Cite

Banti V, Loreti E, Novi G, Santaniello A, Alpi A, Perata P (2008) Heat acclimation and cross-tolerance against anoxia in Arabidopsis. Plant, Cell and Environment31: 1029–1037BantiVLoretiENoviGSantanielloAAlpiAPerataP2008Heat acclimation and cross-tolerance against anoxia in ArabidopsisPlant, Cell and Environment311029103710.1111/j.1365-3040.2008.01816.xSearch in Google Scholar

Ferl RJ, Wheeler R, Levine HG, Paul A-L (2002) Plants in space. Current Opinion in Plant Biology5: 258–263FerlRJWheelerRLevineHGPaulA-L2002Plants in spaceCurrent Opinion in Plant Biology525826310.1016/S1369-5266(02)00254-6Search in Google Scholar

Hausmann N, Fengler S, Hennig A, Franz-Wachtel M, Hampp R, Neef M (2014) Cytosolic calcium, hydrogen peroxide and related gene expression and protein modulation in Arabidopsis thaliana cell cultures respond immediately to altered gravitation: parabolic flight data. Plant Biology16 (Suppl 1): 120–128HausmannNFenglerSHennigAFranz-WachtelMHamppRNeefM2014Cytosolic calcium, hydrogen peroxide and related gene expression and protein modulation in Arabidopsis thaliana cell cultures respond immediately to altered gravitation: parabolic flight dataPlant Biology16Suppl 112012810.1111/plb.12051Search in Google Scholar

Kordyum EL (2014) Plant cell gravisensitivity and adaptation to microgravity. Plant Biology16 (Suppl 1): 79–90KordyumEL2014Plant cell gravisensitivity and adaptation to microgravityPlant Biology16Suppl 1799010.1111/plb.12047Search in Google Scholar

Kozeko L (2008) Effects of simulated microgravity on thermotolerance of pea seedlings. Journal of Gravitational Physiology15(1): 173–174KozekoL2008Effects of simulated microgravity on thermotolerance of pea seedlingsJournal of Gravitational Physiology151173174Search in Google Scholar

Kozeko L, Kordyum E (2006) The stress protein level under clinorotation in context of the seedling developmental program and the stress response. Microgravity Science and TechnologyXVIII-3/4: 254–256KozekoLKordyumE2006The stress protein level under clinorotation in context of the seedling developmental program and the stress responseMicrogravity Science and TechnologyXVIII-3425425610.1007/BF02870422Search in Google Scholar

Kozeko LY, Kordyum EL (2007) Heat shock proteins Hsp70 and Hsp90 in pea seedlings under clinorotation of different duration. Journal of Gravitational Physiology14(1): 115–116KozekoLYKordyumEL2007Heat shock proteins Hsp70 and Hsp90 in pea seedlings under clinorotation of different durationJournal of Gravitational Physiology141115116Search in Google Scholar

Lin B, Wang J, Liu H, Chen R, Meyer Y, Barakat A, Delseny M (2001) Genomic analysis of the Hsp70 superfamily in Arabidopsis thaliana. Cell Stress & Chaperones6(3): 201–208LinBWangJLiuHChenRMeyerYBarakatADelsenyM2001Genomic analysis of the Hsp70 superfamily in Arabidopsis thalianaCell Stress & Chaperones6320120810.1379/1466-1268(2001)006<0201:GAOTHS>2.0.CO;2Search in Google Scholar

Medina FJ, Mancuso S, Hampp R (2011) Plant Sciences. In Laboratory Science with Space Data. Accessing and Using Space-Experiment Data, D. Beysens, L. Carotenuto, J.J.W.A. van Loon, and M. Zell (eds), pp 117–122. Berlin, Heidelberg: Springer-VerlagMedinaFJMancusoSHamppR2011Plant SciencesInLaboratory Science with Space Data. Accessing and Using Space-Experiment DataBeysensD.CarotenutoL.van LoonJ.J.W.A.ZellM.(eds),117122Berlin, HeidelbergSpringer-VerlagSearch in Google Scholar

Milioni D, Hatzopoulos P (1997) Genomic organization of hsp90 gene family in Arabidopsis. Plant Molecular Biology35: 955–961MilioniDHatzopoulosP1997Genomic organization of hsp90 gene family in ArabidopsisPlant Molecular Biology3595596110.1023/A:1005874521528Search in Google Scholar

Montero-Barrientos M, Hermosa R, Cardoza RE, Gutiérrez S, Nicolás C, Monte E (2010) Transgenic expression of the Trichoderma harzianum hsp70 gene increases Arabidopsis resistance to heat and other abiotic stresses. Journal of Plant Physiology167(8): 659–665Montero-BarrientosMHermosaRCardozaREGutiérrezSNicolásCMonteE2010Transgenic expression of the Trichoderma harzianum hsp70 gene increases Arabidopsis resistance to heat and other abiotic stressesJournal of Plant Physiology167865966510.1016/j.jplph.2009.11.012Search in Google Scholar

Paul A-L, Popp MP, Gurley WB, Guy C, Norwood KL, Ferl RJ (2005) Arabidopsis gene expression patterns are altered during spaceflight. Advances in Space Research36: 1175–1181PaulA-LPoppMPGurleyWBGuyCNorwoodKLFerlRJ2005Arabidopsis gene expression patterns are altered during spaceflightAdvances in Space Research361175118110.1016/j.asr.2005.03.066Search in Google Scholar

Paul A-L, Zupanska AK, Ostrow DT, Zhang Y, Sun Y, Li JL, Shanker S, Farmerie WG, Amalfitano CE, Ferl RJ (2012) Spaceflight transcriptomes: unique responses to a novel environment. Astrobiology12(1): 40–56PaulA-LZupanskaAKOstrowDTZhangYSunYLiJLShankerSFarmerieWGAmalfitanoCEFerlRJ2012Spaceflight transcriptomes: unique responses to a novel environmentAstrobiology121405610.1089/ast.2011.0696Search in Google Scholar

Silva-Correia J, Freitas S, Tavares RM, Lino-Neto T, Azevedo H (2014) Phenotypic analysis of the Arabidopsis heat stress response during germination and early seedling development. Plant Methods10(7): 11Silva-CorreiaJFreitasSTavaresRMLino-NetoTAzevedoH2014Phenotypic analysis of the Arabidopsis heat stress response during germination and early seedling developmentPlant Methods1071110.1186/1746-4811-10-7397529324606772Search in Google Scholar

Sørensen JG, Kristensen TN, Loeschcke V (2003) The evolutionary and ecological role of heat shock proteins. Ecology Letters6: 1025–1037SørensenJGKristensenTNLoeschckeV2003The evolutionary and ecological role of heat shock proteinsEcology Letters61025103710.1046/j.1461-0248.2003.00528.xSearch in Google Scholar

Sung DY, Vierling E, Guy CL (2001) Comprehensive expression profile analysis of the Arabidopsis Hsp70 gene family. Plant Physiology126: 789–800SungDYVierlingEGuyCL2001Comprehensive expression profile analysis of the Arabidopsis Hsp70 gene familyPlant Physiology12678980010.1104/pp.126.2.78911116911402207Search in Google Scholar

Vierling E (1991) The roles of heat shock proteins in plants. Annual Review of Plant Physiology and Plant Molecular Biology42: 579–620VierlingE1991The roles of heat shock proteins in plantsAnnual Review of Plant Physiology and Plant Molecular Biology4257962010.1146/annurev.pp.42.060191.003051Search in Google Scholar

Wang W, Vinocur B, Shoseyov O, Altman A (2004) Role of plant heat-shock proteins and molecular chaperones in the abiotic stress response. Trends in Plant Science9(5): 244–252WangWVinocurBShoseyovOAltmanA2004Role of plant heat-shock proteins and molecular chaperones in the abiotic stress responseTrends in Plant Science9524425210.1016/j.tplants.2004.03.00615130550Search in Google Scholar

Wheeler RM (2010) Plants for human life support in space: from Myers to Mars. Gravitational and Space Biology23(2): 25–35WheelerRM2010Plants for human life support in space: from Myers to MarsGravitational and Space Biology2322535Search in Google Scholar

Zupanska AK, Denison FC, Ferl RJ, Paul A-L (2013) Spaceflight engages heat shock protein and other molecular chaperone genes in tissue culture cells of Arabidopsis thaliana. American Journal of Botany100(1): 235–248ZupanskaAKDenisonFCFerlRJPaulA-L2013Spaceflight engages heat shock protein and other molecular chaperone genes in tissue culture cells of Arabidopsis thalianaAmerican Journal of Botany100123524810.3732/ajb.120034323258370Search in Google Scholar

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