Therapeutic potential of stem cells and acitretin on inflammatory signaling pathway-associated genes regulated by miRNAs 146a and 155 in AD-like rats
暂无分享,去创建一个
[1] H. Atteia,et al. Anti-alzheimer's Disease Potential of Arabian Coffee Versus Date Palm Seed Extract in Male Rats , 2022, Current Developments in Nutrition.
[2] H. Atteia,et al. Anti-Alzheimer's disease potential of Arabian coffee versus Date palm seed extract in male rats. , 2021, Journal of food biochemistry.
[3] M. Hosney,et al. Adipose-Derived Mesenchymal Stem Cells Partially Compensating the Neurodegenerative Signs at The Behavioral, Physiological, and Molecular Levels in AD Rat Model , 2021, Egyptian Academic Journal of Biological Sciences, D. Histology Histochemistry.
[4] Zachary F. Gerring,et al. Integrative Network-Based Analysis Reveals Gene Networks and Novel Drug Repositioning Candidates for Alzheimer Disease , 2021, Neurology: Genetics.
[5] K. Adibkia,et al. Silver nanoparticles induce the cardiomyogenic differentiation of bone marrow derived mesenchymal stem cells via telomere length extension , 2021, Beilstein journal of nanotechnology.
[6] U. Boehm,et al. Shotgun lipidomics of liver and brain tissue of Alzheimer’s disease model mice treated with acitretin , 2021, Scientific Reports.
[7] A. Iraji,et al. The possible effect of microRNA-155 (miR-155) and BACE1 inhibitors in the memory of patients with down syndrome and Alzheimer's disease: Design, synthesis, virtual screening, molecular modeling and biological evaluations , 2021, Journal of biomolecular structure & dynamics.
[8] M. Benders,et al. Nasal administration of mesenchymal stem cells reverses chemotherapy-induced peripheral neuropathy in mice , 2020, Brain, Behavior, and Immunity.
[9] R. H. Khan,et al. Review on Alzheimer's disease: Inhibition of amyloid beta and tau tangle formation. , 2020, International journal of biological macromolecules.
[10] R. Karaman,et al. Comprehensive Review on Alzheimer’s Disease: Causes and Treatment , 2020, Molecules.
[11] S. Maier,et al. Alzheimer's Disease: Protective Effects of Mycobacterium vaccae, a Soil-Derived Mycobacterium with Anti-Inflammatory and Anti-Tubercular Properties, on the Proteomic Profiles of Plasma and Cerebrospinal Fluid in Rats. , 2020, Journal of Alzheimer's disease : JAD.
[12] S. Silvestre,et al. Alzheimer's disease: Recent treatment strategies. , 2020, European journal of pharmacology.
[13] A. Kretschmer,et al. Cell motility and migration as determinants of stem cell efficacy , 2020, EBioMedicine.
[14] W. Lukiw. microRNA-146a Signaling in Alzheimer's Disease (AD) and Prion Disease (PrD) , 2020, Frontiers in Neurology.
[15] G. Yen,et al. Camellia oil alleviates the progression of Alzheimer's disease in aluminum chloride-treated rats. , 2020, Free radical biology & medicine.
[16] 2020 Alzheimer's disease facts and figures , 2020, Alzheimer's & dementia : the journal of the Alzheimer's Association.
[17] M. Loza,et al. A Novel NMDA Receptor Antagonist Protects against Cognitive Decline Presented by Senescent Mice , 2020, Pharmaceutics.
[18] V. Vyas,et al. Neuroprotective Effects of Ethyl Pyruvate against Aluminum Chloride-Induced Alzheimer’s Disease in Rats via Inhibiting Toll-Like Receptor 4 , 2020, Journal of Molecular Neuroscience.
[19] S. Fahmy,et al. Sodium pentobarbital dosages for exsanguination affect biochemical, molecular and histological measurements in rats , 2020, Scientific Reports.
[20] Jin Yang,et al. Nootropic effect of neferine on aluminium chloride–induced Alzheimer's disease in experimental models , 2019, Journal of biochemical and molecular toxicology.
[21] R. Perneczky,et al. Differential expression of microRNAs in Alzheimer's disease brain, blood, and cerebrospinal fluid , 2019, Alzheimer's & Dementia.
[22] G. Frisoni,et al. miR-146a and miR-181a are involved in the progression of mild cognitive impairment to Alzheimer's disease , 2019, Neurobiology of Aging.
[23] S. Mohapatra,et al. Pioglitazone treatment prior to transplantation improves the efficacy of human mesenchymal stem cells after traumatic brain injury in rats , 2019, Scientific Reports.
[24] Placido Bramanti,et al. Role of miRNAs in Alzheimer’s Disease and Possible Fields of Application , 2019, International journal of molecular sciences.
[25] M. Ghasemi-Kasman,et al. Arbutin reduces cognitive deficit and oxidative stress in animal model of Alzheimer's disease , 2019, The International journal of neuroscience.
[26] K. Sharma. Cholinesterase inhibitors as Alzheimer's therapeutics , 2019, Molecular medicine reports.
[27] G. Blaise,et al. The role of acetylcholinesterase inhibitors such as neostigmine and rivastigmine on chronic pain and cognitive function in aging: A review of recent clinical applications , 2019, Alzheimer's & dementia.
[28] O. Riess,et al. Intranasal Administration of Mesenchymal Stem Cells Ameliorates the Abnormal Dopamine Transmission System and Inflammatory Reaction in the R6/2 Mouse Model of Huntington Disease , 2019, Cells.
[29] M. Álvarez-Dolado,et al. Human Mesenchymal Stem Cells Prevent Neurological Complications of Radiotherapy , 2019, Front. Cell. Neurosci..
[30] Y. Kulkarni,et al. Neuroprotective Effect of Cardamom Oil Against Aluminum Induced Neurotoxicity in Rats , 2019, Front. Neurol..
[31] V. Kordium,et al. Intravenously Injected Mesenchymal Stem Cells Penetrate the Brain and Treat Inflammation-Induced Brain Damage and Memory Impairment in Mice , 2019, Front. Pharmacol..
[32] Hui Li,et al. The Role of NMDA Receptors in Alzheimer’s Disease , 2019, Front. Neurosci..
[33] A. Kavelaars,et al. Mitochondrial transfer from mesenchymal stem cells to neural stem cells protects against the neurotoxic effects of cisplatin , 2018, Acta neuropathologica communications.
[34] K. Kang,et al. Stem cell-secreted 14,15- epoxyeicosatrienoic acid rescues cholesterol homeostasis and autophagic flux in Niemann–Pick-type C disease , 2018, Experimental & Molecular Medicine.
[35] K. Kang,et al. Stem cell-secreted 14,15- epoxyeicosatrienoic acid rescues cholesterol homeostasis and autophagic flux in Niemann–Pick-type C disease , 2018, Experimental & Molecular Medicine.
[36] Joon-Kee Yoon,et al. In vivo tracking of intravenously injected mesenchymal stem cells in an Alzheimer’s animal model , 2018, Cell transplantation.
[37] J. Hardy,et al. Alzheimer's disease , 2018, European journal of neurology.
[38] M. Bizzarri,et al. Alpha-Lipoic Acid Downregulates IL-1β and IL-6 by DNA Hypermethylation in SK-N-BE Neuroblastoma Cells , 2017, Antioxidants.
[39] I. Borai,et al. Therapeutic impact of grape leaves polyphenols on certain biochemical and neurological markers in AlCl3-induced Alzheimer's disease. , 2017, Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie.
[40] Jiewen Zhang,et al. miR-137 attenuates Aβ-induced neurotoxicity through inactivation of NF-κB pathway by targeting TNFAIP1 in Neuro2a cells. , 2017, Biochemical and biophysical research communications.
[41] Xiaodong Chen,et al. Mesenchymal stem cell-mediated immunomodulation in cell therapy of neurodegenerative diseases. , 2017, Cellular immunology.
[42] Yanfei Li,et al. Hypericum perforatum extract attenuates behavioral, biochemical, and neurochemical abnormalities in Aluminum chloride-induced Alzheimer's disease rats. , 2017, Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie.
[43] Ping Wang,et al. The protective effect of Epimedii Folium and Curculiginis Rhizoma on Alzheimer’s disease by the inhibitions of NF-κB/MAPK pathway and NLRP3 inflammasome , 2017, Oncotarget.
[44] Stefan J. Kempf,et al. Neurofibrillary tangles in Alzheimer's disease: elucidation of the molecular mechanism by immunohistochemistry and tau protein phospho-proteomics , 2016, Neural regeneration research.
[45] G. Halliday,et al. MicroRNA-146a suppresses ROCK1 allowing hyperphosphorylation of tau in Alzheimer’s disease , 2016, Scientific Reports.
[46] D. Yew,et al. Mutated tau, amyloid and neuroinflammation in Alzheimer disease-A brief review. , 2016, Progress in histochemistry and cytochemistry.
[47] T. Wisniewski,et al. Tau-Based Therapeutic Approaches for Alzheimer's Disease - A Mini-Review , 2014, Gerontology.
[48] T. Biedermann,et al. Intranasal Delivery of Bone Marrow-Derived Mesenchymal Stem Cells, Macrophages, and Microglia to the Brain in Mouse Models of Alzheimer's and Parkinson's Disease , 2014, Cell transplantation.
[49] A. Metin,et al. The effects of retinoids on secondary wound healing: Biometrical and histopathological study in rats , 2013, The Journal of dermatological treatment.
[50] M. Westphal,et al. Intranasal Delivery of Neural Stem/Progenitor Cells: A Noninvasive Passage to Target Intracerebral Glioma , 2012, Stem cells translational medicine.
[51] Lianfeng Zhang,et al. miR-106b aberrantly expressed in a double transgenic mouse model for Alzheimer's disease targets TGF-β type II receptor , 2010, Brain Research.
[52] T. Hirano,et al. Bisphenol A induces endoplasmic reticulum stress-associated apoptosis in mouse non-parenchymal hepatocytes. , 2010, Life sciences.
[53] D. Dhawan,et al. Potential of lithium to reduce aluminium-induced cytotoxic effects in rat brain , 2010, BioMetals.
[54] Vijay Kumar,et al. Aluminium neurotoxicity: neurobehavioural and oxidative aspects , 2009, Archives of Toxicology.
[55] Narendra Singh,et al. Effects of age on DNA double-strand breaks and apoptosis in human sperm. , 2003, Fertility and sterility.
[56] R. Veerhuis,et al. Neuroinflammation in Alzheimer's disease and prion disease , 2002, Glia.
[57] Thomas D. Schmittgen,et al. Analysis of relative gene expression data using real-time quantitative PCR and the 2(-Delta Delta C(T)) Method. , 2001, Methods.
[58] V. Baumans,et al. Blood sampling from the retro-orbital plexus, the saphenous vein and the tail vein in rats: comparative effects on selected behavioural and blood variables , 2001, Laboratory animals.
[59] M. Uysal,et al. The effect of chronic ethanol ingestion on hepatic lipid peroxide, glutathione, glutathione peroxidase and glutathione transferase in rats. , 1985, Toxicology.
[60] P N Viswanathan,et al. A modified spectrophotometric assay of superoxide dismutase. , 1984, Indian journal of biochemistry & biophysics.
[61] K. Yagi,et al. Assay for lipid peroxides in animal tissues by thiobarbituric acid reaction. , 1979, Analytical biochemistry.
[62] R. Baggott. DISEASE , 1947, Social Policy & Administration.
[63] W. Lukiw,et al. Lipopolysaccharide-stimulated, NF-kB-, miRNA-146a- and miRNA-155-mediated molecular-genetic communication between the human gastrointestinal tract microbiome and the brain. , 2019, Folia neuropathologica.
[64] G. A. Ganepola,et al. The Potential Role of Dysregulated miRNAs in Alzheimer's Disease Pathogenesis and Progression. , 2019, Journal of Alzheimer's disease : JAD.
[65] T. Manivasagam,et al. Neuroprotective role of Asiatic acid in aluminium chloride induced rat model of Alzheimer's disease. , 2018, Frontiers in bioscience.
[66] P. Reddy,et al. Role of Glutamate and NMDA Receptors in Alzheimer's Disease. , 2017, Journal of Alzheimer's disease : JAD.
[67] P. Olive,et al. The comet assay: a method to measure DNA damage in individual cells , 2006, Nature Protocols.
[68] Thomas D. Schmittgen,et al. Analysis of Relative Gene Expression Data Using Real-Time Quantitative PCR and the 2 2 DD C T Method , 2022 .