Strock CF, DelaRiva LM, Lynch JP (2018) Reductioninrootsecondary growth as a strategy for
phosphorus acquisition. Plant Physiol 176:691–703
Sun H, Tao J, Liu S, Huang S, Chen S, Xie X et al (2014) Strigolactones are involved in phosphateand nitrate-deficiency-induced root development and auxin transport in rice. J Exp Bot
65:6735–6746
Sun H, Bi Y, Tao J, Huang S, Hou M, Xue R et al (2016) Strigolactones are required for nitric oxide
to induce root elongation in response to nitrogen and phosphate deficiencies in rice. Plant Cell
Environ 39:1473–1484
Tada Y (2019) The HKT transporter gene from Arabidopsis, AtHKT1; 1, is dominantly expressed
in shoot vascular tissue and root tips and is mild salt stress-responsive. Plants 8(7):204
Takabatake R, Hata S, Taniguchi M, Kouchi H, Sugiyama T, Izui K (1999) Isolation and
characterization of cDNAs encoding mitochondrial phosphate transporters in soybean, maize,
rice, and Arabidopsis. Plant Mol Biol 40(3):479–486
Takahashi H, Yamazaki M, Sasakura N, Watanabe A, Leustek T, De Almeida EJ, Engler G, Van
Montagu M, Saito K (1997) Regulation of sulfur assimilation in higher plants: a sulfate
transporter induced in sulfate-starved roots plays a central role in Arabidopsis thaliana. Proc
Natl Acad Sci USA 94:11102–11107
Takahashi H, Watanabe-Takahashi A, Smith FW, Blake-Kalff M, Hawkesford MJ, Saito K (2000)
The roles of three functional sulphate transporters involved in uptake and translocation of
sulphate in Arabidopsis thaliana. Plant J 23:171–182
Takahashi H, Kopriva S, Giordano M, Saito K, Hell R (2011) Sulfur assimilation in photosynthetic
organisms: molecular functions and regulations of transporters and assimilatory enzymes. Annu
Rev Plant Biol 62:157–184
Takahashi H, Buchner P, Yoshimoto N, Hawkesford MJ, Shiu SH (2012) Evolutionary
relationships and functional diversity of plant sulfate transporters. Front Plant Sci 2:119
Takano J, Noguchi K, Yasumori M, Kobayashi M, Gajdos Z, Miwa K, Fujiwara T (2002)
Arabidopsis boron transporter for xylem loading. Nature 420(6913):337–340
Takano J, Wada M, Ludewig U, Schaaf G, Von Wirén N, Fujiwara T (2006) The Arabidopsis major
intrinsic protein NIP5; 1 is essential for efficient boron uptake and plant development under
boron limitation. Plant Cell 18(6):1498–1509
Takano J, Miwa K, Fujiwara T (2008) Boron transport mechanisms: collaboration of channels and
transporters. Trends Plant Sci 13(8):451–457
Tan L, Qu M, Zhu Y et al (2020) Zinc transporter5 and zinc transporter9 function synergistically in
zinc/cadmium uptake. Plant Physiol 183(3):1235–1249
Tanaka S, Yamauchi A, Kono Y (1995) Root system morphology of four rice cultivars: response of
different component roots to nitrogen application. Jpn J Crop Sci 64:148–155
Tejada-Jiménez M, Llamas Á, Sanz-Luque E, Galván A, Fernández E (2007) A high-affinity
molybdate transporter in eukaryotes. Proc Natl Acad Sci 104(50):20126–20130
Tejada-Jiménez M, Galván A, Fernández E (2011) Algae and humans share a molybdate transporter. Proc Natl Acad Sci 108(16):6420–6425
Thor K (2019) Calcium—nutrient and messenger. Front Plant Sci 10:440
Ticconi CA, Lucero RD, Sakhonwasee S, Adamson AW, Creff A, Nussaume L, Abel S (2009)
ER-resident proteins PDR2 and LPR1 mediate the developmental response of root meristems to
phosphate availability. Proc Natl Acad Sci 106(33):14174–14179
Tilman D, Cassman KG, Matson PA, Naylor R, Polasky S (2002) Agricultural sustainability and
intensive production practices. Nature 418(6898):671–677
Tomatsu H, Takano J, Takahashi H, Watanabe-Takahashi A, Shibagaki N, Fujiwara T (2007) An
Arabidopsis thaliana high-affinity molybdate transporter required for efficient uptake of molybdate from soil. Proc Natl Acad Sci 104:18807–18812
Tominaga-Wada R, Nukumizu Y (2012) Expression analysis of an R3-Type MYB transcription
factor CPC-LIKE MYB4 (TRICHOMELESS2) and CPL4-related transcripts in Arabidopsis.
Int J Mol Sci 13(3):3478–3491
Tsai HH, Schmidt W (2017) One way or another? Iron uptake in plants. New Phytol 214
(2):500–505
5 Plant Roots and Mineral Nutrition: An Overview of Molecular Basis of Uptake and. . . 181
phosphorus acquisition. Plant Physiol 176:691–703
Sun H, Tao J, Liu S, Huang S, Chen S, Xie X et al (2014) Strigolactones are involved in phosphateand nitrate-deficiency-induced root development and auxin transport in rice. J Exp Bot
65:6735–6746
Sun H, Bi Y, Tao J, Huang S, Hou M, Xue R et al (2016) Strigolactones are required for nitric oxide
to induce root elongation in response to nitrogen and phosphate deficiencies in rice. Plant Cell
Environ 39:1473–1484
Tada Y (2019) The HKT transporter gene from Arabidopsis, AtHKT1; 1, is dominantly expressed
in shoot vascular tissue and root tips and is mild salt stress-responsive. Plants 8(7):204
Takabatake R, Hata S, Taniguchi M, Kouchi H, Sugiyama T, Izui K (1999) Isolation and
characterization of cDNAs encoding mitochondrial phosphate transporters in soybean, maize,
rice, and Arabidopsis. Plant Mol Biol 40(3):479–486
Takahashi H, Yamazaki M, Sasakura N, Watanabe A, Leustek T, De Almeida EJ, Engler G, Van
Montagu M, Saito K (1997) Regulation of sulfur assimilation in higher plants: a sulfate
transporter induced in sulfate-starved roots plays a central role in Arabidopsis thaliana. Proc
Natl Acad Sci USA 94:11102–11107
Takahashi H, Watanabe-Takahashi A, Smith FW, Blake-Kalff M, Hawkesford MJ, Saito K (2000)
The roles of three functional sulphate transporters involved in uptake and translocation of
sulphate in Arabidopsis thaliana. Plant J 23:171–182
Takahashi H, Kopriva S, Giordano M, Saito K, Hell R (2011) Sulfur assimilation in photosynthetic
organisms: molecular functions and regulations of transporters and assimilatory enzymes. Annu
Rev Plant Biol 62:157–184
Takahashi H, Buchner P, Yoshimoto N, Hawkesford MJ, Shiu SH (2012) Evolutionary
relationships and functional diversity of plant sulfate transporters. Front Plant Sci 2:119
Takano J, Noguchi K, Yasumori M, Kobayashi M, Gajdos Z, Miwa K, Fujiwara T (2002)
Arabidopsis boron transporter for xylem loading. Nature 420(6913):337–340
Takano J, Wada M, Ludewig U, Schaaf G, Von Wirén N, Fujiwara T (2006) The Arabidopsis major
intrinsic protein NIP5; 1 is essential for efficient boron uptake and plant development under
boron limitation. Plant Cell 18(6):1498–1509
Takano J, Miwa K, Fujiwara T (2008) Boron transport mechanisms: collaboration of channels and
transporters. Trends Plant Sci 13(8):451–457
Tan L, Qu M, Zhu Y et al (2020) Zinc transporter5 and zinc transporter9 function synergistically in
zinc/cadmium uptake. Plant Physiol 183(3):1235–1249
Tanaka S, Yamauchi A, Kono Y (1995) Root system morphology of four rice cultivars: response of
different component roots to nitrogen application. Jpn J Crop Sci 64:148–155
Tejada-Jiménez M, Llamas Á, Sanz-Luque E, Galván A, Fernández E (2007) A high-affinity
molybdate transporter in eukaryotes. Proc Natl Acad Sci 104(50):20126–20130
Tejada-Jiménez M, Galván A, Fernández E (2011) Algae and humans share a molybdate transporter. Proc Natl Acad Sci 108(16):6420–6425
Thor K (2019) Calcium—nutrient and messenger. Front Plant Sci 10:440
Ticconi CA, Lucero RD, Sakhonwasee S, Adamson AW, Creff A, Nussaume L, Abel S (2009)
ER-resident proteins PDR2 and LPR1 mediate the developmental response of root meristems to
phosphate availability. Proc Natl Acad Sci 106(33):14174–14179
Tilman D, Cassman KG, Matson PA, Naylor R, Polasky S (2002) Agricultural sustainability and
intensive production practices. Nature 418(6898):671–677
Tomatsu H, Takano J, Takahashi H, Watanabe-Takahashi A, Shibagaki N, Fujiwara T (2007) An
Arabidopsis thaliana high-affinity molybdate transporter required for efficient uptake of molybdate from soil. Proc Natl Acad Sci 104:18807–18812
Tominaga-Wada R, Nukumizu Y (2012) Expression analysis of an R3-Type MYB transcription
factor CPC-LIKE MYB4 (TRICHOMELESS2) and CPL4-related transcripts in Arabidopsis.
Int J Mol Sci 13(3):3478–3491
Tsai HH, Schmidt W (2017) One way or another? Iron uptake in plants. New Phytol 214
(2):500–505
5 Plant Roots and Mineral Nutrition: An Overview of Molecular Basis of Uptake and. . . 181
