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2021, Number 4

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Rev cubana med 2021; 60 (4)

Immune and viral response in outer space

Saavedra-Torres JS, Muñoz GFM, Pinzón FMV, Zúñiga-Cerón LF
Full text How to cite this article

Language: Spanish
References: 28
Page: 1-7
PDF size: 229.92 Kb.


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REFERENCES

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  2. Muñoz Gallego F, Pinzón Fernández M, Zúñiga Cerón L, Mahecha Virgüez L,Saavedra-Torres, J. Riesgos de ser un astronauta: héroes del espacio. Medicina.2019[acceso 15/12/2020];41(1):47-62. Disponible en:https://revistamedicina.net/ojsanm/index.php/Medicina/article/view/1419

  3. Carrillo Esper R. Medicina espacial. 1ra. ed, Academia Nacional de Medicina deMéxico; 2016.

  4. Graebe A, Schuck EL, Lensing P, Putcha L, Derendorf H. Physiological,pharmacokinetic, and pharmacodynamic changes in space. J Clin Pharmacol.2004;44:837-53.

  5. Konstantinova IV, Rykova MP, Lesnyak AT, Antropova EA. Immune changesduring long-duration missions. J Leukoc Biol. 1993;54:189-201.

  6. Mehta SK, Cohrs RJ, Forghani B, Zerbe G, Gilden DH, Pierson DL. Stressinducedsubclinical reactivation of varicella zoster virus in astronauts. Journal of MedicalVirology. 2004;72:174-79.

  7. Mehta SK, Stowe RP, Feiveson AH, Tyring SK, Pierson DL. Reactivation andshedding of cytomegalovirus in astronauts during spaceflight. J Infect Dis.2000;182:1761-64.

  8. Akiyama T, Horie K, Hinoi E. How does spaceflight affect the acquired immunesystem? Microgravity. 2020[acceso 15/12/2020];14. Disponible en:https://www.nature.com/articles/s41526-020-0104-1

  9. Mcphee JC, Charles JB. Human health and performance risks of spaceexploration missions: evidence reviewed by the NASA human research program.Houston: National Aeronautics and Space Administration; 2009.

  10. Chen S. Advances in Human Space Research - Lessons Learned and FutureDirections. In: Donald K, editor. A Sponsored Supplement to Science: HumanPerformance in Space-Advancing Astronautics Research in China. Washington DC:AAAS Press; 2014. p. 2.

  11. Pierson DL, Stowe RP, Phillips TM, Lugg DJ, Mehta SK. Epstein-Barr virusshedding by astronauts during space flight. Brain Behav Immun. 2005;19:235-42.

  12. Pierson DL, Stowe RP, Phillips TM, Lugg DJ, Mehta SK. Epstein-Barr virusshedding by astronauts during space flight. Brain, Behavior, and Immunity inpress. 2005.

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  16. Matalka KZ, Abdul-Malik SM, Thewaini AJ. Academic stress-influence onEpstein-Barr virus and cytomegalovirus reactivation, cortisol, and prolactin. LabMed. 2000;31:163-8.

  17. Stowe RP, Pierson DL, Feeback DL, Barrett ADT. Stress induced reactivation ofEpstein-Barr virus in astronauts. Neuro-immunomodulation. 2000;8:51-8.

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  19. Crucian BE. Plasma cytokine concentrations indicate that in vivo hormonalregulation of immunity is altered during long-duration spaceflight. Journal ofInterferon & Cytokine Research. 2014[acceso15/12/2020];34(10).https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4186776/

  20. Hughes-Fulford M, Chang TT, Martinez EM, Li C. Spaceflight alters expressionof microRNA during T-cell activation. FASEB: Federation of American Societies forExperimental Biology Journal. J. 2015 [acceso 15/12/2020];29(12):4893.https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4653058/

  21. Chang TT, Walther I, Li C, Boonyaratanakornkit JB, Galleri G, Meloni MA, etal. The Rel/NF-κB pathway and transcription of immediate early genes in T cellactivation are inhibited by microgravity. Journal of Leukocyte Biology.2012;92(6):1133-1145.

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Rev cubana med. 2021;60