephalopathy and Blood-Brain Barrier Dysfunction , 2021, Inflammation.
[11] D. A. Harris,et al. A review on gut microbiota: a central factor in the pathophysiology of obesity , 2021, Lipids in Health and Disease.
[12] M. Kress,et al. Role of IL-6 in the regulation of neuronal development, survival and function. , 2021, Cytokine.
[13] V. Ravichandiran,et al. MCP-1: Function, regulation, and involvement in disease , 2021, International Immunopharmacology.
[14] F. Pifferi,et al. Lipid Transport and Metabolism at the Blood-Brain Interface: Implications in Health and Disease , 2021, Frontiers in Physiology.
[15] F. Bosco,et al. From Metabolic Syndrome to Neurological Diseases: Role of Autophagy , 2021, Frontiers in Cell and Developmental Biology.
[16] M. Lopes-Virella,et al. LPS and palmitic acid Co-upregulate microglia activation and neuroinflammatory response , 2021, Comprehensive psychoneuroendocrinology.
[17] L. Velloso,et al. Mechanisms Mediating the Actions of Fatty Acids in the Hypothalamus , 2020, Neuroscience.
[18] M. Lekander,et al. Sick for science: experimental endotoxemia as a translational tool to develop and test new therapies for inflammation-associated depression , 2020, Molecular Psychiatry.
[19] S. Chinnathambi,et al. Role of dietary fatty acids in microglial polarization in Alzheimer’s disease , 2020, Journal of Neuroinflammation.
[20] Y. Tachibana,et al. Dual microglia effects on blood brain barrier permeability induced by systemic inflammation , 2019, Nature Communications.
[21] H. Suganuma,et al. Regulation of Gut Microbiota and Metabolic Endotoxemia with Dietary Factors , 2019, Nutrients.
[22] Guy C. Brown. The endotoxin hypothesis of neurodegeneration , 2019, Journal of Neuroinflammation.
[23] T. Siepmann,et al. Dysbiosis of Gram-negative gut microbiota and the associated serum lipopolysaccharide exacerbates inflammation in type 2 diabetic patients with chronic kidney disease , 2019, Experimental and therapeutic medicine.
[24] F. Laugerette,et al. Metabolic Endotoxemia: A Potential Underlying Mechanism of the Relationship between Dietary Fat Intake and Risk for Cognitive Impairments in Humans? , 2019, Nutrients.
[25] Mi-Young Jeong,et al. High-fat diet causes psychiatric disorders in mice by increasing Proteobacteria population , 2019, Neuroscience Letters.
[26] S. Ferreira,et al. Diet-Derived Fatty Acids, Brain Inflammation, and Mental Health , 2019, Front. Neurosci..
[27] Junfei Jin,et al. Lipopolysaccharide and palmitic acid synergistically induced MCP-1 production via MAPK-meditated TLR4 signaling pathway in RAW264.7 cells , 2019, Lipids in Health and Disease.
[28] A. Walker,et al. Diet induced obesity is independent of metabolic endotoxemia and TLR4 signalling, but markedly increases hypothalamic expression of the acute phase protein, SerpinA3N , 2018, Scientific Reports.
[29] M. Velasquez. Altered Gut Microbiota: A Link Between Diet and the Metabolic Syndrome. , 2018, Metabolic syndrome and related disorders.
[30] O. Ghribi,et al. Palmitic Acid-Enriched Diet Increases α-Synuclein and Tyrosine Hydroxylase Expression Levels in the Mouse Brain , 2018, Front. Neurosci..
[31] L. Schlichter,et al. Microglia Responses to Pro-inflammatory Stimuli (LPS, IFNγ+TNFα) and Reprogramming by Resolving Cytokines (IL-4, IL-10) , 2018, Front. Cell. Neurosci..
[32] A. Yoshimura,et al. Negative Regulation of Cytokine Signaling in Immunity. , 2018, Cold Spring Harbor perspectives in biology.
[33] L. Ivashkiv. IFNγ: signalling, epigenetics and roles in immunity, metabolism, disease and cancer immunotherapy , 2018, Nature Reviews Immunology.
[34] R. Gonzales,et al. Palmitate induces glycosylation of cyclooxygenase-2 in primary human vascular smooth muscle cells. , 2018, American journal of physiology. Cell physiology.
[35] Wei‐Ju Lee,et al. Plasma MCP-1 and Cognitive Decline in Patients with Alzheimer’s Disease and Mild Cognitive Impairment: A Two-year Follow-up Study , 2018, Scientific Reports.
[36] K. Lingappan. NF-κB in Oxidative Stress. , 2017, Current opinion in toxicology.
[37] Benjamin I Brown. Nutritional Management of Metabolic Endotoxemia: A Clinical Review. , 2017, Alternative therapies in health and medicine.
[38] W. Banks,et al. Blood-Brain Barriers in Obesity , 2017, The AAPS Journal.
[39] R. Eckel,et al. Lipid Processing in the Brain: A Key Regulator of Systemic Metabolism , 2017, Front. Endocrinol..
[40] Abdullah Al Mamun,et al. Prospective Associations between Depression and Obesity for Adolescent Males and Females- A Systematic Review and Meta-Analysis of Longitudinal Studies , 2016, PloS one.
[41] N. Boutagy,et al. Metabolic endotoxemia with obesity: Is it real and is it relevant? , 2016, Biochimie.
[42] zhao yang,et al. Gene silencing of MCP-1 prevents microglial activation and inflammatory injury after intracerebral hemorrhage. , 2016, International immunopharmacology.
[43] Xiaolin Yu,et al. Dietary obesity reversibly induces synaptic stripping by microglia and impairs hippocampal plasticity , 2016, Brain, Behavior, and Immunity.
[44] D. Gruol,et al. IL-6 regulation of synaptic function in the CNS , 2015, Neuropharmacology.
[45] R. Sosa,et al. IFN-γ ameliorates autoimmune encephalomyelitis by limiting myelin lipid peroxidation , 2015, Proceedings of the National Academy of Sciences.
[46] Yanping Tan,et al. Anti-inflammatory mechanisms of IFN-γ studied in experimental autoimmune encephalomyelitis reveal neutrophils as a potential target in multiple sclerosis , 2015, Front. Neurosci..
[47] Denise C. Park,et al. Obesity and Aging: Consequences for Cognition, Brain Structure, and Brain Function , 2015, Psychosomatic medicine.
[48] Arthur W. Toga,et al. Blood-Brain Barrier Breakdown in the Aging Human Hippocampus , 2015, Neuron.
[49] M. Morris,et al. Dietary fat composition and dementia risk , 2014, Neurobiology of Aging.
[50] V. Perry,et al. Microglia and macrophages of the central nervous system: the contribution of microglia priming and systemic inflammation to chronic neurodegeneration , 2013, Seminars in Immunopathology.
[51] F. Kirchhoff,et al. Microglia: New Roles for the Synaptic Stripper , 2013, Neuron.
[52] A. Quintana,et al. Interleukin-6, a Major Cytokine in the Central Nervous System , 2012, International journal of biological sciences.
[53] T. Hartmann,et al. Trans fatty acids enhance amyloidogenic processing of the Alzheimer amyloid precursor protein (APP). , 2012, The Journal of nutritional biochemistry.
[54] P. Holt,et al. A high-fat diet is associated with endotoxemia that originates from the gut. , 2012, Gastroenterology.
[55] P. Iozzo,et al. Online Appendix – Supplemental Material , 2022 .
[56] Martin J Shipley,et al. Body mass index over the adult life course and cognition in late midlife: the Whitehall II Cohort Study. , 2009, The American journal of clinical nutrition.
[57] W. D. de Villiers,et al. Chylomicrons promote intestinal absorption of lipopolysaccharides Published, JLR Papers in Press, September 24, 2008. , 2009, Journal of Lipid Research.
[58] K. Blennow,et al. Mid‐life adiposity factors relate to blood–brain barrier integrity in late life , 2007, Journal of internal medicine.
[59] J. Ferrières,et al. Metabolic Endotoxemia Initiates Obesity and Insulin Resistance , 2007, Diabetes.
[60] S. Barger,et al. Glutamate release from activated microglia requires the oxidative burst and lipid peroxidation , 2007, Journal of neurochemistry.
[61] V. Kapur,et al. Transcriptional response of human microglial cells to interferon-γ , 2005, Genes and Immunity.
[62] G. Winocur,et al. Studies of the effects of high fat diets on cognitive function in a rat model , 2005, Neurobiology of Aging.
[63] M. Schwartz,et al. Protective autoimmunity: interferon‐γ enables microglia to remove glutamate without evoking inflammatory mediators , 2005, Journal of neurochemistry.
[64] A. Nicolini,et al. Prolonged exposure of microglia to lipopolysaccharide modifies the intracellular signaling pathways and selectively promotes prostaglandin E2 synthesis , 2003, Journal of neurochemistry.
[65] J. Raybon,et al. Neuroinflammatory Role of Prostaglandins during Experimental Meningitis: Evidence Suggestive of an in Vivo Relationship between Nitric Oxide and Prostaglandins , 2003, Journal of Pharmacology and Experimental Therapeutics.
[66] J. Gutteridge,et al. Lipid peroxidation and antioxidants as biomarkers of tissue damage. , 1995, Clinical chemistry.
[67] R. Stocker,et al. Antioxidant activities of some tryptophan metabolites: possible implication for inflammatory diseases. , 1990, Proceedings of the National Academy of Sciences of the United States of America.
[68] M. Calin,et al. Lipopolysaccharide-induced inflammation in monocytes/macrophages is blocked by liposomal delivery of Gi-protein inhibitor , 2017, International journal of nanomedicine.
[69] L. Hassing,et al. Obesity and cognitive aging. , 2013, Epidemiologic reviews.
[70] M. Laville,et al. Emulsified lipids increase endotoxemia: possible role in early postprandial low-grade inflammation. , 2011, The Journal of nutritional biochemistry.
[71] N. Kaplan. The deadly quartet. Upper-body obesity, glucose intolerance, hypertriglyceridemia, and hypertension. , 1989, Archives of internal medicine.