Monshausen GB, Miller ND, Murphy AS, Gilroy S (2011) Dynamics of auxin-dependent Ca
2+ and
pH signaling in root growth revealed by integrating high-resolution imaging with automated
computer vision-based analysis. Plant J 65:309–318. https://doi.org/10.1111/j.1365-313X.
2010.04423.x
Mullen JL, Hangarter RP (2003) Genetic analysis of the gravitropic set-point angle in lateral roots
of Arabidopsis. Adv Space Res 31:2229–2236
Neef M, Denn T, Ecke M, Hampp R (2016) Intracellular calcium decreases upon hyper gravitytreatment of Arabidopsis thaliana cell cultures. Microgravity Sci Technol 28:331–336. https://
doi.org/10.1007/s12217-015-9457-6
Nemec B (1900) Ueber die Art der Wahrnehmung des Schwerkraftreizes bei den Pflanzen. Ber
Dtsch Bot Ges 18:241–245
Palmieri M, Kiss JZ (2007) The role of plastids in gravitropism. In: The structure and function of
plastids. Springer, Dordrecht, pp 507–525
Perbal G, Driss-Ecole D (1994) Sensitivity to gravistimulus of lentil seedling roots grown in space
during the IML 1 mission of spacelab. Physiol Plant 90:313–318. https://doi.org/10.1111/j.
1399-3054.1994.tb00393.x
Perbal G, Lefranc A, Jeune B, Driss-Ecole D (2004) Mechanotransduction in root gravity sensing
cells. Physiol Plant 120:303–311. https://doi.org/10.1111/j.0031-9317.2004.0233.x
Perera IY (2006) A universal role for inositol 1,4,5-trisphosphate-mediated signaling in plant
gravitropism. Plant Physiol 140:746–760. https://doi.org/10.1104/pp.105.075119
Perera IY, Heilmann I, Boss WF (1999) Transient and sustained increases in inositol 1,4,5trisphosphate precede the differential growth response in gravistimulated maize pulvini. Proc
Natl Acad Sci U S A 96:5838–5843. https://doi.org/10.1073/pnas.96.10.5838
Pfeffer W (1904) Pflanzenphysiologie: ein Handbuch der Lehre vom Stoffwechsels und
Kraftwechsels in der Pflanze. W. Engelmann, Leipzig
Robert HS, Offringa R (2008) Regulation of auxin transport polarity by AGC kinases. Curr Opin
Plant Biol 11:495–502
Rubery PH, Sheldrake AR (1974) Carrier-mediated auxin transport. Planta 118:101–121. https://
doi.org/10.1007/BF00388387
Sachs J (1882) Über Ausschlieβung der geotropischen und heliotropischen Krümmungen während
des Wachsens. Wilhelm Engelmann, Leipzig
Schüler O, Hemmersbach R, Böhmer M (2015) A bird’s-eye view of molecular changes in plant
gravitropism using omics techniques. Front Plant Sci 6. https://doi.org/10.3389/fpls.2015.01176
Shimomura O, Johnson FH, Saiga Y (1962) Extraction, purification and properties of aequorin, a
bioluminescent protein from the luminous gydromedusan, Aequorea. J Cell Comp Physiol
59:223–239. https://doi.org/10.1002/jcp.1030590302
Sievers A, Volkmann D (1971) Verursacht differentieller Druck der Amyloplasten auf ein
komplexes Endomembransystem die Geoperzeption in Wurzeln? Planta 102:160–172. https://
doi.org/10.1007/BF00384870
Sievers A, Volkmann D (1977) Ultrastructure of gravity-perceiving cells in plant roots. Proc R Soc
Lond B 199:525–536. https://doi.org/10.1098/rspb.1977.0160
Sievers A, Kruse S, Kuo-Huang LL, Wendt M (1989) Statoliths and microfilaments in plant cells.
Planta 179:275–278. https://doi.org/10.1007/BF00393699
Spitzer C, Reyes FC, Buono R et al (2009) The ESCRT-related CHMP1A and B proteins mediate
multivesicular body sorting of auxin carriers in Arabidopsis and are required for plant development. Plant Cell Online 21:749–766. https://doi.org/10.1105/tpc.108.064865
Stinemetz CL, Kuzmanoff KM, Evans ML, Jarrett HW (1987) Correlation between calmodulin
activity and gravitropic sensitivity in primary roots of maize. Plant Physiol 84:1337–1342.
https://doi.org/10.1104/pp.84.4.1337
Toyota M, Gilroy S (2013) Gravitropism and mechanical signaling in plants. Am J Bot
100:111–125. https://doi.org/10.3732/ajb.1200408
References
91
2+ and
pH signaling in root growth revealed by integrating high-resolution imaging with automated
computer vision-based analysis. Plant J 65:309–318. https://doi.org/10.1111/j.1365-313X.
2010.04423.x
Mullen JL, Hangarter RP (2003) Genetic analysis of the gravitropic set-point angle in lateral roots
of Arabidopsis. Adv Space Res 31:2229–2236
Neef M, Denn T, Ecke M, Hampp R (2016) Intracellular calcium decreases upon hyper gravitytreatment of Arabidopsis thaliana cell cultures. Microgravity Sci Technol 28:331–336. https://
doi.org/10.1007/s12217-015-9457-6
Nemec B (1900) Ueber die Art der Wahrnehmung des Schwerkraftreizes bei den Pflanzen. Ber
Dtsch Bot Ges 18:241–245
Palmieri M, Kiss JZ (2007) The role of plastids in gravitropism. In: The structure and function of
plastids. Springer, Dordrecht, pp 507–525
Perbal G, Driss-Ecole D (1994) Sensitivity to gravistimulus of lentil seedling roots grown in space
during the IML 1 mission of spacelab. Physiol Plant 90:313–318. https://doi.org/10.1111/j.
1399-3054.1994.tb00393.x
Perbal G, Lefranc A, Jeune B, Driss-Ecole D (2004) Mechanotransduction in root gravity sensing
cells. Physiol Plant 120:303–311. https://doi.org/10.1111/j.0031-9317.2004.0233.x
Perera IY (2006) A universal role for inositol 1,4,5-trisphosphate-mediated signaling in plant
gravitropism. Plant Physiol 140:746–760. https://doi.org/10.1104/pp.105.075119
Perera IY, Heilmann I, Boss WF (1999) Transient and sustained increases in inositol 1,4,5trisphosphate precede the differential growth response in gravistimulated maize pulvini. Proc
Natl Acad Sci U S A 96:5838–5843. https://doi.org/10.1073/pnas.96.10.5838
Pfeffer W (1904) Pflanzenphysiologie: ein Handbuch der Lehre vom Stoffwechsels und
Kraftwechsels in der Pflanze. W. Engelmann, Leipzig
Robert HS, Offringa R (2008) Regulation of auxin transport polarity by AGC kinases. Curr Opin
Plant Biol 11:495–502
Rubery PH, Sheldrake AR (1974) Carrier-mediated auxin transport. Planta 118:101–121. https://
doi.org/10.1007/BF00388387
Sachs J (1882) Über Ausschlieβung der geotropischen und heliotropischen Krümmungen während
des Wachsens. Wilhelm Engelmann, Leipzig
Schüler O, Hemmersbach R, Böhmer M (2015) A bird’s-eye view of molecular changes in plant
gravitropism using omics techniques. Front Plant Sci 6. https://doi.org/10.3389/fpls.2015.01176
Shimomura O, Johnson FH, Saiga Y (1962) Extraction, purification and properties of aequorin, a
bioluminescent protein from the luminous gydromedusan, Aequorea. J Cell Comp Physiol
59:223–239. https://doi.org/10.1002/jcp.1030590302
Sievers A, Volkmann D (1971) Verursacht differentieller Druck der Amyloplasten auf ein
komplexes Endomembransystem die Geoperzeption in Wurzeln? Planta 102:160–172. https://
doi.org/10.1007/BF00384870
Sievers A, Volkmann D (1977) Ultrastructure of gravity-perceiving cells in plant roots. Proc R Soc
Lond B 199:525–536. https://doi.org/10.1098/rspb.1977.0160
Sievers A, Kruse S, Kuo-Huang LL, Wendt M (1989) Statoliths and microfilaments in plant cells.
Planta 179:275–278. https://doi.org/10.1007/BF00393699
Spitzer C, Reyes FC, Buono R et al (2009) The ESCRT-related CHMP1A and B proteins mediate
multivesicular body sorting of auxin carriers in Arabidopsis and are required for plant development. Plant Cell Online 21:749–766. https://doi.org/10.1105/tpc.108.064865
Stinemetz CL, Kuzmanoff KM, Evans ML, Jarrett HW (1987) Correlation between calmodulin
activity and gravitropic sensitivity in primary roots of maize. Plant Physiol 84:1337–1342.
https://doi.org/10.1104/pp.84.4.1337
Toyota M, Gilroy S (2013) Gravitropism and mechanical signaling in plants. Am J Bot
100:111–125. https://doi.org/10.3732/ajb.1200408
References
91
