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270:28479–28486
Kant S, Peng M, Rothstein SJ (2011) Genetic regulation by NLA and microRNA827 for
maintaining nitrate-dependent phosphate homeostasis in Arabidopsis. PLoS Genet 7:e1002021
Kawashima CG, Yoshimoto N, Maruyama-Nakashita A, Tsuchiya YN, Saito K, Takahashi H,
Dalmay T (2009) Sulphur starvation induces the expression of microRNA-395 and one of its
target genes but in different cell types. Plant J 57:313–321
Kawashima CG, Matthewman CA, Huang S, Lee BR, Yoshimoto N, Koprivova A, Takahashi H
(2011) Interplay of SLIM1 and miR395 in the regulation of sulfate assimilation in Arabidopsis.
Plant J 66:863–876
Keisham M, Mukherjee S, Bhatla SC (2018) Mechanisms of sodium transport in plants—
progresses and challenges. Int J Mol Sci 19:647
Kellermeier F, Armengaud P, Seditas TJ, Danku J, Salt DE, Amtmann A (2014) Analysis of the root
system architecture of Arabidopsis provides a quantitative readout of crosstalk between
nutritional signals. Plant Cell 26:1480–1496
Kim SA, Guerinot ML (2007) Mining iron: iron uptake and transport in plants. FEBS Lett
581:2273–2280
Kim SA, Punshon T, Lanzirotti A, Li L, Alonso JM, Ecker JR, Guerinot ML (2006) Localization of
iron in Arabidopsis seed requires the vacuolar membrane transporter VIT1. Science
314:1295–1298
Kindu GA, Tang J, Yin X, Struik PC (2014) Quantitative trait locus analysis of nitrogen use
efficiency in barley (Hordeum vulgare L). Euphytica 199:207–221
Kirik V, Simon M, Wester K, Schiefelbein J, Hulskamp M (2004) ENHANCER of TRYand CPC
2 (ETC2) reveals redundancy in the region-specific control of trichome development of
Arabidopsis. Plant Mol Biol 55:389–398
Kobayashi T, Nishizawa NK (2012) Iron uptake, translocation, and regulation in higher plants.
Annu Rev Plant Biol 63:131–152
Kopriva S, Büchert T, Fritz G, Suter M, Weber M, Benda R, Schaller J, Feller U, Schürmann P,
Schünemann V, Trautwein AX, Kroneck PMH, Brunold C (2001) Plant adenosine 50 -phosphosulfate reductase is a novel iron sulfur protein. J Biol Chem 276:42881–42886
Koprivova A, Kopriva S (2016) Hormonal control of sulfate uptake and assimilation. Plant Mol
Biol 91(6):617–627
Koprivova A, Giovannetti M, Baraniecka P, Lee BR, Grondin C, Loudet O et al (2013) Natural
variation in the ATPS1 Isoform of ATP sulfurylase contributes to the control of sulfate levels in
Arabidopsis. Plant Physiol 163:1133–1141
Krouk G (2016) Hormones and nitrate: a two-way connection. Plant Mol Biol 91:599–606
Krouk G, Lacombe B, Bielach A, Perrine-Walker F, Malinska K, Mounier E, Hoyerova K,
Tillard P, Leon S, Ljung K et al (2010) Nitrate regulated auxin transport by NRT11 defines a
mechanism for nutrient sensing in plants. Dev Cell 18:927–937
Krüger C, Berkowitz O, Stephan UW, Hell R (2002) A metal-binding member of the late
embryogenesis abundant protein family transports iron in the phloem of Ricinus communis
L. J Biol Chem 277:25062–25069
Kumar S, Asif MH, Chakrabarty D, Tripathi RD, Dubey RS, Trivedi PK (2015) Comprehensive
analysis of regulatory elements of the promoters of rice sulfate transporter gene family and
functional characterization of OsSul1;1 promoter under different metal stress. Plant Signal
Behav 10:e990843
Kumar S, Khare R, Trivedi PK (2019) Arsenic-responsive high-affinity rice sulphate transporter,
OsSultr1; 1, provides abiotic stress tolerance under limiting sulphur condition. J Hazard Mater
373:753–762
Lagerstedt JO, Zvyagilskaya R, Pratt JR, Pattison-Granberg J, Kruckeberg AL, Berden JA, Persson
BL (2002) Mutagenic and functional analysis of the C-terminus of Saccharomyces cerevisiae
Pho84 phosphate transporter. FEBS Lett 526:31–37
174
E. Bhardwaj et al.
