يعرض 1 - 10 نتائج من 100 نتيجة بحث عن '"hipóxia celular"', وقت الاستعلام: 0.65s تنقيح النتائج
  1. 1
    رسالة جامعية
  2. 2
    رسالة جامعية

    مرشدي الرسالة: Ortiz de Landázuri, Manuel (dir.), Universidad Autónoma de Madrid. Departamento de Bioquímica

    مصطلحات موضوعية: Hipoxia celular - Tesis doctorales

    الوصول الحر: http://hdl.handle.net/10486/11203Test

  3. 3
    رسالة جامعية

    مرشدي الرسالة: Peso Ovalle, Luis del (dir.), Universidad Autónoma de Madrid. Departamento de Bioquímica, Instituto de Investigaciones Biomédicas "Alberto Sols".

    الوصول الحر: http://hdl.handle.net/10486/5985Test

  4. 4
    رسالة جامعية

    مرشدي الرسالة: Peso Ovalle, Luis del (dir.), Ortiz de Landázuri, Manuel (dir.), Universidad Autónoma de Madrid. Departamento de Bioquímica

    مصطلحات موضوعية: Hipoxia celular

    الوصول الحر: http://hdl.handle.net/10486/3948Test

  5. 5
    رسالة جامعية

    مرشدي الرسالة: Caramelo Díaz, Carlos (dir.), Castilla Moro, Mª Angeles (dir.), Universidad Autónoma de Madrid. Departamento de Bioquímica

    مصطلحات موضوعية: Hipoxia celular - Tesis doctorales

    الوصول الحر: http://hdl.handle.net/10486/1794Test

  6. 6
    رسالة جامعية

    المؤلفون: Balsa Martínez, Eduardo

    مرشدي الرسالة: Ortiz de Landázuri, Manuel (dir.), Universidad Autónoma de Madrid. Departamento de Bioquímica

    مصطلحات موضوعية: Hipoxia celular - Tesis doctorales

    الوصول الحر: http://hdl.handle.net/10486/11203Test

  7. 7
    رسالة جامعية

    المؤلفون: Ortiz Barahona, Amaya

    مرشدي الرسالة: Peso Ovalle, Luis del (dir.), Universidad Autónoma de Madrid. Departamento de Bioquímica, Instituto de Investigaciones Biomédicas "Alberto Sols".

    الوصول الحر: http://hdl.handle.net/10486/5985Test

  8. 8
    رسالة جامعية

    المؤلفون: Alcaide Germán, María Luisa

    مرشدي الرسالة: Peso Ovalle, Luis del (dir.), Ortiz de Landázuri, Manuel (dir.), Universidad Autónoma de Madrid. Departamento de Bioquímica

    مصطلحات موضوعية: Hipoxia celular

    الوصول الحر: http://hdl.handle.net/10486/3948Test

  9. 9
    رسالة جامعية

    المؤلفون: Neria Serrano, Fernando

    مرشدي الرسالة: Caramelo Díaz, Carlos (dir.), Castilla Moro, Mª Angeles (dir.), Universidad Autónoma de Madrid. Departamento de Bioquímica

    مصطلحات موضوعية: Hipoxia celular - Tesis doctorales

    الوصول الحر: http://hdl.handle.net/10486/1794Test

  10. 10
    دورية أكاديمية

    المصدر: Revista de la Facultad de Medicina; Vol. 66 Núm. 4 (2018); 543-550 ; Revista de la Facultad de Medicina; Vol. 66 No. 4 (2018); 543-550 ; Revista de la Facultad de Medicina; v. 66 n. 4 (2018); 543-550 ; 2357-3848 ; 0120-0011

    وصف الملف: application/pdf; text/html; application/xml

    العلاقة: https://revistas.unal.edu.co/index.php/revfacmed/article/view/55149/69149Test; https://revistas.unal.edu.co/index.php/revfacmed/article/view/55149/69568Test; https://revistas.unal.edu.co/index.php/revfacmed/article/view/55149/69767Test; Conklin KA. Chemotherapy-associated oxidative stress: impact on chemotherapeutic effectiveness. Integr Cancer Ther. 2004;3:294-300. http://doi.org/d896hqTest.; Chen J. Reactive Oxygen Species and Drug Resistance in Cancer Chemotherapy. Austin J Clin Pathol. 2014;1(4):1-7.; Pauwels EK, Erba P, Mariani G, Gomes CM. Multidrug resistance in cancer: its mechanism and its modulation. Drug News Perspect. 2007;20(6):371-7. http://doi.org/cwn7f5Test.; Chandel NS, McClintock DS, Feliciano CE, Wood TM, Melendez JA, Rodriguez AM, et al. Reactive oxygen species generated at mitochondrial complex III stabilize hypoxia-inducible factor-1alpha during hypoxia: a mechanism of O2 sensing. J Biol Chem. 2000;275(33):25130-8. http://doi.org/b4gw9pTest.; Brunelle JK, Bell EL, Quesada NM, Vercauteren K, Tiranti V, Zeviani M, et al. Oxygen sensing requires mitochondrial ROS but not oxidative phosphorylation. Cell Metab. 2005;1(6):409-14. http://doi.org/d2d9hxTest.; Guzy RD, Hoyos B, Robin E, Chen H, Liu L, Mansfield KD, et al. Mitochondrial complex III is required for hypoxia-induced ROS production and cellular oxygen sensing. Cell Metab. 2005;1(6):401-8. http://doi.org/bsbzrmTest.; Qutub AA, Popel AS. Reactive oxygen species regulate hypoxia-inducible factor 1alpha differentially in cancer and ischemia. Mol Cell Biol. 2008;28(16):5106-19. http://doi.org/bphv5wTest.; Hagen T. Oxygen versus reactive oxygen in the regulation of HIF-1α: the balance tips. Biochem Res Int. 2012;2012. http://doi.org/gb5f25Test.; Haar CP, Hebbar P, Wallace GC, Das A, Vandergrift WA, Smith JA, et al. Drug resistance in glioblastoma: a mini review. Neurochem Res. 2012;37(6):1192-200. http://doi.org/fzdwm8Test.; Erler JT, Cawthorne CJ, Williams KJ, Koritzinsky M, Wouters BG, Wilson C, et al. Hypoxia-mediated down-regulation of Bid and BAX in tumors occurs via hypoxia-inducible factor 1-dependent and -independent mechanisms and contributes to drug resistance. Mol Cell Biol. 2004;24(7):2875-89. http://doi.org/ccw6qpTest.; Thorn CF, Oshiro C, Marsh Sh, Hernandez-Boussard T, McLeod H, Klein TE, et al. Doxorubicin pathways: pharmacodynamics and adverse effects. Pharmacogenet Genomics. 2012;21(7):440-6. http://doi.org/cdnpv7Test.; Wei MC, Zong WX, Cheng EH, Lindsten T, Panoutsakopoulou V, Ross AJ, et al. Proapoptotic Bax and Bak: A requisite gateway to mitochondrial dysfunction and death. Science. 2001;292(5527):727-30. http://doi.org/bm7vpwTest.; Yu JQ, Liu HB, Tian DZ, Liu YW, Lei JC, Zou GL. Changes in mitochondrial membrane potential and reactive oxygen species during wogonin-induced cell death in human hepatoma cells. Hepatol Res. 2007;37(1):68-76. http://doi.org/c3n2jsTest.; Hao H, Dong Y, Bowling MT, Gomez-Gutierrez JG, Zhou HS, McMasters KM. E2F-1 induces melanoma cell apoptosis via PUMA up-regulation and Bax translocation. BMC Cancer. 2007;7:24. http://doi.org/fwgxnnTest.; Ling LU, Tan KB, Lin H, Chiu GN. The role of reactive oxygen species and autophagy in safingol-induced cell death. Cell Death Dis. 2011;2:e129. http://doi.org/css2j9Test.; Brauns SC, Dealtry G, Milne P, Naudé R, Van De Venter M. Caspase-3 activation and induction of PARP cleavage by cyclic dipeptide cyclo(Phe-Pro) in HT-29 cells. Anticancer Res. 2005;25(6B):4197-202.; Luo M, Delaplane S, Jiang A, Reed A, He Y, Fishel M, et al. Role of the multifunctional DNA repair and redox signaling protein Ape1/Ref-1 in cancer and endothelial cells: small-molecule inhibition of the redox function of Ape1. Antioxid Redox Signal. 2008;10(11):1853-67. http://doi.org/cwq2bfTest.; Maiti AK. Reactive Oxygen Species Reduction is a Key Underlying Mechanism of Drug Resistance in Cancer Chemotherapy. Chemotherapy. 2012;1(2). http://doi.org/cqpkTest.; Comerford KM, Wallace TJ, Karhausen J, Louis NA, Montalto MC, Colgan SP. Hypoxia-inducible Factor-1-dependent Regulation of the Multidrug Resistance (MDR1) Gene. Cancer Res. 2002;62(12):3387-94.; Semenza GL. Life with oxygen. Science. 2007;318(5847):62-4. http://doi.org/fv3g8jTest.; Chuu JJ, Liu JM, Tsou MH, Huang CL, Chen CP, Wang HS, et al. Effects of paclitaxel and doxorubicin in histocultures of hepatocelular carcinomas. J Biomed Sci. 2007;14(2):233-44. http://doi.org/fc6cnbTest.; Sutter AP, Maaser K, Grabowski P, Bradacs G, Vormbrock K, Höpfner M, et al. Peripheral benzodiazepine receptor ligands induce apoptosis and cell cycle arrest in human hepatocellular carcinoma cells and enhance chemosensitivity to paclitaxel, docetaxel, doxorubicin and the Bcl-2 inhibitor HA14-1. J Hepatol. 2004;41(5):799-807. http://doi.org/fnfgs3Test.; Burkitt K, Chun SY, Dang DT, Dang LH. Targeting both HIF-1 and HIF-2 in human colon cancer cells improves tumor response to sunitinib treatment. Mol Cancer Ther. 2009;8(5):1148-56. http://doi.org/dpkkv2Test.; Puppo M, Battaglia F, Ottaviano C, Delfino S, Ribatti D, Varesio L, et al. Topotecan inhibits vascular endothelial growth factor production and angiogenic activity induced by hypoxia in human neuroblastoma by targeting hypoxia-inducible factor-1alpha and -2alpha. Mol Cancer Ther. 2008;7(7):1974-84. http://doi.org/b5b6wxTest.; Liu Z, Lu H, Shi H, Du Y, Yu J, Gu S, et al. PUMA overexpression induces reactive oxygen species generation and proteasome-mediated stathmin degradation in colorectal cancer cells. Cancer Res. 2005;65(5):1647-54. http://doi.org/c7p9vtTest.; Liu J, Wang Z. Increased Oxidative Stress as a Selective Anticancer Therapy. Oxid Med Cell Longev. 2015;2015:294303. http://doi.org/gb5vjfTest.; Zhou CH, Zhang XP, Liu F, Wang W. Modeling the interplay between the HIF-1 and p53 pathways in hypoxia. Sci Rep. 2015;5:13834. http://doi.org/f7qm6bTest.; Yu J, Zhang L. PUMA, a potent killer with or without p53. Oncogene. 2008;27(Suppl 1):S71-83. http://doi.org/c4trb4Test.; Yu J, Wang Z, Kinzler KW, Vogelstein B, Zhang L. PUMA mediates the apoptotic response to p53 in colorectal cancer cells. Proc Natl Acad Sci U S A. 2003;100(4):1931-6. http://doi.org/b5qqbfTest.; Jacobsen C, Honecker F. Cisplatin resistance in germ cell tumours: models and mechanisms. Andrology. 2015;3(1):111-21. http://doi.org/cqpmTest.; Tell G, Quadrifoglio F, Tiribelli C, Kelley MR. The Many Functions of APE1/Ref-1: Not Only a DNA Repair Enzyme. Antioxid Redox Signal. 2009;11(3):601-19. http://doi.org/csvrmdTest.; Kelley MR, Georgiadis MM, Fishel ML. APE1/Ref-1 role in redox signaling: translational applications of targeting the redox function of the DNA repair/redox protein APE1/Ref-1. Curr Mol Pharmacol. 2012;5(1):36-53. http://doi.org/fxqczxTest.; Luo M, He H, Kelley MR, Georgiadis MM. Redox regulation of DNA repair: implications for human health and cancer therapeutic development. Antioxid Redox Signal. 2010;12(11):1247-69. http://doi.org/d6zsdgTest.; Wang X, Wang J, Lin S, Geng Y, Wang J, Jiang B. Sp1 is involved in H2O2-induced PUMA gene expression and apoptosis in colorectal cancer cells. J Exp Clin Cancer Res. 2008;27:44. http://doi.org/djh2v4Test.; You H, Pellegrini M, Tsuchihara K, Yamamoto K, Hacker G, Erlacher M, et al. FOXO3a-dependent regulation of PUMA in response to cytokine/growth factor withdrawal. J Exp Med. 2006;203(7):1657-63. http://doi.org/ft523gTest.; Ambacher KK, Pitzul KB, Karajgikar M, Hamilton A, Ferguson SS, Cregan SP. The JNK- and AKT/GSK3β- signaling pathways converge to regulate PUMA induction and neuronal apoptosis induced by trophic factor deprivation. PLoS One. 2012;7(10):e46885. http://doi.org/f387gdTest.; https://revistas.unal.edu.co/index.php/revfacmed/article/view/55149Test