Hepatoprotective potential of Tamarindus indica following prenatal aluminum exposure in Wistar rat pups
暂无分享,去创建一个
S. Musa | A. Okesina | E. Eze | V. Archibong | H. Yusuf | Theophilus Pius | I. Usman | A. Agbon | Nicholas Kusiima | J. Ochieng | Bot Yakubu Sunday | I. Onanuga | M. E. Diaz
[1] A. Afodun,et al. Ethyl Acetate Fraction of Tamarindus indica Leaf Ameliorates Aluminium Chloride Induced Neural Damage in Neonatal Wistar Rats , 2023, Journal of Trace Elements and Minerals.
[2] S. Bungău,et al. Ameliorative Effect of Structurally Divergent Oleanane Triterpenoid, 3-Epifriedelinol from Ipomoea batatas against BPA-Induced Gonadotoxicity by Targeting PARP and NF-κB Signaling in Rats , 2022, Molecules.
[3] S. Musa,et al. Neurobehavioral and Immunohistochemical Studies of the Cerebral Cortex Following Treatment with Ethyl Acetate Leaf Fraction of Tamarindus indica During Prenatal Aluminum Chloride Exposure in Wistar Rats , 2022, Journal of experimental pharmacology.
[4] S. Musa,et al. Tamarindus indica ameliorates behavioral and cytoarchitectural changes in the cerebellar cortex following prenatal aluminum chloride exposure in Wistar rats , 2022, Anatomy & Cell Biology.
[5] Afaf Abdelkader,et al. The Combination of Tamarindus indica and Coenzyme Q10 can be a Potential Therapy Preference to Attenuate Cadmium-Induced Hepatorenal Injury , 2022, Frontiers in Pharmacology.
[6] Ali I. Al-Gareeb,et al. Combination of Panax ginseng C. A. Mey and Febuxostat Boasted Cardioprotective Effects Against Doxorubicin-Induced Acute Cardiotoxicity in Rats , 2022, Frontiers in Pharmacology.
[7] U. Schweiggert-Weisz,et al. Radical Scavenging Mechanisms of Phenolic Compounds: A Quantitative Structure-Property Relationship (QSPR) Study , 2022, Frontiers in Nutrition.
[8] G. Batiha,et al. Crinum jagus (J. Thomps. Dandy): Antioxidant and protective properties as a medicinal plant on toluene-induced oxidative stress damages in liver and kidney of rats , 2022, Toxicology reports.
[9] M. Ansari,et al. Dietary Polyphenols and Their Role in Oxidative Stress-Induced Human Diseases: Insights Into Protective Effects, Antioxidant Potentials and Mechanism(s) of Action , 2022, Frontiers in Pharmacology.
[10] S. Musa,et al. Glial fibrillary acid protein expression and behavioral changes in hippocampus following prenatal co-administration of ethyl acetate leaf fraction of Tamarindus Indica and aluminum chloride in wistar rats , 2022, Nigerian Journal of Experimental and Clinical Biosciences.
[11] A. Okesina,et al. Galinsoga parviflora restored associated motor coordination through increased linear distribution of Purkinje Cells in mercury chloride-induced toxicity of mice’s cerebellum , 2022 .
[12] Rima J. Isaifan,et al. Aluminum environmental pollution: the silent killer , 2021, Environmental Science and Pollution Research.
[13] A. Alexiou,et al. Annona muricata Linn and Khaya grandifoliola C.DC. Reduce Oxidative Stress In Vitro and Ameliorate Plasmodium berghei-Induced Parasitemia and Cytokines in BALB/c Mice , 2021, Journal of evidence-based integrative medicine.
[14] I. Turkan,et al. Flavonoid Naringenin Alleviates Short-Term Osmotic and Salinity Stresses Through Regulating Photosynthetic Machinery and Chloroplastic Antioxidant Metabolism in Phaseolus vulgaris , 2020, Frontiers in Plant Science.
[15] Memudu Adejoke Elizabeth,et al. Histomorphological evaluations on the frontal cortex extrapyramidal cell layer following administration of N-Acetyl cysteine in aluminum induced neurodegeneration rat model , 2020, Metabolic Brain Disease.
[16] Lixin Wei,et al. The concentration of tumor necrosis factor-α determines its protective or damaging effect on liver injury by regulating Yap activity , 2020, Cell Death & Disease.
[17] I. Igbokwe,et al. Aluminium toxicosis: a review of toxic actions and effects , 2019, Interdisciplinary toxicology.
[18] A. Ojewale,et al. Microanatomical and biochemical changes of the cerebellum following ethanol gavage in adult Wistar rats , 2019, Anatomy Journal of Africa.
[19] T. Vítěz,et al. Aluminum contamination of food during culinary preparation: Case study with aluminum foil and consumers’ preferences , 2019, Food science & nutrition.
[20] G. Engwa,et al. Mechanism and Health Effects of Heavy Metal Toxicity in Humans , 2019, Poisoning in the Modern World - New Tricks for an Old Dog?.
[21] J. Jakobsen,et al. Aluminium adjuvants used in vaccines , 2018, Cochrane Database of Systematic Reviews.
[22] I. Haq,et al. Quercus dilatata Lindl. ex Royle ameliorates BPA induced hepatotoxicity in Sprague Dawley rats. , 2018, Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie.
[23] Junying Yuan,et al. Roles of Caspases in Necrotic Cell Death , 2016, Cell.
[24] P. Louzada-Junior,et al. TNF-α induces vascular insulin resistance via positive modulation of PTEN and decreased Akt/eNOS/NO signaling in high fat diet-fed mice , 2016, Cardiovascular Diabetology.
[25] A. A. Buraimoh,et al. Histological and biochemical studies of Tamarindus indica pulp extract on the cerebral cortex in prenatal ethanol exposure in Wistar rats , 2016 .
[26] D. Palli,et al. Dietary and lifestyle determinants of malondialdehyde DNA adducts in a representative sample of the Florence City population. , 2016, Mutagenesis.
[27] Hady Keita,et al. Antioxidant and Hepatoprotective Activity of a New Tablets Formulation from Tamarindus indica L. , 2016, Evidence-based complementary and alternative medicine : eCAM.
[28] Aftab Ahmad,et al. Ameliorating effects of Tamarindus indica fruit extract on anti-tubercular drugs induced liver toxicity in rats , 2016, Natural product research.
[29] Lixin Wei,et al. The protective or damaging effect of Tumor necrosis factor-α in acute liver injury is concentration-dependent , 2016, Cell & Bioscience.
[30] Ning Wang,et al. The Role of Oxidative Stress and Antioxidants in Liver Diseases , 2015, International journal of molecular sciences.
[31] E. Seki,et al. TNFα in Liver Fibrosis , 2015, Current Pathobiology Reports.
[32] N. Zeghal,et al. Disruption of erythrocyte antioxidant defense system, hematological parameters, induction of pro-inflammatory cytokines and DNA damage in liver of co-exposed rats to aluminium and acrylamide. , 2015, Chemico-biological interactions.
[33] A. Almasan,et al. Caspase-3 activation is a critical determinant of genotoxic stress-induced apoptosis. , 2015, Methods in molecular biology.
[34] N. Fausto,et al. Mechanisms of Liver Injury , 2014 .
[35] Aileen I. Pogue,et al. The Mobilization of Aluminum into the Biosphere , 2014, Front. Neurol..
[36] H. Cichoż-Lach,et al. Oxidative stress as a crucial factor in liver diseases. , 2014, World journal of gastroenterology.
[37] A. Pandey,et al. Chemistry and Biological Activities of Flavonoids: An Overview , 2013, TheScientificWorldJournal.
[38] S. M. Miraglia,et al. The rat estrous cycle revisited: a quantitative and qualitative analysis , 2013 .
[39] H. N. Rasyid,et al. The efficacy of flavonoid antioxidant from chocolate: bean extract: prevention of myocyte damage caused by reperfusion injury in predominantly anaerobic sports. , 2012, Malaysian orthopaedic journal.
[40] O. Ighodaro,et al. Aluminium-induced liver and testicular damage: effects of Piliostigma thonningii methanolic leaf extract. , 2012, Nigerian Quarterly Journal of Hospital Medicine.
[41] V. Lobo,et al. Free radicals, antioxidants and functional foods: Impact on human health , 2010, Pharmacognosy reviews.
[42] A. Fischer,et al. Hematoxylin and eosin staining of tissue and cell sections. , 2008, CSH protocols.
[43] W. Cawthorn,et al. TNF‐α and adipocyte biology , 2008 .
[44] K. Usmanghani,et al. Chemical constituents of Tamarindus indica L. medicinal plant in Sindh , 2008 .
[45] D. Krewski,et al. Human Health Risk Assessment for Aluminium, Aluminium Oxide, and Aluminium Hydroxide , 2007, Journal of toxicology and environmental health. Part B, Critical reviews.
[46] H. Aytan,et al. Determination of Oestrous Cycle of the Rats by Direct Examination: How Reliable? , 2007, Anatomia, histologia, embryologia.
[47] David A. Brenner,et al. Mechanisms of Liver Injury. I. TNF-α-induced liver injury: role of IKK, JNK, and ROS pathways , 2006 .
[48] P. Taimen,et al. Caspase-3 is required in the apoptotic disintegration of the nuclear matrix. , 2005, Experimental cell research.
[49] Vincenzo Savarino,et al. Liver enzyme alteration: a guide for clinicians , 2005, Canadian Medical Association Journal.
[50] N. Chinoy,et al. FLUORIDE+ALUMINIUM INDUCED TOXICITY IN MICE TESTIS WITH GIANT CELLS AND ITS REVERSAL BY VITAMIN C , 2005 .
[51] F. K. Marcondes,et al. Determination of the estrous cycle phases of rats: some helpful considerations. , 2002, Brazilian journal of biology = Revista brasleira de biologia.
[52] O. Trubiani,et al. Involvement of Caspase-3 in the Cleavage of Terminal Transferase , 2002, International journal of immunopathology and pharmacology.
[53] E. Creppy,et al. Lipid peroxidation as pathway of aluminium cytotoxicity in human skin fibroblast cultures: Prevention by superoxide dismutase+catalase and vitamins E and C , 2001, Human & experimental toxicology.
[54] P. Hernández-Cruz,et al. Lectins in fruits having gastrointestinal activity: their participation in the hemagglutinating property of Escherichia coli O157:H7. , 2001, Archives of medical research.
[55] S. S.,et al. Free Radicals , 1933, Nature.
[56] W. Snodgrass. Physiology , 1897, Nature.