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Modo de operación ATC (Control de Tráfico Aéreo)

6 VARIABLES QUE INTERVIENEN O ALTERAN EL ESTADO DE LA

6.1 Variables referentes a la particularidad de BOG

6.1.3 Modo de operación ATC (Control de Tráfico Aéreo)

This research was supported by grants from the National Institutes of Health (GM579450), the Georgia Research Alliance and Georgia State University (RPE awards).

References

1. Ausubel, F. M., Brent, R., Kingston, R. E., Moore, D. M., Smith, J. A., and Struhl, K. (1992-2002). Current Protocols in Molecular Biology (F. M. Ausubel, R. Brent, R. E. Kingston, D. M. Moore, J. A. Smith, and K. Struhl, Eds.) Greene Publishing Associates, New York, Wiley-Interscience, New York and Chichester.

2. Avery, A. M., and Avery, S. V. (2001). Saccharomyces cerevisiae Expresses Three Phospholipid Hydroperoxide Glutathione Peroxidases. J. Biol. Chem. 276(36), 33730- 33735.

3. Avery, S. V. (2001). Metal toxicity in yeasts and the role of oxidative stress. Adv Appl Microbiol49, 111-42.

4. Avery, S. V., Howlett, N. G., and Radice, S. (1996). Copper toxicity towards Saccharomyces cerevisiae: dependence on plasma membrane fatty acid composition.

Appl Environ Microbiol62(11), 3960-6.

5. Avery, S. V., Malkapuram, S., Mateus, C., and Babb, K. S. (2000). Copper/zinc- Superoxide dismutase is required for oxytetracycline resistance of Saccharomyces cerevisiae. J Bacteriol182(1), 76-80.

6. Bradford, M. M. (1976). A rapid and sensitive method for the quantitation of microgram quantities of protein utilizing the principle of protein-dye binding. Anal Biochem72, 248- 54.

7. Cabiscol, E., Piulats, E., Echave, P., Herrero, E., and Ros, J. (2000). Oxidative stress promotes specific protein damage in Saccharomyces cerevisiae. J Biol Chem 275(35),

27393-8.

8. Cadenas, E. (1989). Lipid peroxidation during the oxidation of haemoproteins by hydroperoxides. Relation to electronically excited state formation. J Biolumin Chemilumin4(1), 208-18.

9. Conrad, C. C., Choi, J., Malakowsky, C. A., Talent, J. M., Dai, R., Marshall, P., and Gracy, R. W. (2001). Identification of protein carbonyls after two-dimensional electrophoresis. Proteomics1(7), 829-34.

10.Costa, V. M., Amorim, M. A., Quintanilha, A., and Moradas-Ferreira, P. (2002). Hydrogen peroxide-induced carbonylation of key metabolic enzymes in Saccharomyces cerevisiae: the involvement of the oxidative stress response regulators Yap1 and Skn7.

Free Radic Biol Med33(11), 1507-15.

11.Davies, K. J. (1995). Oxidative stress: the paradox of aerobic life. Biochem Soc Symp61,

12.Ding, Q., Dimayuga, E., and Keller, J. N. (2006). Proteasome regulation of oxidative stress in aging and age-related diseases of the CNS. Antioxid Redox Signal8(1-2), 163- 72.

13.Fernandes, A. R., Peixoto, F. P., and Sa-Correia, I. (1998). Activation of the H+-ATPase in the plasma membrane of cells of Saccharomyces cerevisiae grown under mild copper stress. Arch Microbiol171(1), 6-12.

14.Fauchon, M., Lagniel, G., Aude, J. C., Lombardia, L., Soularue, P., Petat, C., Marguerie, G., Sentenac, A., Werner, M., and Labarre, J. (2002). Sulfur sparing in the yeast proteome in response to sulfur demand. Mol Cell9(4), 713-23.

15.Gasch, A. P., and Werner-Washburne, M. (2002). The genomics of yeast responses to environmental stress and starvation. Funct Integr Genomics2(4-5), 181-92.

16.Godon, C., Lagniel, G., Lee, J., Buhler, J. M., Kieffer, S., Perrot, M., Boucherie, H., Toledano, M. B., and Labarre, J. (1998). The H2O2 stimulon in Saccharomyces cerevisiae. J Biol Chem273(35), 22480-9.

17.Gorg, A., Obermaier, C., Boguth, G., Harder, A., Scheibe, B., Wildgruber, R., and Weiss, W. (2000). The current state of two-dimensional electrophoresis with immobilized pH gradients. Electrophoresis21(6), 1037-53.

18.Grant, C. M., Quinn, K. A., and Dawes, I. W. (1999). Differential Protein S-Thiolation of Glyceraldehyde-3-Phosphate Dehydrogenase Isoenzymes Influences Sensitivity to Oxidative Stress. Mol. Cell. Biol.19(4), 2650-2656.

19.Halliwell, B., and Gutteridge, J. M. C. (1999). "Free radicals in biology and medicine." Oxford University Press, Oxford.

20.Ho, Y., Gruhler, A., Heilbut, A., Bader, G. D., Moore, L., Adams, S. L., Millar, A., Taylor, P., Bennett, K., Boutilier, K., Yang, L., Wolting, C., Donaldson, I., Schandorff, S., Shewnarane, J., Vo, M., Taggart, J., Goudreault, M., Muskat, B., Alfarano, C., Dewar, D., Lin, Z., Michalickova, K., Willems, A. R., Sassi, H., Nielsen, P. A., Rasmussen, K. J., Andersen, J. R., Johansen, L. E., Hansen, L. H., Jespersen, H., Podtelejnikov, A., Nielsen, E., Crawford, J., Poulsen, V., Sorensen, B. D., Matthiesen, J., Hendrickson, R. C., Gleeson, F., Pawson, T., Moran, M. F., Durocher, D., Mann, M., Hogue, C. W., Figeys, D., and Tyers, M. (2002). Systematic identification of protein complexes in Saccharomyces cerevisiae by mass spectrometry. Nature415(6868), 180-3.

21.Holmgren, A. (1989). Thioredoxin and glutaredoxin systems. J Biol Chem 264(24),

13963-6.

22.Howlett, N. G., and Avery, S. V. (1997). Induction of lipid peroxidation during heavy metal stress in Saccharomyces cerevisiae and influence of plasma membrane fatty acid unsaturation. Appl Environ Microbiol63(8), 2971-6.

23.Inoue, Y., Tran, L. T., Kamakura, M., Izawa, S., Miki, T., Tsujimoto, Y., and Kimura, A. (1995). Oxidative stress response in yeast: glutathione peroxidase of Hansenula mrakii is bound to the membrane of both mitochondria and cytoplasm. Biochim Biophys Acta

1245(3), 325-30.

24.Izawa, S., Inoue, Y., and Kimura, A. (1995). Oxidative stress response in yeast: effect of glutathione on adaptation to hydrogen peroxide stress in Saccharomyces cerevisiae.

FEBS Lett368(1), 73-6.

25.Jamieson, D. J. (1998). Oxidative stress responses of the yeast Saccharomyces cerevisiae.

Yeast14(16), 1511-27.

26.Jolivalt, C., Leininger-Muller, B., Bertrand, P., Herber, R., Christen, Y., and Siest, G. (2000). Differential oxidation of apolipoprotein E isoforms and interaction with phospholipids. Free Radic Biol Med28(1), 129-40.

27.Kawanishi, S., Hiraku, Y., Murata, M., and Oikawa, S. (2002). The role of metals in site- specific DNA damage with reference to carcinogenesis. Free Radic Biol Med32(9), 822- 32.

28.Krems, B., Charizanis, C., and Entian, K. D. (1995). Mutants of Saccharomyces cerevisiae sensitive to oxidative and osmotic stress. Curr Genet27(5), 427-34.

29.Linder, M. C., and Hazegh-Azam, M. (1996). Copper biochemistry and molecular biology. Am J Clin Nutr63(5), 797S-811S.

30.Moradas-Ferreira, P., Costa, V., Piper, P., and Mager, W. (1996). The molecular defences against reactive oxygen species in yeast. Mol Microbiol19(4), 651-8.

31.O'Halloran, T. V., and Culotta, V. C. (2000). Metallochaperones, an intracellular shuttle service for metal ions. J Biol Chem275(33), 25057-60.

32.Poppek, D., and Grune, T. (2006). Proteasomal defense of oxidative protein modifications. Antioxid Redox Signal8(1-2), 173-84.

33.Ravichandran, V., Seres, T., Moriguchi, T., Thomas, J. A., and Johnston, R. B., Jr. (1994). S-thiolation of glyceraldehyde-3-phosphate dehydrogenase induced by the phagocytosis-associated respiratory burst in blood monocytes. J Biol Chem 269(40),

25010-5.

34.Requena, J. R., Groth, D., Legname, G., Stadtman, E. R., Prusiner, S. B., and Levine, R. L. (2001). Copper-catalyzed oxidation of the recombinant SHa(29-231) prion protein.

35.Richter, C., and Schweizer, M. (1997). "Oxidative stress in mitochondria." Oxidative Stress and the Molecular Biology of Antioxidant Defenses (J. G. Scandalios, Ed.) Cold Spring Harbor Laboratory., New York:

36.Rotilio, G., Carri, M. T., Rossi, L., and Ciriolo, M. R. (2000). Copper-dependent oxidative stress and neurodegeneration. IUBMB Life50(4-5), 309-14.

37.Rottkamp, C. A., Nunomura, A., Raina, A. K., Sayre, L. M., Perry, G., and Smith, M. A. (2000). Oxidative stress, antioxidants, and Alzheimer disease. Alzheimer Dis Assoc Disord14 Suppl 1, S62-6.

38.Santoro, N., and Thiele, D. (1997). "Oxidative stress responses in the yeast. In Yeast Stress Responses Berlin & Heidelberg: Springer." Yeast Stress Responses (S. Hohmann, and W. Mager, Eds.) Berlin & Heidelberg: Springer.

39.Schuppe-Koistinen, I., Moldeus, P., Bergman, T., and Cotgreave, I. A. (1994). S- thiolation of human endothelial cell glyceraldehyde-3-phosphate dehydrogenase after hydrogen peroxide treatment. Eur J Biochem221(3), 1033-7.

40.Shenton, D., and Grant, C. M. (2003). Protein S-thiolation targets glycolysis and protein synthesis in response to oxidative stress in the yeast Saccharomyces cerevisiae. Biochem J374(Pt 2), 513-9.

41.Stearman, R., Yuan, D. S., Yamaguchi-Iwai, Y., Klausner, R. D., and Dancis, A. (1996). A permease-oxidase complex involved in high-affinity iron uptake in yeast. Science

271(5255), 1552-7.

42.Vido, K., Spector, D., Lagniel, G., Lopez, S., Toledano, M. B., and Labarre, J. (2001). A proteome analysis of the cadmium response in Saccharomyces cerevisiae. J Biol Chem

276(11), 8469-74.

43.Wecker, L., Miller, S. B., Cochran, S. R., Dugger, D. L., and Johnson, W. D. (1985). Trace element concentrations in hair from autistic children. J Ment Defic Res 29 ( Pt 1),

15-22.

44.Werner-Washburne, M., Braun, E. L., Crawford, M. E., and Peck, V. M. (1996). Stationary phase in Saccharomyces cerevisiae. Mol Microbiol19(6), 1159-66.

CHAPTER 2

Oxidative Protein Damage causes Chromium Toxicity in

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