40
Views
1
CrossRef citations to date
0
Altmetric
Original

The Effect of Heme Oxygenase Inhibition on Visual Evoked Potentials

, , &
Pages 1384-1398 | Published online: 09 Sep 2009

REFERENCES

  • Agarwal A, Nick H. S. Renal response to tissue injury: Lessons from heme oxygenase-1. Gene ablation and expression. Journal of the American Society of Nephrology 2000; 1(5)965–973
  • Alkadhi K. A., Al-Hijailan R. S., Malik K., Hogan Y. Retrograde carbon monoxide is required for induction of long-term potentiation in rat superior cervical ganglion. The Journal of Neuroscience 2001; 21(10)3515–3520
  • Aydin S., Yargicoglu P., Derin N., Alicicguzel Y., Abidin I., Agar A. The effect of chronic restraint stress and sulfite on visual evoked potentials (VEPs): Relation to lipid peroxidation. Food and Chemical Toxicology 2005; 43: 1093–1101
  • Barreiro E., Comtois A. S., Mohammed S., Lands L. C., Hussain S. N. Role of heme oxygenases in sepsis-induced diaphragmatic contractile dysfunction and oxidative stress. American Journal of Physiology. Lung Cellular and Molecular Physiology 2002; 283(2)L476–L484
  • Bidmon H. J., Emde B., Oermann E., Kubitz R., Witte O. W., Zilles K. Heme oxygenase-1 (HSP-32) and heme oxygenase-2 induction in neurons and glial cells of cerebral regions and its relation to iron accumulation after focal cortical photothrombosis. Experimental Neurology 2001; 168(1)1–22
  • Bing O., Grundemar L., Ny L., Moller C., Heilig M. Modulation of carbon monoxide production and enhanced spatial learning by tin protoporphyrin. Neuroreport 1995; 6(10)1369–1372
  • Brann D. W., Bhat G. K., Lamar C. A., Mahesh V. B. Gaseous transmitters and neuroendocrine regulation. Neuroendocrinology 1997; 65(6)385–395
  • Celesia G. G. Evoked potential techniques in the evaluation of visual function. Journal of Clinical Neurophysiology 1984; 1(1)55–76
  • Cukiernik M., Mukherjee S., Downey D., Chakabarti S. Heme oxygenase in the retina in diabetes. Current Eye Research 2003; 27(5)301–308
  • dos Santos E., Yamaguishi G. A., Heimann J. C. Effect of the heme/heme oxygenase pathway on the relationship between salt consumption and blood pressure. Journal of Hypertension 1998; 16: 1965–1969
  • Dulak J., Jozkowicz A. Carbon monoxide—a “new” gaseous modulator of gene expression. Acta Biochimica Polonica 2003; 50(1)31–47
  • Dyer R. S., Clark C. C., Boyes W. K. Surface distribution of flash-evoked and pattern reversal evoked potentials in hooded rats. Brain Research Bulletin 1987; 18: 227–234
  • Hacioglu G., Agar A., Ozkaya G. The effect of different hypertension models on visual evoked potentials. International Journal of Neuroscience 2002; 112: 1321–1335
  • Haley J. E. Gases as neurotransmitters. Essays in Biochemistry 1998; 33: 79–91
  • Halliday A. M., McDonald W. L., Muhsin J. Delayed visual evoked response in optic neuritis. Lancet 1972; 1: 982–985
  • Hawkins R. D., Zhuo M., Arancio O. Nitric oxide and carbon monoxide as possible retrograde messengers in hippocampal long-term potentiation. Journal of Neurobiology 1994; 25(6)652–665
  • Herr D. W., King D., Barone S., Crofton K. M. Alterations in the flash evoked potentials (FEPs) in rats produced by 3,3′-iminopropionitrile (IDPN)1,2. Neurotoxicology and Teratology 1995; 17: 645–656
  • Hudnell H. K., Boyes W. K. The comparability of rat and human visual evoked potentials. Neuroscience and Biobehavioral Reviews 1991; 15(1)159–164
  • Immenschuh S., Kietzmann T., Hinke V., Wiederhold M., Katz N., Muller-Eberhard U. The rat heme oxygenase-1 gene is transcriptionally induced via the protein kinase A signaling pathway in rat hepatocyte cultures. Molecular Pharmacology 1998; 53(3)483–491
  • Immenschuh S., Ramadori G. Gene regulation of heme oxygenase-1 as a therapeutic target. Biochemical Pharmacology 2000; 60(8)1121–1128
  • Johnson R. A., Lavesa M., Askari B., Abraham N. G., Nasjletti A. A heme oxygenase product, presumably carbon monoxide, mediates a vasodepressor function in rats. Hypertension 1995; 25(2)166–169
  • Khelifi A. F., Prise V. E., Tozer G. M. Effects of tin-protoporphyrin IX on blood flow in a rat tumour model. Experimental Biology and Medicine 2003; 228: 481–485
  • Kobayashi K., Kobayashi Y., Hashida-Okumura A., Iimori S., Nagai K., Nakashima H. Increase in peripheral blood flow due to extraocular direct irradiation of visible light in rats. American Journal of Physiology. Heart and Circulatory Physiology 2000; 279(3)H1141–H1146
  • Kraut M. A., Arezzo J. C., Vaughan H. G. J. Intracortical generators of the flash VEP in monkeys. Electroencephalography and Clinical Neurophysiology 1985; 62: 300–312
  • Kucukatay V., Hacioglu G., Savcioglu F., Yargicoglu P., Agar A. Visual evoked potentials in normal and sulfite oxidase deficient rats exposed to ingested sulfite. Neurotoxicology and Teratology 2006; 27: 93–100
  • Lehman D. M., Harrison J. M. Flash visual evoked potentials in the hypomyelinated mutant mouse shiverer. Documenta Ophthalmologica. Advances in Oophthalmology 2002; 104(1)83–95
  • Magnusson S., Ekstrom T. J., Elmer E., Kanje M., Ny L., Alm P. Heme oxygenase-1, heme oxygenase-2 and biliverdin reductase in peripheral ganglia from rat, expression and plasticity. Neuroscience 2000; 95(3)821–829
  • Maines M. D. Carbon monoxide: An emerging regulatory of cGMP in the brain. Molecular and Cellular Neurosciences 1993; 4: 389–397
  • Maines M. D. The heme oxygenase system: A regulator of second messenger gases. Annual Review of Pharmacology and Toxicology 1997; 37: 517–554
  • Matsuoka Y., Okazaki M., Zhao H., Asai S., Ishikawa K., Kitamura Y. Phosphorylation of c-Jun and its localization with heme oxygenase-1 and cyclooxygenase-2 in CA1 pyramidal neurons after transient forebrain ischemia. Journal of Cerebral Blood Flow and Metabolism 1999; 19(11)1247–1255
  • McCoubrey W. K., Jr, Huang T. J., Maines M. D. Isolation and characterization of a cDNA from the rat brain that encodes hemoprotein heme oxygenase-3. European Journal of Biochemistry/FEBS 1997; 247(2)725–732
  • Mereu G., Cammalleri M., Fa M., Francesconi W., Saba P., Tattoli M., et al. Prenatal exposure to a low concentration of carbon monoxide disrupts hippocampal long-term potentiation in rat offspring. The Journal of Pharmacology and Experimental Therapeutics 2000; 294(2)728–374
  • Motterlini R., Clark J. E., Foresti R., Saratchandra B., Mann E., Green C. J. Carbon monoxide-releasing molecules: Characterization of biochemical and vascular activities. Circulation Research 2002; 90(2)E17–E24
  • Motterlini R., Gonzales A., Foresti R., Clark J. E., Green C. J., Winslow R. M. Heme oxygenase-1-derived carbon monoxide contributes to the suppression of acute hypertensive responses in vivo. Circulation Research 1998; 83(5)568–577
  • Naik J. S., O’Donaughy T. L., Walker B. R. Endogenous carbon monoxide is an endothelial-derived vasodilator factor in the mesenteric circulation. American Journal of Physiology. Heart and Circulatory Physiology 2003; 284(3)H838–H845
  • Nishimura R. N., Dwyer B. E., Lu S. Y. Localization of heme oxygenase in rat retina: Effect of light adaptation. Neuroscience Letters 1996; 205(1)13–16
  • Otterbein L. E., Choi A. M. Heme oxygenase: Colors of defense against cellular stress. American Journal of Physiology. Lung Cellular and Molecular Physiology 2000; 279(6)L1029–L1037
  • Peng J., Lu R., Ye F., Deng H. W., Li Y. J. The heme oxygenase-1 pathway is involved in calcitonin gene-related peptide-mediated delayed cardioprotection induced by monophosphoryl lipid A in rats. Regulatory Peptides 2002; 103(1)1–7
  • Poole B., Wang W., Cheng Y.-C., Zolty E., Falk S., Amitabha M., et al. Role of heme oxygenase-1 in endotoxemic acute renal failure. American Journal of Physiology. Renal Physiology 2005; 289: F1382–F1385
  • Raub J. A., Benignus V. A. Carbon monoxide and the nervous system. Neuroscience and Biobehavioral Reviews 2002; 26(8)925–940
  • Ryter S. W., Tyrrell R. M. The heme synthesis and degradation pathways: Role in oxidant sensitivity. Heme oxygenase has both pro- and antioxidant properties. Free Radical Biology & Medicine 2000; 28(2)289–309
  • Schipper H. M. Heme oxygenase-1: Role in brain aging and neurodegenaration. Experimental Gerontology 2000; 35: 821–830
  • Sisson D. F., Siegel J. Chloral hydrate anesthesia: EEG power spectrum analysis and effects on VEPs in the rat. Neurotoxicology and Teratology 1998; 11: 51–56
  • Tosaki A., Das D. K. The role of heme oxygenase signaling in various disorders. Molecular and Cellular Biochemistry 2002; 232(1–2)149–157
  • Tozer G. M., Prise V. E., Motterlini R., Poole B. A., Wilson J., Chaplin D. J. The comparative effects of the NOS inhibitor, Nw-Nitro-Arginine and the haemoxygenase inhibitor, zinc protoporphyrin IX, on tumour blood flow. International Journal of Radiation Oncology, Biology, Physics 1998; 42(4)849–583
  • Ushiyama M., Morita T., Katayama S. Carbon monoxide regulates blood pressure cooperatively with nitric oxide in hypertensive rats. Heart Vessels 2002; 16: 189–195
  • Vercellotti G. M., Balla G., Balla J., Nath K., Eaton J. W., Jacob H. S. Heme and the vasculature: An oxidative hazard that induces antioxidant defenses in the endothelium. Artificial Cells, Blood Substitutes, and Immobilization Biotechnology 1994; 22(2)207–213
  • Verma A., Hirsch D. J., Glatt C. E., Ronett G. V., Snyder S. H. Carbon monoxide: A putative neural messenger. Science 1993; 259: 381–384
  • Yoshida T., Migita C. T. Mechanism of heme degradation by hemeoxygenase. Journal of Inorganic Biochemistry 2000; 82(1–4)33–41
  • Zakhary R., Gaine S. P., Dinerman J. L., Ruat M., Flavahan N. A., Snyder S. H. Heme oxygenase 2: Endothelial and neuronal localization and role in endothelium-dependent relaxation. Proceedings of the National Academy of Sciences of the United States of America 1996; 93(2)795–798

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.