Sedbrook JC, Chen R, Masson PH (1999) ARG1 (altered response to gravity) encodes a DnaJ-like
protein that potentially interacts with the cytoskeleton. Proc Natl Acad Sci U S A 96:1140–1145
Singh R, Singh S, Parihar P, Mishra RK, Tripathi DK, Singh VP, Chauhan DK, Prasad SM (2016)
Reactive oxygen species (ROS): beneficial companions of plants’ developmental processes.
Front Plant Sci 7:1299
Steinmann T, Geldner N, Grebe M, Mangold S, Jackson CL, Paris S, Galweiler L, Palme K, Jurgens
G (1999) Coordinated polar localization of auxin efflux carrier PIN1 by GNOM ARF GEF.
Science 286:316–318
Stepanova AN, Alonso JM (2005) Arabidopsis ethylene signaling pathway. Sci STKE 2005:1–4
Stepanova AN, Hoyt JM, Hamilton AA, Alonso JM (2005) A link between ethylene and auxin
uncovered by the characterization of two root-specific ethylene-insensitive mutants in
Arabidopsis. Plant Cell 17:2230–2242
Stepanova AN, Yun J, Likhacheva AV, Alonso JM (2007) Multilevel interactions between ethylene
and auxin in Arabidopsis roots. Plant Cell 19:2169–2185
Stepanova AN, Robertson-Hoyt J, Yun J, Benavente LM, Xie DY, Dolezal K, Schlereth A,
Jurgens G, Alonso JM (2008) TAA1-mediated auxin biosynthesis is essential for hormone
crosstalk and plant development. Cell 133:177–191
Street IH, Mathews DE, Yamburkenko MV, Sorooshzadeh A, John RT, Swarup R, Bennett MJ,
Kieber JJ, Schaller GE (2016) Cytokinin acts through the auxin influx carrier AUX1 to regulate
cell elongation in the root. Development 143:3982–3993
Tan TH, Silverberg JL, Floss DS, Harrison MJ, Henley CL, Cohen I (2015) How grow-and-switch
gravitropism generates root coiling and root waving growth responses in Medicago truncatula.
Proc Natl Acad Sci U S A 112:12938–12943
Taylor LP, Grotewold E (2005) Flavonoids as developmental regulators. Curr Opin Plant Biol
8:317–323
Teale W, Palme K (2018) Naphthylphthalamic acid and the mechanism of polar auxin transport.
J Exp Bot 69:303–312
Tsuchisaka A, Theologis A (2004) Unique and overlapping expression patterns among the
Arabidopsis 1-amino-cyclopropane-1-carboxylate synthase gene family members. Plant Physiol
136:2982–3000
Vandenbussche F, Petrasek J, Zadnikova P, Hoyerova K, Pesek B, Raz V, Swarup R, Bennett M,
Zazimalova E, Benkova E, Van Der Straeten D (2010) The auxin influx carriers AUX1 and
LAX3 are involved in auxin-ethylene interactions during apical hook development in
Arabidopsis thaliana seedlings. Development 137:597–606
Vandenbussche F, Vaseva I, Vissenberg K, Van Der Straeten D (2012) Ethylene in vegetative
development: a tale with a riddle. New Phytol 194:895–909
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. FEBS Lett 583:2521–2526
Weller B, Zourelidou M, Frank L, Barbosa ICR, Fastner A, Richter S, Juergens G, Hammes UZ,
Schwechheimer C (2017) Dynamic PIN-FORMED auxin efflux carrier phosphorylation at
the plasma membrane controls auxin efflux-dependent growth. Proc Natl Acad Sci USA 114:
E887–E896
Woeste KE, Ye C, Kieber JJ (1999) Two Arabidopsis mutants that overproduce ethylene are
affected in the posttranscriptional regulation of 1-aminocyclopropane-1-carboxylic acid
synthase. Plant Physiol 119:521–530
Wolverton C, Mullen JL, Ishikawa H, Evans ML (2002) Root gravitropism in response to a signal
originating outside of the cap. Planta 215:153–157
Wolverton C, Paya AM, Toska J (2011) Root cap angle and gravitropic response rate are uncoupled
in the Arabidopsis pgm-1 mutant. Physiol Plant 141:373–382
Xuan W, Audenaert D, Parizot B, Moller BK, Njo MF, De Rybel B, De Rop G, Van Isterdael G,
Mahonen AP, Vanneste S, Beeckman T (2015) Root cap-derived auxin pre-patterns the
longitudinal axis of the Arabidopsis root. Curr Biol 25:1381–1388
110
7 Gravitropism in Higher Plants: Molecular Aspects
protein that potentially interacts with the cytoskeleton. Proc Natl Acad Sci U S A 96:1140–1145
Singh R, Singh S, Parihar P, Mishra RK, Tripathi DK, Singh VP, Chauhan DK, Prasad SM (2016)
Reactive oxygen species (ROS): beneficial companions of plants’ developmental processes.
Front Plant Sci 7:1299
Steinmann T, Geldner N, Grebe M, Mangold S, Jackson CL, Paris S, Galweiler L, Palme K, Jurgens
G (1999) Coordinated polar localization of auxin efflux carrier PIN1 by GNOM ARF GEF.
Science 286:316–318
Stepanova AN, Alonso JM (2005) Arabidopsis ethylene signaling pathway. Sci STKE 2005:1–4
Stepanova AN, Hoyt JM, Hamilton AA, Alonso JM (2005) A link between ethylene and auxin
uncovered by the characterization of two root-specific ethylene-insensitive mutants in
Arabidopsis. Plant Cell 17:2230–2242
Stepanova AN, Yun J, Likhacheva AV, Alonso JM (2007) Multilevel interactions between ethylene
and auxin in Arabidopsis roots. Plant Cell 19:2169–2185
Stepanova AN, Robertson-Hoyt J, Yun J, Benavente LM, Xie DY, Dolezal K, Schlereth A,
Jurgens G, Alonso JM (2008) TAA1-mediated auxin biosynthesis is essential for hormone
crosstalk and plant development. Cell 133:177–191
Street IH, Mathews DE, Yamburkenko MV, Sorooshzadeh A, John RT, Swarup R, Bennett MJ,
Kieber JJ, Schaller GE (2016) Cytokinin acts through the auxin influx carrier AUX1 to regulate
cell elongation in the root. Development 143:3982–3993
Tan TH, Silverberg JL, Floss DS, Harrison MJ, Henley CL, Cohen I (2015) How grow-and-switch
gravitropism generates root coiling and root waving growth responses in Medicago truncatula.
Proc Natl Acad Sci U S A 112:12938–12943
Taylor LP, Grotewold E (2005) Flavonoids as developmental regulators. Curr Opin Plant Biol
8:317–323
Teale W, Palme K (2018) Naphthylphthalamic acid and the mechanism of polar auxin transport.
J Exp Bot 69:303–312
Tsuchisaka A, Theologis A (2004) Unique and overlapping expression patterns among the
Arabidopsis 1-amino-cyclopropane-1-carboxylate synthase gene family members. Plant Physiol
136:2982–3000
Vandenbussche F, Petrasek J, Zadnikova P, Hoyerova K, Pesek B, Raz V, Swarup R, Bennett M,
Zazimalova E, Benkova E, Van Der Straeten D (2010) The auxin influx carriers AUX1 and
LAX3 are involved in auxin-ethylene interactions during apical hook development in
Arabidopsis thaliana seedlings. Development 137:597–606
Vandenbussche F, Vaseva I, Vissenberg K, Van Der Straeten D (2012) Ethylene in vegetative
development: a tale with a riddle. New Phytol 194:895–909
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. FEBS Lett 583:2521–2526
Weller B, Zourelidou M, Frank L, Barbosa ICR, Fastner A, Richter S, Juergens G, Hammes UZ,
Schwechheimer C (2017) Dynamic PIN-FORMED auxin efflux carrier phosphorylation at
the plasma membrane controls auxin efflux-dependent growth. Proc Natl Acad Sci USA 114:
E887–E896
Woeste KE, Ye C, Kieber JJ (1999) Two Arabidopsis mutants that overproduce ethylene are
affected in the posttranscriptional regulation of 1-aminocyclopropane-1-carboxylic acid
synthase. Plant Physiol 119:521–530
Wolverton C, Mullen JL, Ishikawa H, Evans ML (2002) Root gravitropism in response to a signal
originating outside of the cap. Planta 215:153–157
Wolverton C, Paya AM, Toska J (2011) Root cap angle and gravitropic response rate are uncoupled
in the Arabidopsis pgm-1 mutant. Physiol Plant 141:373–382
Xuan W, Audenaert D, Parizot B, Moller BK, Njo MF, De Rybel B, De Rop G, Van Isterdael G,
Mahonen AP, Vanneste S, Beeckman T (2015) Root cap-derived auxin pre-patterns the
longitudinal axis of the Arabidopsis root. Curr Biol 25:1381–1388
110
7 Gravitropism in Higher Plants: Molecular Aspects
