Metabolic Syndrome Exacerbates the Recognition Memory Impairment and Oxidative-Inflammatory Response in Rats with an Intrahippocampal Injection of Amyloid Beta 1–42
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J. Guevara | Alfonso Díaz | Berenice Venegas | C. Morán | S. Treviño | G. López-López | Guadalupe Muñoz-Arenas | Raúl Chávez | Claudia Escobedo | G. López‐López | Gustavo López‐López
[1] M. Rosales-Hernández,et al. Neuroprotective Effects of Apocynin and Galantamine During the Chronic Administration of Scopolamine in an Alzheimer’s Disease Model , 2019, Journal of Molecular Neuroscience.
[2] Qing Ye,et al. Inhibition of ferroptosis processes ameliorates cognitive impairment in kainic acid-induced temporal lobe epilepsy in rats. , 2019, American journal of translational research.
[3] A. Tumminia,et al. Type 2 Diabetes Mellitus and Alzheimer’s Disease: Role of Insulin Signalling and Therapeutic Implications , 2018, International journal of molecular sciences.
[4] T. Huisman,et al. The Role of Diffusion Tensor Imaging in Detecting Hippocampal Injury Following Neonatal Hypoxic‐Ischemic Encephalopathy , 2018, Journal of neuroimaging : official journal of the American Society of Neuroimaging.
[5] B. Espinosa,et al. Alzheimer's disease and metabolic syndrome: A link from oxidative stress and inflammation to neurodegeneration , 2017, Synapse.
[6] Hyeyoung Kim,et al. Inhibitory Effect of Lycopene on Amyloid-β-Induced Apoptosis in Neuronal Cells , 2017, Nutrients.
[7] T. Fang,et al. Renin inhibition improves metabolic syndrome, and reduces angiotensin II levels and oxidative stress in visceral fat tissues in fructose-fed rats , 2017, PloS one.
[8] J. Guevara,et al. Metabolic syndrome causes recognition impairments and reduced hippocampal neuronal plasticity in rats , 2017, Journal of Chemical Neuroanatomy.
[9] Somang Kang,et al. Metabolism-Centric Overview of the Pathogenesis of Alzheimer's Disease , 2017, Yonsei medical journal.
[10] M. Pallàs,et al. Long-term exposition to a high fat diet favors the appearance of β-amyloid depositions in the brain of C57BL/6J mice. A potential model of sporadic Alzheimer’s disease , 2017, Mechanisms of Ageing and Development.
[11] R. Enríquez,et al. Curcuma treatment prevents cognitive deficit and alteration of neuronal morphology in the limbic system of aging rats , 2017, Synapse.
[12] O. Schillaci,et al. Is cerebral glucose metabolism related to blood–brain barrier dysfunction and intrathecal IgG synthesis in Alzheimer disease? , 2016, Medicine.
[13] R. Cunha,et al. High sucrose consumption induces memory impairment in rats associated with electrophysiological modifications but not with metabolic changes in the hippocampus , 2016, Neuroscience.
[14] Juliet M. Taylor,et al. The contribution of neuroinflammation to amyloid toxicity in Alzheimer's disease , 2016, Journal of neurochemistry.
[15] A. Marino Gammazza,et al. Insulin Resistance as Common Molecular Denominator Linking Obesity to Alzheimer's Disease. , 2015, Current Alzheimer research.
[16] J. Guevara,et al. A high calorie diet causes memory loss, metabolic syndrome and oxidative stress into hippocampus and temporal cortex of rats , 2015, Synapse.
[17] D. Mott,et al. Hippocampal Insulin Resistance Impairs Spatial Learning and Synaptic Plasticity , 2015, Diabetes.
[18] M. Lourenco,et al. Brain metabolic stress and neuroinflammation at the basis of cognitive impairment in Alzheimer’s disease , 2015, Front. Aging Neurosci..
[19] A. A. Abdel Moneim,et al. Oxidant/Antioxidant Imbalance and the Risk of Alzheimer's Disease , 2015, Current Alzheimer Research.
[20] J. Argente,et al. Role of Non-Neuronal Cells in Body Weight and Appetite Control , 2015, Front. Endocrinol..
[21] A. Granholm,et al. Damaging effects of a high-fat diet to the brain and cognition: A review of proposed mechanisms , 2014, Nutritional neuroscience.
[22] A. McGill. Causes of metabolic syndrome and obesity-related co-morbidities Part 1: A composite unifying theory review of human-specific co-adaptations to brain energy consumption , 2014, Archives of Public Health.
[23] S. Allan,et al. High-fat diet-induced memory impairment in triple-transgenic Alzheimer's disease (3xTgAD) mice is independent of changes in amyloid and tau pathology , 2014, Neurobiology of Aging.
[24] E. Zenteno,et al. Aminoguanidine treatment ameliorates inflammatory responses and memory impairment induced by amyloid-beta 25–35 injection in rats , 2014, Neuropeptides.
[25] K. Carvajal,et al. Oxidative Stress and Metabolic Syndrome: Cause or Consequence of Alzheimer's Disease? , 2014, Oxidative medicine and cellular longevity.
[26] Suna Kang,et al. β-Amyloid-induced cognitive dysfunction impairs glucose homeostasis by increasing insulin resistance and decreasing β-cell mass in non-diabetic and diabetic rats. , 2013, Metabolism: clinical and experimental.
[27] T. Ikezu,et al. The Classification of Microglial Activation Phenotypes on Neurodegeneration and Regeneration in Alzheimer’s Disease Brain , 2012, Archivum Immunologiae et Therapiae Experimentalis.
[28] M. Antunes,et al. The novel object recognition memory: neurobiology, test procedure, and its modifications , 2011, Cognitive Processing.
[29] D. Inzitari,et al. Metabolic syndrome, mild cognitive impairment, and progression to dementia. The Italian Longitudinal Study on Aging , 2011, Neurobiology of Aging.
[30] M. Davies,et al. Vascular biology of metabolic syndrome. , 2011, Journal of vascular surgery.
[31] Gregory Kaltsas,et al. Metabolic syndrome: definitions and controversies , 2011, BMC medicine.
[32] George Perry,et al. Insulin-resistant brain state: The culprit in sporadic Alzheimer's disease? , 2011, Ageing Research Reviews.
[33] S. Minoshima,et al. Insulin resistance and Alzheimer-like reductions in regional cerebral glucose metabolism for cognitively normal adults with prediabetes or early type 2 diabetes. , 2011, Archives of neurology.
[34] Rosemary O’Connor,et al. Defects in IGF-1 receptor, insulin receptor and IRS-1/2 in Alzheimer's disease indicate possible resistance to IGF-1 and insulin signalling , 2010, Neurobiology of Aging.
[35] Bohan Wang,et al. Cellular hypoxia and adipose tissue dysfunction in obesity , 2009, Proceedings of the Nutrition Society.
[36] A. Lombardi,et al. From chronic overnutrition to insulin resistance: the role of fat-storing capacity and inflammation. , 2009, Nutrition, metabolism, and cardiovascular diseases : NMCD.
[37] K. Højlund,et al. Reduced plasma adiponectin concentrations may contribute to impaired insulin activation of glycogen synthase in skeletal muscle of patients with type 2 diabetes , 2006, Diabetologia.
[38] Bohan Wang,et al. Acute and prolonged effects of TNF-α on the expression and secretion of inflammation-related adipokines by human adipocytes differentiated in culture , 2006, Pflügers Archiv.
[39] M. Haan. Therapy Insight: type 2 diabetes mellitus and the risk of late-onset Alzheimer's disease , 2006, Nature Clinical Practice Neurology.
[40] M. Wendland,et al. Aminoguanidine inhibits caspase‐3 and calpain activation without affecting microglial activation following neonatal transient cerebral ischemia , 2006, Journal of neurochemistry.
[41] H. Yokoo,et al. New twist on neuronal insulin receptor signaling in health, disease, and therapeutics. , 2005, Journal of pharmacological sciences.
[42] Jens C. Brüning,et al. The role of insulin receptor signaling in the brain , 2005, Trends in Endocrinology & Metabolism.
[43] J. Pedraza-Chaverri,et al. Increased Formation of Reactive Oxygen Species, but No Changes in Glutathione Peroxidase Activity, in Striata of Mice Transgenic for the Huntington's Disease Mutation , 2004, Neurochemical Research.
[44] J. Wands,et al. Neuronal thread protein regulation and interaction with microtubule-associated proteins in SH-Sy5y neuronal cells , 2003, Cellular and Molecular Life Sciences CMLS.
[45] Christina A. Wilson,et al. GSK-3α regulates production of Alzheimer's disease amyloid-β peptides , 2003, Nature.
[46] C. Tsigos,et al. Circulating tumor necrosis factor alpha concentrations are higher in abdominal versus peripheral obesity. , 1999, Metabolism: clinical and experimental.
[47] B. Spiegelman,et al. Increased adipose tissue expression of tumor necrosis factor-alpha in human obesity and insulin resistance. , 1995, The Journal of clinical investigation.
[48] R. Purves. Bias and variance of extrapolated tails for area-under-the-curve (AUC) and area-under-the-moment-curve (AUMC) , 1992, Journal of Pharmacokinetics and Biopharmaceutics.
[49] G. P. Webb,et al. Estimation of body fat in normal and obese mice , 1980, British Journal of Nutrition.
[50] Shane P. Cass,et al. Alzheimer's Disease and Exercise: A Literature Review , 2017, Current sports medicine reports.
[51] E. Zenteno,et al. Aβ25-35 injection into the temporal cortex induces chronic inflammation that contributes to neurodegeneration and spatial memory impairment in rats. , 2012, Journal of Alzheimer's disease : JAD.
[52] D. Selkoe. Alzheimer's disease. , 2011, Cold Spring Harbor perspectives in biology.
[53] JA Potteiger,et al. A comparison of methods for analyzing glucose and insulin areas under the curve following nine months of exercise in overweight adults , 2002, International Journal of Obesity.
[54] S F Ali,et al. Age-related susceptibility to MPTP-induced neurotoxicity in mice. , 1993, Neurotoxicology.
[55] G. Paxinos,et al. The Rat Brain in Stereotaxic Coordinates , 1983 .