PID phosphosites indicate an ancient environmental control of PIN auxin transporters in land
plants. FEBS Lett 592:89–102
Dummer M, Michalski C, Essen LO, Rath M, Galland P, Forreiter C (2016) EHB1 and AGD12, two
calcium-dependent proteins affect gravitropism antagonistically in Arabidopsis thaliana. J Plant
Physiol 206:114–124
Fasano JM, Swanson SJ, Blancaflor EB, Dowd PE, Kao TH, Gilroy S (2001) Changes in root cap
pH are required for the gravity response of the Arabidopsis root. Plant Cell 13:907–921
Fisahn J, Yazdanbakhsh N, Klingele E, Barlow P (2012) Arabidopsis thaliana root growth kinetics
and lunisolar tidal acceleration. New Phytol 195:346–355
Fisahn J, Klingele E, Barlow P (2015) Lunar gravity affects leaf movement of Arabidopsis thaliana
in the international Space Station. Planta 241:1509–1518
Friml J, Wisniewska J, Benkova E, Mendgen K, Palme K (2002) Lateral relocation of auxin efflux
regulator PIN3 mediates tropism in Arabidopsis. Nature 415:806–809
Fukaki H, Fujisawa H, Tasaka M (1997) The RHG gene is involved in root and hypocotyl
gravitropism in Arabidopsis thaliana. Plant Cell Physiol 38:804–810
Ganguly A, Cho H-T (2012) The phosphorylation code is implicated in cell type-specific trafficking
of PIN-FORMEDs. Plant Signal Behav 7:1215–1218
Grossmann G, Guo WJ, Ehrhardt DW, Frommer WB, Sit RV, Quake SR, Meier M (2011) The
RootChip: an integrated microfluidic chip for plant science. Plant Cell 23:4234–4240
Guan CH, Rosen ES, Boonsirichai K, Poff KL, Masson PH (2003) The ARG1-LIKE2 gene of
Arabidopsis functions in a gravity signal transduction pathway that is genetically distinct from
the PGM pathway. Plant Physiol 133:100–112
Harper JE, Breton G, Harmon A (2004) Decoding Ca2+ signals through plant protein kinases.
Annu Rev Plant Biol 55:263–288
Harrison BR, Masson PH (2008) ARL2, ARG1 and PIN3 define a gravity signal transduction
pathway in root statocytes. Plant J 53:380–392
Hayatsu M, Suzuki S (2015) Electron probe X-ray microanalysis studies on the distribution change
of intra- and extracellular calcium in the elongation zone of horizontally reoriented soybean
roots. Microscopy (Oxf) 64:327–334
He W, Brumos J, Li H, Ji Y, Ke M, Gong X, Zeng Q, Li W, Zhang X, An F, Wen X, Li P, Chu J,
Sun X, Yan C, Yan N, Xie DY, Raikhel N, Yang Z, Stepanova AN, Alonso JM, Guo H (2011) A
small-molecule screen identifies L-kynurenine as a competitive inhibitor of TAA1/TAR activity
in ethylene-directed auxin biosynthesis and root growth in Arabidopsis. Plant Cell
23:3944–3960
Hejnowicz Z, Sondag C, Alt W, Sievers A (1998) Temporal course of graviperception in intermittently stimulated cress roots. Plant Cell Environ 21:1293–1300
Herranz R, Medina FJ (2014) Cell proliferation and plant development under novel altered gravity
environments. Plant Biol 16:23–30
Herranz R, Anken R, Boonstra J, Braun M, Christianen PCM, de Geest M, Hauslage J, Hilbig R,
Hill JA, Lebert M, Medina J, Vagt N, Ullrich O, van JWA L, Hemmersbach R (2013a) Groundbased facilities for simulation of microgravity, including terminology and organism-specific
recommendations for their use. Astrobiology 13. https://doi.org/10.1089/ast.2012.0876
Herranz R, Anken R, Boonstra J, Braun M, Christianen PCM, de Geest M, Hauslage J, Hilbig R,
Hill RJA, Lebert M, Medina FJ, Vagt N, Ullrich O, van Loon JJWA, Hemmersbach R (2013b)
Ground-based facilities for simulation of microgravity: organism-specific recommendations for
their use, and recommended terminology. Astrobiology 13:1–17
Hou G, Kramer VL, Wang YS, Chen R, Perbal G, Gilroy S, Blancaflor EB (2004) The promotion of
gravitropism in Arabidopsis roots upon actin disruption is coupled with the extended alkalinization of the columella cytoplasm and a persistent lateral auxin gradient. Plant J 39:113–125
Joo JH, Bae YS, Lee JS (2001) Role of auxin-induced reactive oxygen species in root gravitropism.
Plant Physiol 126:1055–1060
Kircher S, Schopfer P (2016) Priming and positioning of lateral roots in Arabidopsis. An approach
for an integrating concept. J Exp Bot 67:1411–1420
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107
plants. FEBS Lett 592:89–102
Dummer M, Michalski C, Essen LO, Rath M, Galland P, Forreiter C (2016) EHB1 and AGD12, two
calcium-dependent proteins affect gravitropism antagonistically in Arabidopsis thaliana. J Plant
Physiol 206:114–124
Fasano JM, Swanson SJ, Blancaflor EB, Dowd PE, Kao TH, Gilroy S (2001) Changes in root cap
pH are required for the gravity response of the Arabidopsis root. Plant Cell 13:907–921
Fisahn J, Yazdanbakhsh N, Klingele E, Barlow P (2012) Arabidopsis thaliana root growth kinetics
and lunisolar tidal acceleration. New Phytol 195:346–355
Fisahn J, Klingele E, Barlow P (2015) Lunar gravity affects leaf movement of Arabidopsis thaliana
in the international Space Station. Planta 241:1509–1518
Friml J, Wisniewska J, Benkova E, Mendgen K, Palme K (2002) Lateral relocation of auxin efflux
regulator PIN3 mediates tropism in Arabidopsis. Nature 415:806–809
Fukaki H, Fujisawa H, Tasaka M (1997) The RHG gene is involved in root and hypocotyl
gravitropism in Arabidopsis thaliana. Plant Cell Physiol 38:804–810
Ganguly A, Cho H-T (2012) The phosphorylation code is implicated in cell type-specific trafficking
of PIN-FORMEDs. Plant Signal Behav 7:1215–1218
Grossmann G, Guo WJ, Ehrhardt DW, Frommer WB, Sit RV, Quake SR, Meier M (2011) The
RootChip: an integrated microfluidic chip for plant science. Plant Cell 23:4234–4240
Guan CH, Rosen ES, Boonsirichai K, Poff KL, Masson PH (2003) The ARG1-LIKE2 gene of
Arabidopsis functions in a gravity signal transduction pathway that is genetically distinct from
the PGM pathway. Plant Physiol 133:100–112
Harper JE, Breton G, Harmon A (2004) Decoding Ca2+ signals through plant protein kinases.
Annu Rev Plant Biol 55:263–288
Harrison BR, Masson PH (2008) ARL2, ARG1 and PIN3 define a gravity signal transduction
pathway in root statocytes. Plant J 53:380–392
Hayatsu M, Suzuki S (2015) Electron probe X-ray microanalysis studies on the distribution change
of intra- and extracellular calcium in the elongation zone of horizontally reoriented soybean
roots. Microscopy (Oxf) 64:327–334
He W, Brumos J, Li H, Ji Y, Ke M, Gong X, Zeng Q, Li W, Zhang X, An F, Wen X, Li P, Chu J,
Sun X, Yan C, Yan N, Xie DY, Raikhel N, Yang Z, Stepanova AN, Alonso JM, Guo H (2011) A
small-molecule screen identifies L-kynurenine as a competitive inhibitor of TAA1/TAR activity
in ethylene-directed auxin biosynthesis and root growth in Arabidopsis. Plant Cell
23:3944–3960
Hejnowicz Z, Sondag C, Alt W, Sievers A (1998) Temporal course of graviperception in intermittently stimulated cress roots. Plant Cell Environ 21:1293–1300
Herranz R, Medina FJ (2014) Cell proliferation and plant development under novel altered gravity
environments. Plant Biol 16:23–30
Herranz R, Anken R, Boonstra J, Braun M, Christianen PCM, de Geest M, Hauslage J, Hilbig R,
Hill JA, Lebert M, Medina J, Vagt N, Ullrich O, van JWA L, Hemmersbach R (2013a) Groundbased facilities for simulation of microgravity, including terminology and organism-specific
recommendations for their use. Astrobiology 13. https://doi.org/10.1089/ast.2012.0876
Herranz R, Anken R, Boonstra J, Braun M, Christianen PCM, de Geest M, Hauslage J, Hilbig R,
Hill RJA, Lebert M, Medina FJ, Vagt N, Ullrich O, van Loon JJWA, Hemmersbach R (2013b)
Ground-based facilities for simulation of microgravity: organism-specific recommendations for
their use, and recommended terminology. Astrobiology 13:1–17
Hou G, Kramer VL, Wang YS, Chen R, Perbal G, Gilroy S, Blancaflor EB (2004) The promotion of
gravitropism in Arabidopsis roots upon actin disruption is coupled with the extended alkalinization of the columella cytoplasm and a persistent lateral auxin gradient. Plant J 39:113–125
Joo JH, Bae YS, Lee JS (2001) Role of auxin-induced reactive oxygen species in root gravitropism.
Plant Physiol 126:1055–1060
Kircher S, Schopfer P (2016) Priming and positioning of lateral roots in Arabidopsis. An approach
for an integrating concept. J Exp Bot 67:1411–1420
References
107
