References
- Aubry-Hivet D, Nziengui H, Rapp K, Oliveira O, Paponov IA, Li Y, Hauslage J, Vagt N, Braun M, Ditengou FA, Dovzhenko A, Palme K (2014) Analysis of gene expression during parabolic flights reveals distinct early gravity responses in Arabidopsis roots. Plant Biology 16: 129-141
- Barjaktarović Z, Schütz W, Madlung J, Fladerer C, Nordheim A, Hampp R (2009) Changes in the effective gravitational field strength affect the state of phosphorylation of stress-related proteins in callus cultures of Arabidopsis thaliana. Journal of Experimental Botany 60: 779-789
- Barlow PW, Klingelé E, Klein G, Miroslav M (2008) Leaf movements of bean plants and lunar gravity. Plant Signaling and Behavior 3: 1083-1090
- Belanger KD, Quatrano RS (2000) Polarity: the role of localized secretion. Current Opinion in Plant Biology 3: 67-72
- Brinckmann E (2005) ESA hardware for plant research on the International Space Station. Space Life Sciences: gravity-related effects on plants and spaceflight and man-made environments on biological systems. Advances in Space Research 36: 1162-1166
- Bui LT, Cordle AR, Irish EE, Cheng CL (2015) Transient and stable transformation of Ceratopteris richardii gametophytes. BioMed Central (BMC) Research Notes 8: 214
- Bushart TJ, Cannon AE, ul Haque A, San Miguel P, Mostajeran K, Clark GB, Porterfield DM, Roux SJ (2013) RNA-seq analysis identifies potential modulators of gravity response in spores of Ceratopteris (Parkeriaceae): evidence for modulation by calcium pumps and apyrase activity. American Journal of Botany 100(1): 161-174
- Camacho J (2015) Advanced Biological Research System (ABRS). National Aeronautics and Space Administration, Washington, D.C., USA. Website
http://www.nasa.gov/mission_pages/station/research/experiments/645.html - Chatterjee A, Roux SJ (2000) Ceratopteris richardii: a productive model for revealing secrets of signaling and development. Journal of Plant Growth Regulation 19: 284-289
- Choi J, Tanaka K, Cao Y, Qi Y, Qiu J, Liang Y, Lee SY, Stacey G (2014) Identification of plant receptor for extracellular ATP. Science 343: 290-294
- Clark GB, Morgan RO, Fernandez MP, Roux SJ (2012) Evolutionary adaptation of plant annexins has diversified their molecular structures, interactions, and functional roles. New Phytologist 196: 695-712
- Clark GB, Morgan RO, Fernandez MP, Salmi ML, Roux SJ (2014) Breakthroughs spotlighting roles for extracellular nucleotides and apyrases in stress responses and growth and development. Plant Science 225: 107-116
- Clark GB, Rafati DS, Bolton RJ, Dauwalder M, Roux SJ (2000) Redistribution of annexin in gravistimulated pea plumules. Plant Physiology and Biochemistry 38: 937-947
- Clark GB, Roux SJ (2011) Apyrases, extracellular ATP, and the regulation of growth. Current Opinion in Plant Biology 14: 700-706
- Demidchik V, Shang Z, Shin R, Colaco R, Laohavisit A, Shabala S, Davies JM (2011) Receptor-like activity evoked by extracellular ADP in Arabidopsis root epidermal plasma membrane. Plant Physiology 15: 1375-1385
- Demidchik V, Shang Z, Shin R, Thompson E, Rubio L, Laohavisit A, Mortimer JC, Chivasa S, Slabas AR, Glover BJ, Schachtman DP, Shabala SN, Davies JM (2009) Plant extracellular ATP signalling by plasma membrane NADPH oxidase and Ca2+ channels. Plant Journal 58: 903-913
- Deslauriers SD, Larsen PB (2010) FERONIA is a key modulator of brassinosteroid and ethylene responsiveness in Arabidopsis hypocotyls. Molecular Plant 3: 626-640
- Driss-Ecole D, Legue V, Carnero-Diaz E, Perbal G (2008) Gravisensitivity and automorphogenesis of lentil seedling roots grown on board the International Space Station. Physiologia Plantarum 134: 191-201
- Duan QH, Kita D, Li C, Cheung AY, Wu HM (2011) FERONIA receptor-like kinase regulates RHO GTPase signaling of root hair development. Proceedings of the National Academy of Sciences USA 107: 17821-17826
- Dubinin NP, Vaulina EN, Kosikov KV, Anikeeva ID, Moskvitin EV, Zapadnaya AA, Kostina LN, Shtrauh GA, Kryzhanovskaya LM, Gubareva IG, Nechitailo GS, Mashinsky AL (1973) Effects of spaceflight factors on the heredity of higher and lower plants. Life Sciences in Space Research 11: 105-110
- Edwards ES, Roux SJ (1994) Limited period of graviresponsiveness in germinating spores of Ceratopteris richardii. Planta 195: 150-152
- Escobar-Restrepo JM, Huck N, Kessler S, Gagliardini V, Gheyselinck J, Yang WC, Grossniklaus U (2007) The FERONIA receptor-like kinase mediates male-female interactions during pollen tube reception. Science 317: 656–660
- Ferl RJ, Koh J, Denison F, Paul A-L (2015) Spaceflight induces specific alterations in the proteomes of Arabidopsis. Astrobiology 15: 32-56
- Fisahn J, Klingelé E, Barlow P (2015) Lunar gravity affects leaf movement of Arabidopsis thaliana in the International Space Station. Planta 241: 1509-1518
- Galston AW (1992) Photosynthesis as a basis for life-support on Earth and in space. Bioscience 42: 490-493
- Gilroy S, Bethke PC, Jones RL (1993) Calcium homeostasis in plants. Journal of Cell Science 106: 453-462
- Gorecka KM, Konopka-Postupolska D, Hennig J, Buchet R, Pikula S (2005) Peroxidase activity of annexin 1 from Arabidopsis thaliana. Biochemical and Biophysical Research Communications 336: 868-875
- Halstead TW, Dutcher FR (1984) Status and prospects: Experiments on plants in space. Annals of Botany 54: 3-18
- Hamilton ES, Schlegel AM, Haswell ES (2015) United in diversity: mechanosensitive ion channels in plants. Annual Review of Plant Biology 66: 113-137
- Haruta M, Sussman MR (2012) The effect of a genetically reduced plasma membrane protonmotive force on vegetative growth of Arabidopsis. Plant Physiology 158: 1158-1171
- 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 Biology 16: 120-128
- Hickok LG, Warne TR, Slocum MK (1987) Ceratopteris richardii: applications for experimental plant biology. American Journal of Botany 74: 1304-1316
- Johnsson A, Solheim BGB, Iversen TH (2009) Gravity amplifies and microgravity decreases circumnutations in Arabidopsis thaliana stems: results from a space experiment. New Phytologist 182: 621-629
- Kessler SA, Shimosato-Asano H, Keinath NF, Wuest SE, Ingram G, Panstruga R, Grossniklaus U (2010) Conserved molecular components for pollen tube reception and fungal invasion. Science 330: 968-971
- Kiss JZ (2015) Conducting plant experiments in space. In Plant Gravitropism: Methods and Protocols, Methods in Molecular Biology, Blancaflor E.B. (ed.) 1309: 255-283. New York: Humana Press
- Kittang AI, Iversen TH, Fossum KR, Mazars C, Carnero-Diaz E, Boucheron-Dubuisson E, Le Disquet I, Legué V, Herranz R, Pereda-Loth V, Medina FJ (2014) Exploration of plant growth and development using the European Modular Cultivation System (ECMS) facility on the International Space Station. Plant Biology 16: 528-538
- Konopka-Postupolska D, Clark G, Hofmann A (2011) Structure, function, and membrane interactions of plant annexins: an update. Plant Science 181: 230-241
- Kordyum EL, Sytnik KM, Chernyaeva II (1983) Peculiarities of genital organ formation in Arabidopsis thaliana (L) Heynh. under spaceflight conditions. Advances in Space Research 3: 247-250
- Kostina L, Anikeeva I, Vaulina E (1984) The influence of spaceflight factors on viability and mutability of plants. Advances in Space Research 4: 65-70
- Kuang AX, Musgrave ME, Matthews SW (1996b) Modification of reproductive development in Arabidopsis thaliana under spaceflight conditions. Planta 198: 588-594
- Kuang AX, Xiao Y, Musgrave ME (1996a) Cytochemical localization of reserves during seed development in Arabidopsis thaliana under spaceflight conditions. Annals of Botany 78: 343-351
- Kwon T, Sparks JA, Nakashima J, Allen SN, Tang Y, Blancaflor EB (2015) Transcriptional response of Arabidopsis seedlings during spaceflight reveals peroxidase and cell wall remodeling genes associated with root hair development. American Journal of Botany 102: 21-35
- Laohavisit A, Davies JM (2009) Multifunctional annexins. Plant Science 177: 532-539
- Malcolm HR, Blount P, Maurer JA (2015) The mechanosensitive channel of small conductance (MscS) functions as a jack-in-the-box. Biochimica Et Biophysica Acta-Biomembranes 1848: 159-166
- Millar KDL, Johnson CM, Edelmann RE, Kiss JZ (2011) An endogenous growth pattern of roots is revealed in seedlings grown in microgravity. Astrobiology 11: 787-797
- Millar KDL, Kumar P, Correll MJ, Mullen JL, Hangarter RP, Edelmann RE, Kiss JZ (2010) A novel phototropic response to red light is revealed in microgravity. New Phytologist 186: 648-656
- Morrow RC, Bula RJ, Tibbitts TW, Dinauer WR (1994) The ASTROCULTURE™ flight experiment series, validating technologies for growing plants in space. Advances in Space Research 14: 29-37
- Mullen JL, Turk E, Johnson K, Wolverton C, Ishikawa H, Simmons C, Söll D, Evans ML (1998) Root-growth behavior of the Arabidopsis mutant rgr1 - roles of gravitropism and circumnutation in the waving/coiling phenomenon. Plant Physiology 118: 1139-1145
- Musgrave ME, Kuang AX, Brown CS, Matthews SW (1998) Changes in Arabidopsis leaf ultrastructure, chlorophyll and carbohydrate content during spaceflight depend on ventilation. Annals of Botany 81: 503-512
- Musgrave ME, Kuang AX, Matthews SW (1997) Plant reproduction during spaceflight: importance of the gaseous environment. Planta 203: S177-S184
- Nakashima J, Liao F, Sparks JA, Tang Y, Blancaflor EB (2014a) The actin cytoskeleton is a suppressor of the endogenous skewing behaviour of Arabidopsis primary roots in microgravity. Plant Biology 16: 142-150
- Nakashima J, Sparks JA, Carver Jr JA, Stephens SD, Kwon T, Blancaflor EB (2014b) 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 Research 2: 54-67
- Okada K, Shimura Y (1990) Reversible root tip rotation in Arabidopsis seedlings induced by obstacle-touching stimulus. Science 250: 274-276
- Oliva M, Dunand C (2007) Waving and skewing: how gravity and the surface of growth media affect root development in Arabidopsis. New Phytologist 176: 37-43
- Paul A-L, Amalfitano CE, Ferl RJ (2012a) Plant growth strategies are remodeled by spaceflight. BioMed Central (BMC) Plant Biology 12: 232
- Paul A-L, Ferl RJ (2015) Spaceflight exploration in plant gravitational biology. In Plant Gravitropism: Methods and Protocols, Methods in Molecular Biology, Blancaflor E.B. (ed.) 1309: 285-305. New York: Springer Science Business Media
- Paul A-L, Levine HG, McLamb W, Norwood KL, Reed D, Stutte GW, Wells HW, Ferl RJ (2005) Plant molecular biology in the space station era: utilization of Kennedy Space Center (KSC) fixation tubes with RNAlater. Acta Astronautica 56: 623-628
- Paul A-L, Manak MS, Mayfield JD, Reyes MF, Gurley WB, Ferl RJ (2011) Parabolic flight induces changes in gene expression patterns in Arabidopsis thaliana. Astrobiology 11: 743-758
- Paul A-L, Wheeler RM, Levine HG, Ferl RJ (2013b) Fundamental plant biology enabled by the space shuttle. American Journal of Botany 100: 226-234
- Paul A-L, Zupanska AK, Ostrow DT, Zhang YP, Sun Y, Li JL, Shanker S, Farmerie WG, Amalfitano CE, Ferl RJ (2012b) Spaceflight transcriptomes: unique responses to a novel environment. Astrobiology 12: 40-56
- Paul A-L, Zupanska AK, Schultz ER, Ferl RJ (2013a) Organ-specific remodeling of the Arabidopsis transcriptome in response to spaceflight. BioMed Central (BMC) Plant Biology 13: 112
- Plackett ARG, Huang LD, Sanders HL, Langdale JA (2014) High-efficiency stable transformation of the model fern species Ceratopteris richardii via microparticle bombardment. Plant Physiology 165: 3-14
- Plackett ARG, Rabbinowitsch EH, Langdale JA (2015) Protocol: genetic transformation of the fern Ceratopteris richardii through microparticle bombardment. Plant Methods 11: 37
- Porterfield DM, Barta DJ, Ming DW, Morrow RC, Musgrave ME (2000) ASTROCULTURE™ root metabolism and cytochemical analysis. Life Sciences: Space Life Support Systems and the Lunar Farside Crater SAHA Proposal. Advances in Space Research 26: 315-318
- Roux SJ (2012) Root waving and skewing - unexpectedly in micro-g. BioMed Central (BMC) Plant Biology 12: 231
- Roux SJ, Chatterjee A, Hillier S, Cannon T (2003) Early development of fern gametophytes in microgravity. Advances in Space Research 31: 215-220
- Salmi ML, Roux SJ (2008) Gene expression changes induced by spaceflight in single-cells of the fern Ceratopteris richardii. Planta 229: 151-159
- Salmi ML, ul Haque A, Bushart TJ, Stout SC, Roux SJ, Porterfield DM (2011) Changes in gravity rapidly alter the magnitude and direction of a cellular calcium current. Planta 233: 911-920
- Schultz ER, Kelley KL, Paul A-L, Ferl RJ (2013) A method for preparing spaceflight RNAlater-fixed Arabidopsis thaliana (Brassicaceae) tissue for scanning electron microscopy. Applications in Plant Sciences 1(8)
- Shih HW, Miller ND, Dai C, Spalding EP, Monshausen GB (2014) The receptor-like kinase FERONIA is required for mechanical signal transduction in Arabidopsis seedlings. Current Biology 24: 1887-1892
- Solheim BGB, Johnsson A, Iversen TH (2009) Ultradian rhythms in Arabidopsis thaliana leaves in microgravity. New Phytologist 183: 1043-1052
- Stout SC, Clark GB, Archer-Evans S, Roux SJ (2003) Rapid and efficient suppression of gene expression in a single-cell model system, Ceratopteris richardii. Plant Physiology 131: 1165-1168
- Summerlin LB (1977) Skylab, Classroom in Space. Scientific & Technical Information Office, National Aeronautics and Space Administration, U.S. Government Printing Office, Washington, D.C., USA
- Tan C, Wang H, Zhang Y, Qi B, Xu GX, Zheng HQ (2011) A proteomic approach to analyzing responses of Arabidopsis thaliana root cells to different gravitational conditions using an agravitropic mutant, pin2, and its wild type. Proteome Science 9: 72
- Tang WQ, Brady SR, Sun Y, Muday GK, Roux SJ (2003) Extracellular ATP inhibits root gravitropism at concentrations that inhibit polar auxin transport. Plant Physiology 131: 147-154
- Thompson MV, Holbrook NM (2004) Root-gel interactions and the root waving behavior of Arabidopsis. Plant Physiology 135: 1822-1837
- Toyota M, Gilroy S (2013) Gravitropism and mechanical signaling in plants. American Journal of Botany 100: 111-125
- ul Haque A, Rokkam M, De Carlo AR, Wereley ST, Roux SJ, Irazoqui PP, Porterfield DM (2007). A MEMS fabricated cell electrophysiology biochip for in silico calcium measurements. Sensors and Actuators B: Chemical 123: 391-399
- Vanegas DC, Clark GB, Cannon AE, Roux SJ, Chaturvedi P, McLamore ES (2015) A self-referencing biosensor for real-time monitoring of physiological ATP transport in plant systems. Biosensors and Bioelectronics 74: 37-44
- Vaulina EN, Anikeeva ID, Kostina LN, Kogan IG, Palmbakh LR, Mashinsky AL (1981) The role of weightlessness in the genetic damage from preflight gamma-irradiation of organisms in experiments aboard the Salyut 6 orbital station. Advances in Space Research 1: 163-169
- Wang WJ, Black SS, Edwards MD, Miller S, Morrison EL, Bartlett W, Dong CJ, Naismith JH, Booth IR (2008) The structure of an open form of an E. coli mechanosensitive channel at 3.45 Å resolution. Science 321: 1179-1183
- Weerasinghe RR, Swanson SJ, Okada SF, Garrett MB, Kim SY, Stacey G, Boucher RC, Gilroy S, Jones AM (2009) Touch induces ATP release in Arabidopsis roots that is modulated by the heterotrimeric G-protein complex. Federation of European Biochemical Societies (FEBS) Letters 583: 2521-2526
- Yang X, Wang B, Farris B, Clark G, Roux SJ (2015) Modulation of root skewing in Arabidopsis by apyrases and extracellular ATP. Plant Cell Physiology 56: 2197-2206