Research Article
BibTex RIS Cite

NIGELLA SATIVA PROTECTS AGAINST FORMALDEHYDE-INDUCED NEUROTOXICITY IN THE RAT FRONTAL CORTEX

Year 2015, Volume: 9 Issue: 3, 117 - 127, 01.02.2016

Abstract

Objectives: Nigella sativa (NS) is well known for its strong antioxidant properties. The aim of this study was to investigate the potential protective effect of NS, as a potent antioxidant and free radical scavenger, on the rat frontal cortex following formaldehyde (FA)-induced neuronal injury and oxidative stress.
Methods: Forty albino rats were divided into four groups (n=10, each): control group received 1 ml distilled water, NS treated group crushed seeds of NS at a single daily dose of 180 mg/kg/bw orally for two weeks, FA-treated group 10 mg/kg/bw FA i.p. daily for two weeks, and FA and NS treated group received 10 mg/kg/bw FA i.p. followed by a single dose of NS (180 mg/kg/bw) orally for 2 weeks. The animals then were sacrificed and the frontal lobes were excised. Frontal cortex was stained with hematoxylen-eosin and caspase-3 immunohistochemistry to identify cell morphology and apoptosis. Lipid peroxide,
nitric oxide, superoxide dismutase and glutathione levels were measured.
Results: Histological examination revealed severe neurodegenerative changes in frontal cortex neurons in the FA-treated group as observed with hematoxylen-eosin and caspase-3 immunohistochemistry. However, these changes were partly prevented in the FA and NS-treated group. Apoptotic cell index in the frontal cortex decreased significantly in FA and NS treated rats compared
to FA-treated rats. In the FA-treated group, lipid peroxide levels increased, while nitric oxide and glutathione levels decreased significantly compared with controls. In the FA + NS treated group, nitric oxide, glutathione and superoxide dismutase levels increased and lipid peroxide level decreased significantly when compared with the FA-treated group.
Conclusion: NS administration protects frontal cortex neurons against oxidative damage induced by FA.

References

  • Cheng G, Shi Y, Sturla SJ, Jalas JR, McIntee EJ, Villalta PW,
  • Wang M, Hecht SS. Reactions of formaldehyde plus acetaldehyde
  • with deoxyguanosine and DNA: formation of cyclic deoxyguanosine
  • adducts and formaldehyde cross-links. Chem Res Toxicol
  • ;16:145–52.
  • Metz B, Kersten GF, Hoogerhout P, Brugghe HF, Timmermans
  • HA, de Jong A, Meiring H, ten Hove J, Hennink WE, Crommelin
  • DJ, Jiskoot W. Identification of formaldehyde-induced modifications
  • in proteins: reactions with model peptides. J Biol Chem
  • ;279:6235–43.
  • Chohen BL, Pangnillo MK, Musikant BL, Deutsch AS.
  • Formaldehyde evaluation from endoplasmic materials. Oral
  • Health 1998; 88:37–9.
  • Sarnak MJ, Long J, King AJ. Intravascular formaldehyde instillation
  • and renal complication. Clin Nephrol 1999;51:122–5.
  • Conaway CC, Whysner J, Verna LK, Williams GM. Formaldehyde
  • mechanistic data and risk assessement: endogenous protection from
  • DNA adduct formation. Pharmacol Ther 1996;71:29–55.
  • Trezl L, Hullan L, Szavas T, Csiba A, Szende B. Determination of
  • endogenous formaldehyde in plants (fruits) bound to L-arginine and
  • its relation to the folate cycle, photosynthesis and apoptosis. Acta
  • Biol Hung 1998;49:253–63.
  • Feron, VJ, Till HP, de Vrijer F, Woutersen RA, Cassee FR, van
  • Bladeren PJ. Aldehyde: occurrence, carcinogenic potential, mechanism
  • of action and risk assessment. Mutal Res 1991;259:363–85.
  • Simith AE. Formaldehyde. Occup Med 1992;42:83–8.
  • Ozen OA, Songur A, Sarsilmaz M, Yaman M, Kus I. Zinc, copper
  • and iron concentrations in cerebral cortex of male rats exposed to
  • formaldehyde inhalation. J Trace Elem Med Biol 2003;17:207–9.
  • Songur A, Akpolat N, Kus I, Ozen OA, Zararsiz I, Sarsilmaz M.
  • The effects of the inhaled formaldehyde during the early postnatal
  • period in the hippocampus of rats: a morphological and immunohistochemical
  • study. Neurosci Res Commun 2003;33:168–78.
  • Trezl L, Tyihak E, Lotlikar PD. Non-enzymatic protein methylation
  • and its biological significance in protein methylation. In: Paik
  • WK, Kim S, editors. Protein methylation. Boca Raton (FL): CRC
  • Press; 1990.
  • Solomons K and Cochrane JW. Formaldehyde toxicity. Part II.
  • Review of acute and chronic effects on health. S Afr Med J 1984;
  • :103–6.
  • Kilburn KH. Neurobehavioural impairment and seizures from
  • formaldehyde. Arch Environ Health 1994;49:37–44.
  • Sorg BA, Hochstatter T. Behavioral sensitization after repeated
  • formaldehyde exposure in rats. Toxicol Ind Health 1999;15:346–55.
  • Pitten FA, Kramer A, Herrmann K, Bremer J, Koch S.
  • Formaldehyde neurotoxicity in animal experiments. Pathol Res
  • Pract 2000;196:193–8.
  • Lu Z, Li CM, Qiao Y, Yan Y, Yang X. Effect of inhaled formaldehyde
  • on learning and memory of mice. Indoor Air 2008;18:77–83.
  • Stroup NE, Blair A, Erickson GE. Brain cancer and other causes
  • of deaths in anatomists. J Natl Cancer Inst 1986;77:1217–24.
  • Reiter RL. Oxidative processes and antioxidative defense mechanisms
  • in the aging brain. FASEB J 1995;9:526–33.
  • Patil AJ, Bhagwat VR, Patil JA, Dongre NN, Ambekar JG,
  • Jailkhani R, Das KK. Effect of formaldehyde exposure on the
  • activity of superoxide dismutase and catalase in battery manufacturing
  • workers (BMW) of western Maharashtra (India) with reference
  • to heme biosynthesis. Int J Environ Res Public Health
  • ;3:329–37.
  • Halliwell B. Antioxidant and human disease: a general introduction.
  • Nutrition 1997;55:544–52.
  • Kadiiska MB, Mason RP. Acute methanol intoxication generates
  • free radicals in rats: an ESR spin trapping investigation. Free Radic
  • Boil Med 2000;28:1106–14.
  • Halliwell B, Gutteridge JMC. Free radicals in biology and medicine.
  • Oxford: Clarendon Press; 1989;186–87.
  • El-Tahir KE, Ashour MM, Al-Harbi MM. The respiratory effects
  • of the volatile oil of the black seed (Nigella sativa) in guinea-pigs:
  • elucidation of the mechanism(s) of action. Gen Pharmacol 1993;
  • :1115–22.
  • Ghosheh OA, Houdi AA, Crooks PA. High performance liquid
  • chromatographic analysis of the pharmacologically active quinones
  • and related compounds in the oil of the black seed (Nigella sativa
  • L.). J Pharm Biomed Anal 1999;19:757–62.
  • Hosseinzadeh H, Parvardeh S, Asl MN, Sadeghnia HR, Ziaee T.
  • Effect of thymoquinone and Nigella sativa seeds oil on lipid peroxidation
  • level during global cerebral ischemia-reperfusion injury in
  • rat hippocampus. Phytomedicine 2007;14:621–7.
  • Padhye S, Banerjee S, Ahmad A, Mohammad R, Sarkar FH. From
  • here to eternity-the secret of Pharaohs: Therapeutic potential of
  • black cumin seeds and beyond. Cancer Ther 2008;6:495–510.
  • Hanafy MSM, Hatem ME. Studies on the antimicrobial activity of
  • Nigella sativa seed (black cumin). J Ethnopharmacol 1991;34:275–78.
  • Zaoui A, Cherrah Y, Lacaille-Dubois MA, Settaf A, Amarouch H,
  • Hassar M. Diuretic and hypotensive effects of Nigella sativa in the
  • spontaneously hypertensive rats. Therapie 2000;55:379–82.
  • Kanter M, Coskun O, Budancamanak M. Hepato-protective
  • effects of Nigella sativa L and Urtica diodica L on the lipid peroxidation,
  • antioxidant enzyme systems and liver enzymes in carbon
  • tetrachloride-treated rats. World J Gastroenterol 2005;11:6684–8.
  • Kanter M, Coskun O, Uysal H. The antioxidative and antihistaminic
  • effects of Nigella sativa and its major constituents, thymoquinone
  • on ethanol-induced gastric mucosal damage. Arch Toxicol
  • ;80:217–24.
  • El-Kadi A, Kandil O. The black seed (Nigella sativa) and immunity:
  • its effect on human T cell. Subset Fed Proc 1987;46:1222.
  • Uçmakl› E,Armutcu F, Öztürk A. The effects of formaldehyde intoxication
  • on the inducible nitric oxide synthase expression and nitric
  • oxide level in the liver tissue of rats. Turk J Med Sci 2013;43:52–6.
  • Kanter M. Protective effects of Nigella sativa on formaldehydeinduced
  • neuronal injury in frontal cortex. T›p Araflt›rmalar› Dergisi
  • ;8:1–8.
  • Wang T, Zhao L, Guo Y, Zhang M, Pei H. Picroside II Inhibits
  • neuronal apoptosis and improves the morphology and structure of
  • brain tissue following cerebral ischemic injury in rats. PLoS ONE
  • ;10:e0124099.
  • Thayer WS. Serum lipid peroxides in rats treated chronically with
  • adriamycin. Biochem Pharmacol 1984;33:2259–63.
  • Van Bezooijen RL, Que I, Ederveen AG, Kloosterboer HJ,
  • Papapoulos SE, Lowik CW. Plasma nitrate+nitrite levels are regulated
  • by ovarian steroids but do not correlate with trabecular bone
  • mineral density in rats. J Endocrinol 1998;159:27–34.
  • Misra HP, Fridouich I. The role of superoxide anion in the autooxidation
  • of epinephrine and a simple assay for superoxide dismutase.
  • J Biol Chem 1972; 274:3170–75.
  • Dutta P, Seirafi J, Halpin D, Pinto J, Rivlin R. Acute ethanol exposure
  • alters hepatic glutathione metabolism in riboflavin deficiency.
  • Alcohol 1995;12:43–7.
  • Salonen H, Pasanen AL, Lappalainen S. Volatile organic compounds
  • and formaldehyde as explaining factors for sensory irritation
  • in office enviroments. J Occup Environ Hyg 2009;6:239–47.
  • Zhang Y, Liu X, McHale C, Li R, Zhang L. Bone marrow injury
  • induced via oxidative stress in mice by inhalation exposure to
  • formaldehyde. PLoS ONE 2013;8:e74974.
  • Usanmaz SE, Akarsu ES, Vural N. Neurotoxic effect of acute and
  • sub-acute formaldehyde exposures in mice. Environ Toxicol
  • Pharmacol 2002;11:93–100.
  • Datta NJ, Namasivayam A. In vitro effect of methanol on folatedeficient
  • rat hepatocyte. Drug Alcohol Depend 2003;71:87–91.
  • Farooqui MY, Upreti RK, Ahmed AE, Ansari GA. Influence of
  • intraperitoneally administered formaldehyde on bile production
  • and tissue glutathione levels in rats. Res Commun Chem Pathol
  • Pharmacol 1986;53:233–6.
  • Tang XQ, Zhuang YY, Zhang P, Fang HR, Zhou CF, Gu HF,
  • Zhang H, Wang CY. Formaldehyde impairs learning and memory
  • involving the disturbance of hydrogen sulfide generation in the
  • hippocampus of rats. J Mol Neurosci 2013;49:140–9.
  • Daniel S, Limson JL, Amichand D, Watkins GM, Daya S.
  • Through metal binding, curcumin protects against lead and cadmium-
  • induced lipid peroxidation in rat brain homogenates and
  • against lead-induced tissue damage in rat brain. J Inorg Biochem
  • ;98:266–75.
  • Bennet C, Bettaiya R, Rajanna S, Baker L, Yallapragada PR, Brice
  • JJ, White SL, Bokara KK. Region specific increase in the antioxidant
  • enzymes and lipid peroxidation products in the brain of rats
  • exposed to lead. Free Radic Res 2007;41:267–73.
  • Peluffo G, Calcerrada P, Piacenza L, Pizzano N, Radi R.
  • Superoxide-mediated inactivation of nitric oxide and peroxynitrite
  • formation by tobacco smoke in vascular endothelium: studies in
  • cultured cells and smokers. Am J Physiol 2009;296:1781–92.
  • Kurata M, Suzuki M, Agar NS. Antioxidant systems and erythrocyte
  • life-span in mammals. Comp Biochem Physiol B 1993;106:477–87.
  • Zararsiz I, Sonmez MF. Effects of omega-3 essential fatty acids
  • against formaldehyde induced nephropathy in rats. Toxicol Ind
  • Health 2006; 22:223–9.
  • Stohs SJ, Bagchi D. Oxidative mechanisms in the toxicity of metal
  • ions. Free Radic Biol Med 1995;18:321–36.
  • Ding Y, Gonick HC, Vaziri ND. Lead promotes hydroxyl radical
  • generation and lipid peroxidation in cultured aortic endothelial
  • cells. Am J Hypertens 2000;13:552–55.
  • Saxena G, Flora SJS. Lead induced oxidative stress and hematological
  • alterations and their response to combined administration
  • of calcium disodium EDTA with a thiolchelator in rats. J Biochem
  • Mol Toxicol 2004;18:221–33.
  • Badary OA, Taha RA, Gamal A, El-Din M, Abdel-Wahab MH.
  • Thymoquinone is a potent superoxide anion scavenger. Drug
  • Chem Toxicol 2003; 26:87–98.
  • Nagi MN, Alam K, Badary OA, Al-Shabanah OA, Al- Sawaf HA,
  • Al-Bekairi AM. Thymoquinone protects against carbon tetrachloride
  • hepatotoxicity in mice via an antioxidant mechanism. Biochem
  • Mol Biol Int 1999;47:153–9.
  • Kruk I, Michalska T, Lichszteld K, Kladna A, Aboul- Enein HY.
  • The effect of thymol and its derivatives on reactions reactive oxygen
  • species. Chemosphere 2000; 41:1059–64.
  • Al-Omar FA, Nagi MN, Abdulgadir MM, Al-Joni KS, Al-Majed
  • AA. Immediate and delayed treatments with curcumin prevent
  • forebrain ischemia-induced neuronal damage and oxidative
  • Ismail M, Al-Naqeep G, Chan KW. Nigella sativa thymoquinonerich
  • fraction greatly improves plasma antioxidant capacity and
  • expression of antioxidant genes in hypercholesterolemicrats. Free
  • Radic Biol Med 2010;48:664–72.
  • Janero DR. Malondialdehyde and thiobarbituric acid-reactivity as
  • diagnostic indexes of lipid-peroxidation and peroxidative tissueinjury
  • free radical biology and medicine. Free Radic Biol Med
  • ;9:515–40.
  • Sheikh BY, Mohamadin AM. Thymoquinone a potential therapy
  • for cerebral oxidative stress. Asian J Nat Appl Sci 2012;1:76–92.
  • Nagi MN, Mansour MA. Protective effect of thymoquinone
  • against doxorubicin-induced cardiotoxicity in rats: a possible
  • mechanism of protection. Pharmacol Res 2000;41:283–89.
Year 2015, Volume: 9 Issue: 3, 117 - 127, 01.02.2016

Abstract

References

  • Cheng G, Shi Y, Sturla SJ, Jalas JR, McIntee EJ, Villalta PW,
  • Wang M, Hecht SS. Reactions of formaldehyde plus acetaldehyde
  • with deoxyguanosine and DNA: formation of cyclic deoxyguanosine
  • adducts and formaldehyde cross-links. Chem Res Toxicol
  • ;16:145–52.
  • Metz B, Kersten GF, Hoogerhout P, Brugghe HF, Timmermans
  • HA, de Jong A, Meiring H, ten Hove J, Hennink WE, Crommelin
  • DJ, Jiskoot W. Identification of formaldehyde-induced modifications
  • in proteins: reactions with model peptides. J Biol Chem
  • ;279:6235–43.
  • Chohen BL, Pangnillo MK, Musikant BL, Deutsch AS.
  • Formaldehyde evaluation from endoplasmic materials. Oral
  • Health 1998; 88:37–9.
  • Sarnak MJ, Long J, King AJ. Intravascular formaldehyde instillation
  • and renal complication. Clin Nephrol 1999;51:122–5.
  • Conaway CC, Whysner J, Verna LK, Williams GM. Formaldehyde
  • mechanistic data and risk assessement: endogenous protection from
  • DNA adduct formation. Pharmacol Ther 1996;71:29–55.
  • Trezl L, Hullan L, Szavas T, Csiba A, Szende B. Determination of
  • endogenous formaldehyde in plants (fruits) bound to L-arginine and
  • its relation to the folate cycle, photosynthesis and apoptosis. Acta
  • Biol Hung 1998;49:253–63.
  • Feron, VJ, Till HP, de Vrijer F, Woutersen RA, Cassee FR, van
  • Bladeren PJ. Aldehyde: occurrence, carcinogenic potential, mechanism
  • of action and risk assessment. Mutal Res 1991;259:363–85.
  • Simith AE. Formaldehyde. Occup Med 1992;42:83–8.
  • Ozen OA, Songur A, Sarsilmaz M, Yaman M, Kus I. Zinc, copper
  • and iron concentrations in cerebral cortex of male rats exposed to
  • formaldehyde inhalation. J Trace Elem Med Biol 2003;17:207–9.
  • Songur A, Akpolat N, Kus I, Ozen OA, Zararsiz I, Sarsilmaz M.
  • The effects of the inhaled formaldehyde during the early postnatal
  • period in the hippocampus of rats: a morphological and immunohistochemical
  • study. Neurosci Res Commun 2003;33:168–78.
  • Trezl L, Tyihak E, Lotlikar PD. Non-enzymatic protein methylation
  • and its biological significance in protein methylation. In: Paik
  • WK, Kim S, editors. Protein methylation. Boca Raton (FL): CRC
  • Press; 1990.
  • Solomons K and Cochrane JW. Formaldehyde toxicity. Part II.
  • Review of acute and chronic effects on health. S Afr Med J 1984;
  • :103–6.
  • Kilburn KH. Neurobehavioural impairment and seizures from
  • formaldehyde. Arch Environ Health 1994;49:37–44.
  • Sorg BA, Hochstatter T. Behavioral sensitization after repeated
  • formaldehyde exposure in rats. Toxicol Ind Health 1999;15:346–55.
  • Pitten FA, Kramer A, Herrmann K, Bremer J, Koch S.
  • Formaldehyde neurotoxicity in animal experiments. Pathol Res
  • Pract 2000;196:193–8.
  • Lu Z, Li CM, Qiao Y, Yan Y, Yang X. Effect of inhaled formaldehyde
  • on learning and memory of mice. Indoor Air 2008;18:77–83.
  • Stroup NE, Blair A, Erickson GE. Brain cancer and other causes
  • of deaths in anatomists. J Natl Cancer Inst 1986;77:1217–24.
  • Reiter RL. Oxidative processes and antioxidative defense mechanisms
  • in the aging brain. FASEB J 1995;9:526–33.
  • Patil AJ, Bhagwat VR, Patil JA, Dongre NN, Ambekar JG,
  • Jailkhani R, Das KK. Effect of formaldehyde exposure on the
  • activity of superoxide dismutase and catalase in battery manufacturing
  • workers (BMW) of western Maharashtra (India) with reference
  • to heme biosynthesis. Int J Environ Res Public Health
  • ;3:329–37.
  • Halliwell B. Antioxidant and human disease: a general introduction.
  • Nutrition 1997;55:544–52.
  • Kadiiska MB, Mason RP. Acute methanol intoxication generates
  • free radicals in rats: an ESR spin trapping investigation. Free Radic
  • Boil Med 2000;28:1106–14.
  • Halliwell B, Gutteridge JMC. Free radicals in biology and medicine.
  • Oxford: Clarendon Press; 1989;186–87.
  • El-Tahir KE, Ashour MM, Al-Harbi MM. The respiratory effects
  • of the volatile oil of the black seed (Nigella sativa) in guinea-pigs:
  • elucidation of the mechanism(s) of action. Gen Pharmacol 1993;
  • :1115–22.
  • Ghosheh OA, Houdi AA, Crooks PA. High performance liquid
  • chromatographic analysis of the pharmacologically active quinones
  • and related compounds in the oil of the black seed (Nigella sativa
  • L.). J Pharm Biomed Anal 1999;19:757–62.
  • Hosseinzadeh H, Parvardeh S, Asl MN, Sadeghnia HR, Ziaee T.
  • Effect of thymoquinone and Nigella sativa seeds oil on lipid peroxidation
  • level during global cerebral ischemia-reperfusion injury in
  • rat hippocampus. Phytomedicine 2007;14:621–7.
  • Padhye S, Banerjee S, Ahmad A, Mohammad R, Sarkar FH. From
  • here to eternity-the secret of Pharaohs: Therapeutic potential of
  • black cumin seeds and beyond. Cancer Ther 2008;6:495–510.
  • Hanafy MSM, Hatem ME. Studies on the antimicrobial activity of
  • Nigella sativa seed (black cumin). J Ethnopharmacol 1991;34:275–78.
  • Zaoui A, Cherrah Y, Lacaille-Dubois MA, Settaf A, Amarouch H,
  • Hassar M. Diuretic and hypotensive effects of Nigella sativa in the
  • spontaneously hypertensive rats. Therapie 2000;55:379–82.
  • Kanter M, Coskun O, Budancamanak M. Hepato-protective
  • effects of Nigella sativa L and Urtica diodica L on the lipid peroxidation,
  • antioxidant enzyme systems and liver enzymes in carbon
  • tetrachloride-treated rats. World J Gastroenterol 2005;11:6684–8.
  • Kanter M, Coskun O, Uysal H. The antioxidative and antihistaminic
  • effects of Nigella sativa and its major constituents, thymoquinone
  • on ethanol-induced gastric mucosal damage. Arch Toxicol
  • ;80:217–24.
  • El-Kadi A, Kandil O. The black seed (Nigella sativa) and immunity:
  • its effect on human T cell. Subset Fed Proc 1987;46:1222.
  • Uçmakl› E,Armutcu F, Öztürk A. The effects of formaldehyde intoxication
  • on the inducible nitric oxide synthase expression and nitric
  • oxide level in the liver tissue of rats. Turk J Med Sci 2013;43:52–6.
  • Kanter M. Protective effects of Nigella sativa on formaldehydeinduced
  • neuronal injury in frontal cortex. T›p Araflt›rmalar› Dergisi
  • ;8:1–8.
  • Wang T, Zhao L, Guo Y, Zhang M, Pei H. Picroside II Inhibits
  • neuronal apoptosis and improves the morphology and structure of
  • brain tissue following cerebral ischemic injury in rats. PLoS ONE
  • ;10:e0124099.
  • Thayer WS. Serum lipid peroxides in rats treated chronically with
  • adriamycin. Biochem Pharmacol 1984;33:2259–63.
  • Van Bezooijen RL, Que I, Ederveen AG, Kloosterboer HJ,
  • Papapoulos SE, Lowik CW. Plasma nitrate+nitrite levels are regulated
  • by ovarian steroids but do not correlate with trabecular bone
  • mineral density in rats. J Endocrinol 1998;159:27–34.
  • Misra HP, Fridouich I. The role of superoxide anion in the autooxidation
  • of epinephrine and a simple assay for superoxide dismutase.
  • J Biol Chem 1972; 274:3170–75.
  • Dutta P, Seirafi J, Halpin D, Pinto J, Rivlin R. Acute ethanol exposure
  • alters hepatic glutathione metabolism in riboflavin deficiency.
  • Alcohol 1995;12:43–7.
  • Salonen H, Pasanen AL, Lappalainen S. Volatile organic compounds
  • and formaldehyde as explaining factors for sensory irritation
  • in office enviroments. J Occup Environ Hyg 2009;6:239–47.
  • Zhang Y, Liu X, McHale C, Li R, Zhang L. Bone marrow injury
  • induced via oxidative stress in mice by inhalation exposure to
  • formaldehyde. PLoS ONE 2013;8:e74974.
  • Usanmaz SE, Akarsu ES, Vural N. Neurotoxic effect of acute and
  • sub-acute formaldehyde exposures in mice. Environ Toxicol
  • Pharmacol 2002;11:93–100.
  • Datta NJ, Namasivayam A. In vitro effect of methanol on folatedeficient
  • rat hepatocyte. Drug Alcohol Depend 2003;71:87–91.
  • Farooqui MY, Upreti RK, Ahmed AE, Ansari GA. Influence of
  • intraperitoneally administered formaldehyde on bile production
  • and tissue glutathione levels in rats. Res Commun Chem Pathol
  • Pharmacol 1986;53:233–6.
  • Tang XQ, Zhuang YY, Zhang P, Fang HR, Zhou CF, Gu HF,
  • Zhang H, Wang CY. Formaldehyde impairs learning and memory
  • involving the disturbance of hydrogen sulfide generation in the
  • hippocampus of rats. J Mol Neurosci 2013;49:140–9.
  • Daniel S, Limson JL, Amichand D, Watkins GM, Daya S.
  • Through metal binding, curcumin protects against lead and cadmium-
  • induced lipid peroxidation in rat brain homogenates and
  • against lead-induced tissue damage in rat brain. J Inorg Biochem
  • ;98:266–75.
  • Bennet C, Bettaiya R, Rajanna S, Baker L, Yallapragada PR, Brice
  • JJ, White SL, Bokara KK. Region specific increase in the antioxidant
  • enzymes and lipid peroxidation products in the brain of rats
  • exposed to lead. Free Radic Res 2007;41:267–73.
  • Peluffo G, Calcerrada P, Piacenza L, Pizzano N, Radi R.
  • Superoxide-mediated inactivation of nitric oxide and peroxynitrite
  • formation by tobacco smoke in vascular endothelium: studies in
  • cultured cells and smokers. Am J Physiol 2009;296:1781–92.
  • Kurata M, Suzuki M, Agar NS. Antioxidant systems and erythrocyte
  • life-span in mammals. Comp Biochem Physiol B 1993;106:477–87.
  • Zararsiz I, Sonmez MF. Effects of omega-3 essential fatty acids
  • against formaldehyde induced nephropathy in rats. Toxicol Ind
  • Health 2006; 22:223–9.
  • Stohs SJ, Bagchi D. Oxidative mechanisms in the toxicity of metal
  • ions. Free Radic Biol Med 1995;18:321–36.
  • Ding Y, Gonick HC, Vaziri ND. Lead promotes hydroxyl radical
  • generation and lipid peroxidation in cultured aortic endothelial
  • cells. Am J Hypertens 2000;13:552–55.
  • Saxena G, Flora SJS. Lead induced oxidative stress and hematological
  • alterations and their response to combined administration
  • of calcium disodium EDTA with a thiolchelator in rats. J Biochem
  • Mol Toxicol 2004;18:221–33.
  • Badary OA, Taha RA, Gamal A, El-Din M, Abdel-Wahab MH.
  • Thymoquinone is a potent superoxide anion scavenger. Drug
  • Chem Toxicol 2003; 26:87–98.
  • Nagi MN, Alam K, Badary OA, Al-Shabanah OA, Al- Sawaf HA,
  • Al-Bekairi AM. Thymoquinone protects against carbon tetrachloride
  • hepatotoxicity in mice via an antioxidant mechanism. Biochem
  • Mol Biol Int 1999;47:153–9.
  • Kruk I, Michalska T, Lichszteld K, Kladna A, Aboul- Enein HY.
  • The effect of thymol and its derivatives on reactions reactive oxygen
  • species. Chemosphere 2000; 41:1059–64.
  • Al-Omar FA, Nagi MN, Abdulgadir MM, Al-Joni KS, Al-Majed
  • AA. Immediate and delayed treatments with curcumin prevent
  • forebrain ischemia-induced neuronal damage and oxidative
  • Ismail M, Al-Naqeep G, Chan KW. Nigella sativa thymoquinonerich
  • fraction greatly improves plasma antioxidant capacity and
  • expression of antioxidant genes in hypercholesterolemicrats. Free
  • Radic Biol Med 2010;48:664–72.
  • Janero DR. Malondialdehyde and thiobarbituric acid-reactivity as
  • diagnostic indexes of lipid-peroxidation and peroxidative tissueinjury
  • free radical biology and medicine. Free Radic Biol Med
  • ;9:515–40.
  • Sheikh BY, Mohamadin AM. Thymoquinone a potential therapy
  • for cerebral oxidative stress. Asian J Nat Appl Sci 2012;1:76–92.
  • Nagi MN, Mansour MA. Protective effect of thymoquinone
  • against doxorubicin-induced cardiotoxicity in rats: a possible
  • mechanism of protection. Pharmacol Res 2000;41:283–89.
There are 190 citations in total.

Details

Primary Language English
Subjects Health Care Administration
Journal Section Original Articles
Authors

Abd El-rahman El-shahat Mohamad This is me

Tarek Mohamed Essa This is me

Hesham Saad Ata This is me

Publication Date February 1, 2016
Published in Issue Year 2015 Volume: 9 Issue: 3

Cite

APA El-shahat Mohamad, A. E.-r., Mohamed Essa, T., & Ata, H. S. (2016). NIGELLA SATIVA PROTECTS AGAINST FORMALDEHYDE-INDUCED NEUROTOXICITY IN THE RAT FRONTAL CORTEX. Anatomy, 9(3), 117-127.
AMA El-shahat Mohamad AEr, Mohamed Essa T, Ata HS. NIGELLA SATIVA PROTECTS AGAINST FORMALDEHYDE-INDUCED NEUROTOXICITY IN THE RAT FRONTAL CORTEX. Anatomy. February 2016;9(3):117-127.
Chicago El-shahat Mohamad, Abd El-rahman, Tarek Mohamed Essa, and Hesham Saad Ata. “NIGELLA SATIVA PROTECTS AGAINST FORMALDEHYDE-INDUCED NEUROTOXICITY IN THE RAT FRONTAL CORTEX”. Anatomy 9, no. 3 (February 2016): 117-27.
EndNote El-shahat Mohamad AE-r, Mohamed Essa T, Ata HS (February 1, 2016) NIGELLA SATIVA PROTECTS AGAINST FORMALDEHYDE-INDUCED NEUROTOXICITY IN THE RAT FRONTAL CORTEX. Anatomy 9 3 117–127.
IEEE A. E.-r. El-shahat Mohamad, T. Mohamed Essa, and H. S. Ata, “NIGELLA SATIVA PROTECTS AGAINST FORMALDEHYDE-INDUCED NEUROTOXICITY IN THE RAT FRONTAL CORTEX”, Anatomy, vol. 9, no. 3, pp. 117–127, 2016.
ISNAD El-shahat Mohamad, Abd El-rahman et al. “NIGELLA SATIVA PROTECTS AGAINST FORMALDEHYDE-INDUCED NEUROTOXICITY IN THE RAT FRONTAL CORTEX”. Anatomy 9/3 (February 2016), 117-127.
JAMA El-shahat Mohamad AE-r, Mohamed Essa T, Ata HS. NIGELLA SATIVA PROTECTS AGAINST FORMALDEHYDE-INDUCED NEUROTOXICITY IN THE RAT FRONTAL CORTEX. Anatomy. 2016;9:117–127.
MLA El-shahat Mohamad, Abd El-rahman et al. “NIGELLA SATIVA PROTECTS AGAINST FORMALDEHYDE-INDUCED NEUROTOXICITY IN THE RAT FRONTAL CORTEX”. Anatomy, vol. 9, no. 3, 2016, pp. 117-2.
Vancouver El-shahat Mohamad AE-r, Mohamed Essa T, Ata HS. NIGELLA SATIVA PROTECTS AGAINST FORMALDEHYDE-INDUCED NEUROTOXICITY IN THE RAT FRONTAL CORTEX. Anatomy. 2016;9(3):117-2.

Anatomy is the official journal of Turkish Society of Anatomy and Clinical Anatomy (TSACA).