Accesso libero

Arabidopsis thaliana for Spaceflight Applications–Preparing Dormant Biology for Passive Stowage and On-Orbit Activation

INFORMAZIONI SU QUESTO ARTICOLO

Cita

Abboud T, Bamsey M, Paul A-L, Graham T, Braham S, Noumeir R, Berinstain A, Ferl R (2013) Deployment of a fully-automated green fluorescent protein imaging system in a high arctic autonomous greenhouse. Sensors (Basel)13: 3530–3548AbboudTBamseyMPaulA-LGrahamTBrahamSNoumeirRBerinstainAFerlR2013Deployment of a fully-automated green fluorescent protein imaging system in a high arctic autonomous greenhouseSensors (Basel)133530354810.3390/s130303530365876023486220Search in Google Scholar

Bamsey M, Berinstain A, Graham T, Neron P, Giroux R, Braham S, Ferl R, Paul A-L, Dixon M (2009) Developing strategies for automated remote plant production systems: environmental control and monitoring of the Arthur Clarke Mars Greenhouse in the Canadian High Arctic. Advances in Space Research44: 1367–1381BamseyMBerinstainAGrahamTNeronPGirouxRBrahamSFerlRPaulA-LDixonM2009Developing strategies for automated remote plant production systems: environmental control and monitoring of the Arthur Clarke Mars Greenhouse in the Canadian High ArcticAdvances in Space Research441367138110.1016/j.asr.2009.08.012Search in Google Scholar

Barrett-Lennard EG, Dracup M (1988) A porous agar medium for improving the growth of plants under sterile conditions. Plant and Soil108: 294–298Barrett-LennardEGDracupM1988A porous agar medium for improving the growth of plants under sterile conditionsPlant and Soil10829429810.1007/BF02375663Search in Google Scholar

Lodha P, Netravali AN (2005) Characterization of Phytagel® modified soy protein isolate resin and unidirectional flax yarn reinforced “green” composites. Polymer Composites26: 647–659LodhaPNetravaliAN2005Characterization of Phytagel® modified soy protein isolate resin and unidirectional flax yarn reinforced “green” compositesPolymer Composites2664765910.1002/pc.20128Search in Google Scholar

Nakashima J, Sparks JA, Carver J, Stephens SD, Kwon T, Blancaflor EB (2014) Delaying seed germination and improving seedling fixation: lessons learned during science and payload verification tests for Advanced Plant EXperiments (APEX) 02-1 in space. Gravitational and Space Research2: 54–67NakashimaJSparksJACarverJStephensSDKwonTBlancaflorEB2014Delaying seed germination and improving seedling fixation: lessons learned during science and payload verification tests for Advanced Plant EXperiments (APEX) 02-1 in spaceGravitational and Space Research2546710.2478/gsr-2014-0005Search in Google Scholar

Paul A-L, Amalfitano CE, Ferl RJ (2012) Plant growth strategies are remodeled by spaceflight. BioMed Central (BMC) Plant Biology12: 232PaulA-LAmalfitanoCEFerlRJ2012Plant growth strategies are remodeled by spaceflightBioMed Central (BMC) Plant Biology1223210.1186/1471-2229-12-232355633023217113Search in Google Scholar

Paul A-L, Ferl RJ (2002) Molecular aspects of stress gene regulation during spaceflight. Journal of Plant Growth Regulation21: 166–176PaulA-LFerlRJ2002Molecular aspects of stress gene regulation during spaceflightJournal of Plant Growth Regulation2116617610.1007/s00344001005012024225Search in Google Scholar

Paul A-L, Wheeler RM, Levine HG, Ferl RJ (2013a) Fundamental plant biology enabled by the space shuttle. American Journal of Botany100: 226–234PaulA-LWheelerRMLevineHGFerlRJ2013aFundamental plant biology enabled by the space shuttleAmerican Journal of Botany10022623410.3732/ajb.120033823281389Search in Google Scholar

Paul A-L, Zupanska AK, Schultz ER, Ferl RJ (2013b) Organ-specific remodeling of the Arabidopsis transcriptome in response to spaceflight. BioMed Central (BMC) Plant Biology13: 112PaulA-LZupanskaAKSchultzERFerlRJ2013bOrgan-specific remodeling of the Arabidopsis transcriptome in response to spaceflightBioMed Central (BMC) Plant Biology1311210.1186/1471-2229-13-112375091523919896Search in Google Scholar

Ričkienė A (2012) Space plant biology research in Lithuania. Endeavour36: 117–124RičkienėA2012Space plant biology research in LithuaniaEndeavour3611712410.1016/j.endeavour.2012.04.00222613222Search in Google Scholar

Stout SC, Porterfield DM, Briarty LG, Kuang A, Musgrave ME (2001) Evidence of root zone hypoxia in Brassica rapa L. grown in microgravity. International Journal of Plant Sciences162: 249–255StoutSCPorterfieldDMBriartyLGKuangAMusgraveME2001Evidence of root zone hypoxia in Brassica rapa L. grown in microgravityInternational Journal of Plant Sciences16224925510.1086/31958511725801Search in Google Scholar

Wheeler RM (2011) Plants for human life support in space: from Myers to Mars. Gravitational and Space Biology23: 25–35WheelerRM2011Plants for human life support in space: from Myers to MarsGravitational and Space Biology232535Search in Google Scholar

Wolverton C, Kiss JZ (2011) An update on plant space biology. Gravitational and Space Biology22: 13–20WolvertonCKissJZ2011An update on plant space biologyGravitational and Space Biology221320Search in Google Scholar

Wyatt SE, Kiss JZ (2013) Plant tropisms: from Darwin to the International Space Station. American Journal of Botany100: 1–3WyattSEKissJZ2013Plant tropisms: from Darwin to the International Space StationAmerican Journal of Botany1001310.3732/ajb.120059123281390Search 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: 235–248ZupanskaAKDenisonFCFerlRJPaulA-L2013Spaceflight engages heat shock protein and other molecular chaperone genes in tissue culture cells of Arabidopsis thalianaAmerican Journal of Botany10023524810.3732/ajb.120034323258370Search in Google Scholar

eISSN:
2332-7774
Lingua:
Inglese
Frequenza di pubblicazione:
2 volte all'anno
Argomenti della rivista:
Life Sciences, other, Materials Sciences, Physics