Functional imaging and neurochemistry identify in vivo neuroprotection mechanisms counteracting excitotoxicity and neurovascular changes in the hippocampus and visual cortex of obese and type 2 diabetic animal models
暂无分享,去创建一个
B. Manadas | J. Castelhano | P. Matafome | J. Sereno | João Martins | Tamaeh Monteiro-Alfredo | Beatriz Caramelo | Miguel Castelo‐Branco | José Sereno
[1] M. Castelo‐Branco,et al. Cerebellar morphometric and spectroscopic biomarkers for Machado-Joseph Disease , 2022, Acta Neuropathologica Communications.
[2] K. Nordengen,et al. N-Acetyl-Aspartyl-Glutamate in Brain Health and Disease , 2022, International journal of molecular sciences.
[3] Z. Zuo,et al. Aberrant Functional Connectivity of the Posterior Cingulate Cortex in Type 2 Diabetes Without Cognitive Impairment and Microvascular Complications , 2021, Frontiers in Endocrinology.
[4] W. Qin,et al. Neurovascular coupling alterations in type 2 diabetes: a 5-year longitudinal MRI study , 2021, BMJ Open Diabetes Research & Care.
[5] Otília C. d'Almeida,et al. The neurometabolic profiles of GABA and Glutamate as revealed by proton magnetic resonance spectroscopy in type 1 and type 2 diabetes , 2020, PloS one.
[6] E. Salińska,et al. N-Acetylaspartylglutamate (NAAG) Pretreatment Reduces Hypoxic-Ischemic Brain Damage and Oxidative Stress in Neonatal Rats , 2020, Antioxidants.
[7] Xiaofang Liu,et al. Taurine inhibits neuron apoptosis in hippocampus of diabetic rats and high glucose exposed HT-22 cells via the NGF-Akt/Bad pathway , 2019, Amino Acids.
[8] M. Morrone,et al. Altered Visual Plasticity in Morbidly Obese Subjects , 2019, iScience.
[9] M. Monda,et al. High-Fat Diet Induces Neuroinflammation and Mitochondrial Impairment in Mice Cerebral Cortex and Synaptic Fraction , 2019, Front. Cell. Neurosci..
[10] Muhammad G. Saleh,et al. An evaluation of the reproducibility of 1H-MRS GABA and GSH levels acquired in healthy volunteers with J-difference editing sequences at varying echo times. , 2019, Magnetic resonance imaging.
[11] Yu-jie Dai,et al. Neurovascular decoupling in type 2 diabetes mellitus without mild cognitive impairment: Potential biomarker for early cognitive impairment , 2019, NeuroImage.
[12] Li-Li Tu,et al. Upregulation of GABA receptor promotes long-term potentiation and depotentiation in the hippocampal CA1 region of mice with type 2 diabetes mellitus , 2019, Experimental and therapeutic medicine.
[13] Sofie Tapper. Neurotransmitter Imaging of the Human Brain : Detecting γ-Aminobutyric Acid (GABA) Using Magnetic Resonance Spectroscopy , 2019, Linköping University Medical Dissertations.
[14] Li Pan,et al. Multi-vendor standardized sequence for edited magnetic resonance spectroscopy , 2019, NeuroImage.
[15] L. Buck,et al. Taurine activates glycine and GABAA receptor currents in anoxia-tolerant painted turtle pyramidal neurons , 2018, Journal of Experimental Biology.
[16] M. Ahmadlou,et al. Functional modulation of primary visual cortex by the superior colliculus in the mouse , 2018, Nature Communications.
[17] M. Maciejczyk,et al. Redox Balance, Antioxidant Defense, and Oxidative Damage in the Hypothalamus and Cerebral Cortex of Rats with High Fat Diet-Induced Insulin Resistance , 2018, Oxidative medicine and cellular longevity.
[18] E. Salińska,et al. The activation of group II metabotropic glutamate receptors protects neonatal rat brains from oxidative stress injury after hypoxia-ischemia , 2018, PloS one.
[19] R. Edden,et al. Glutamate quantification by PRESS or MEGA-PRESS: Validation, repeatability, and concordance. , 2018, Magnetic resonance imaging.
[20] A. Ghasemi,et al. A practical guide for induction of type-2 diabetes in rat: Incorporating a high-fat diet and streptozotocin. , 2017, Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie.
[21] W. Weihofen,et al. A NMDA-receptor calcium influx assay sensitive to stimulation by glutamate and glycine/D-serine , 2017, Scientific Reports.
[22] Fabio S. Ferreira,et al. Early visual cortical structural changes in diabetic patients without diabetic retinopathy , 2017, Graefe's Archive for Clinical and Experimental Ophthalmology.
[23] A. Hammad,et al. Gamma Amino Butyric Acid Attenuates Brain Oxidative Damage Associated with Insulin Alteration in Streptozotocin-Treated Rats , 2017, Indian Journal of Clinical Biochemistry.
[24] M. Castelo‐Branco,et al. Diabetic brain or retina? Visual psychophysical performance in diabetic patients in relation to GABA levels in occipital cortex , 2017, Metabolic Brain Disease.
[25] W. Brooks,et al. A high fat diet alters metabolic and bioenergetic function in the brain: A magnetic resonance spectroscopy study , 2016, Neurochemistry International.
[26] Michael Schär,et al. HERMES: Hadamard encoding and reconstruction of MEGA‐edited spectroscopy , 2016, Magnetic resonance in medicine.
[27] J. Neale,et al. Glutamate carboxypeptidase II gene knockout attenuates oxidative stress and cortical apoptosis after traumatic brain injury , 2016, BMC Neuroscience.
[28] J. Ramírez-Emiliano,et al. A high-fat diet decreases GABA concentration in the frontal cortex and hippocampus of rats , 2016, Biological Research.
[29] K. Mikoshiba,et al. Bidirectional Control of Synaptic GABAAR Clustering by Glutamate and Calcium , 2015, Cell reports.
[30] M. Castelo‐Branco,et al. Early Disrupted Neurovascular Coupling and Changed Event Level Hemodynamic Response Function in Type 2 Diabetes: An fMRI Study , 2015, Journal of cerebral blood flow and metabolism : official journal of the International Society of Cerebral Blood Flow and Metabolism.
[31] D. Butterfield,et al. Elevated risk of type 2 diabetes for development of Alzheimer disease: a key role for oxidative stress in brain. , 2014, Biochimica et biophysica acta.
[32] D. Sosnowska,et al. Obesity in aging exacerbates blood brain barrier disruption, neuroinflammation and oxidative stress in the mouse hippocampus: effects on expression of genes involved in beta‐amyloid generation and Alzheimer’s disease (665.1) , 2014, The journals of gerontology. Series A, Biological sciences and medical sciences.
[33] Luciana Nascimento,et al. Fluoxetine treatment of rat neonates significantly reduces oxidative stress in the hippocampus and in behavioral indicators of anxiety later in postnatal life. , 2014, Canadian journal of physiology and pharmacology.
[34] Kristina L. McFadden,et al. Differences in the neuronal response to food in obesity-resistant as compared to obesity-prone individuals , 2013, Physiology & Behavior.
[35] E. Nakashima,et al. Does cerebral small vessel disease predict future decline of cognitive function in elderly people with type 2 diabetes? , 2011, Diabetes research and clinical practice.
[36] D. Attwell,et al. The physiology of developmental changes in BOLD functional imaging signals , 2011, Developmental Cognitive Neuroscience.
[37] J. Russell,et al. Metabotropic glutamate receptor 3 protects neurons from glucose‐induced oxidative injury by increasing intracellular glutathione concentration , 2007, Journal of neurochemistry.
[38] C. Oliveira,et al. Insulin affects synaptosomal GABA and glutamate transport under oxidative stress conditions , 2003, Brain Research.
[39] J. Olson,et al. Calcium/calmodulin-modulated chloride and taurine conductances in cultured rat astrocytes , 2002, Brain Research.
[40] J. Baynes,et al. Effect of advanced glycation end products on oxidative stress in endothelial cells in culture: a warning on the use of cells studied in serum-free media , 2001, Diabetologia.
[41] F. Nicoletti,et al. Neuroprotection by Glial Metabotropic Glutamate Receptors Is Mediated by Transforming Growth Factor-β , 1998, The Journal of Neuroscience.
[42] D. Mumford,et al. The role of the primary visual cortex in higher level vision , 1998, Vision Research.
[43] S. Bondy,et al. The relationship between excitotoxicity and oxidative stress in the central nervous system. , 1993, Free radical biology & medicine.
[44] S. Moncada,et al. Superoxide anion is involved in the breakdown of endothelium-derived vascular relaxing factor , 1986, Nature.
[45] L. Brain. The Nervous System , 1963, Nature.
[46] S. Roysommuti,et al. The Effects of Taurine Exposure on the Brain and Neurological Disorders , 2015 .
[47] Charles Watson,et al. The Mouse Nervous System. , 2012 .