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2019 | OriginalPaper | Chapter

Striving Towards Abiotic Stresses: Role of the Plant CDPK Superfamily Members

Authors : Abu Imran Baba, Gábor Rigó, Norbert Andrási, Olaf Tietz, Klaus Palme, László Szabados, Ágnes Cséplő

Published in: International Climate Protection

Publisher: Springer International Publishing

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Abstract

Climate change is known to affect the stability of agricultural production all over the world. One of the most important problems associated with agriculture is uptake of water and nutrients by plants. Plant roots are vital organs, which are involved in water and nutrient acquisition and gravitropic responses. This review describes the pivotal role of auxin in root growth, gravitropic and abiotic stress responses, focusing on the regulatory role of CDPK superfamily members in stress tolerance.

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Literature
1.
go back to reference Petricka, J.J., et al.: Control of Arabidopsis root development. Ann. Rev. Plant Biol. 63, 563–590 (2012)CrossRef Petricka, J.J., et al.: Control of Arabidopsis root development. Ann. Rev. Plant Biol. 63, 563–590 (2012)CrossRef
2.
go back to reference Saini, S., et al.: Auxin: a master regulator in plant root development. Plant Cell Rep. 32, 741–757 (2013)CrossRef Saini, S., et al.: Auxin: a master regulator in plant root development. Plant Cell Rep. 32, 741–757 (2013)CrossRef
3.
go back to reference Ljung, K.: Auxin metabolism and homeostasis during plant development. Development 140, 943–950 (2013)CrossRef Ljung, K.: Auxin metabolism and homeostasis during plant development. Development 140, 943–950 (2013)CrossRef
4.
go back to reference Sauer, M., Robert, S.: Auxin: simply complicated. J. Exp. Bot. 64, 2565–2577 (2013)CrossRef Sauer, M., Robert, S.: Auxin: simply complicated. J. Exp. Bot. 64, 2565–2577 (2013)CrossRef
5.
go back to reference De Smet, S., et al.: Gene networks involved in hormonal control of root development in Arabidopsis thaliana: a framework for studying its disturbance by metal stress. Int. J. Mol. Sci. 16, 19195–19224 (2015)CrossRef De Smet, S., et al.: Gene networks involved in hormonal control of root development in Arabidopsis thaliana: a framework for studying its disturbance by metal stress. Int. J. Mol. Sci. 16, 19195–19224 (2015)CrossRef
6.
go back to reference Sun, F., et al.: Salt modulates gravity signaling pathway to regulate growth direction of primary roots in Arabidopsis. Plant Physiol. 146, 178–188 (2008)CrossRef Sun, F., et al.: Salt modulates gravity signaling pathway to regulate growth direction of primary roots in Arabidopsis. Plant Physiol. 146, 178–188 (2008)CrossRef
7.
go back to reference Wang, Y., et al.: Auxin redistribution modulates plastic development of root system architecture under salt stress in Arabidopsis thaliana. J. Plant Physiol. 166, 1637–1645 (2009)CrossRef Wang, Y., et al.: Auxin redistribution modulates plastic development of root system architecture under salt stress in Arabidopsis thaliana. J. Plant Physiol. 166, 1637–1645 (2009)CrossRef
8.
go back to reference Reddy, A.S.N., et al.: Coping with stresses: roles of calcium- and calcium/calmodulin-regulated gene expression. Plant Cell 23(6), 2010–2032 (2011)CrossRef Reddy, A.S.N., et al.: Coping with stresses: roles of calcium- and calcium/calmodulin-regulated gene expression. Plant Cell 23(6), 2010–2032 (2011)CrossRef
9.
go back to reference Uga, Y., et al.: Control of root system architecture by DEEPER ROOTING 1 increases rice yield under drought conditions. Nat. Genet. 45(9), 1097–1102 (2013)CrossRef Uga, Y., et al.: Control of root system architecture by DEEPER ROOTING 1 increases rice yield under drought conditions. Nat. Genet. 45(9), 1097–1102 (2013)CrossRef
10.
go back to reference Miller, G., et al.: Reactive oxygen species homeostasis and signalling during drought and salinity stresses. Plant Cell Environ. 33(4), 453–467 (2010)CrossRef Miller, G., et al.: Reactive oxygen species homeostasis and signalling during drought and salinity stresses. Plant Cell Environ. 33(4), 453–467 (2010)CrossRef
11.
go back to reference Iglesias, M.J., et al.: Auxin signaling participates in the adaptive response against oxidative stress and salinity by interacting with redox metabolism in Arabidopsis. Plant Mol. Biol. 74, 215–222 (2010)CrossRef Iglesias, M.J., et al.: Auxin signaling participates in the adaptive response against oxidative stress and salinity by interacting with redox metabolism in Arabidopsis. Plant Mol. Biol. 74, 215–222 (2010)CrossRef
12.
go back to reference Hashiguchi, Y., et al.: Mechanism of higher plant gravity sensing. Am. J. Bot. 100, 91–100 (2013)CrossRef Hashiguchi, Y., et al.: Mechanism of higher plant gravity sensing. Am. J. Bot. 100, 91–100 (2013)CrossRef
13.
go back to reference Sato, E.M., et al.: New insights into root gravitropic signalling. J. Exp. Bot. 66(8), 2155–2165 (2015)CrossRef Sato, E.M., et al.: New insights into root gravitropic signalling. J. Exp. Bot. 66(8), 2155–2165 (2015)CrossRef
14.
go back to reference Blancaflor, E.B.: Regulation of plant gravity sensing and signaling by the actin cytoskeleton. Am. J. Bot. 100, 143–152 (2013)CrossRef Blancaflor, E.B.: Regulation of plant gravity sensing and signaling by the actin cytoskeleton. Am. J. Bot. 100, 143–152 (2013)CrossRef
15.
go back to reference Baldwin, K.L., et al.: Gravity sensing and signal transduction in vascular plant primary roots. Am. J. Bot. 100, 126–142 (2013)CrossRef Baldwin, K.L., et al.: Gravity sensing and signal transduction in vascular plant primary roots. Am. J. Bot. 100, 126–142 (2013)CrossRef
16.
go back to reference Swarup, R., Péret, B.: AUX/LAX family of auxin influx carriers—an overview. Front. Plant Sci. 3(Article 225) (2012) Swarup, R., Péret, B.: AUX/LAX family of auxin influx carriers—an overview. Front. Plant Sci. 3(Article 225) (2012)
17.
go back to reference Chen, M.K., et al.: ERECTA family genes regulate auxin transport in the shoot apical meristem and forming leaf primordia. Plant Physiol. 162, 1978–1991 (2013)CrossRef Chen, M.K., et al.: ERECTA family genes regulate auxin transport in the shoot apical meristem and forming leaf primordia. Plant Physiol. 162, 1978–1991 (2013)CrossRef
18.
go back to reference Lusching, C., Vert, G.: The dynamics of plant plasma membrane proteins: PINs and beyond. Development 141, 2924–2938 (2014)CrossRef Lusching, C., Vert, G.: The dynamics of plant plasma membrane proteins: PINs and beyond. Development 141, 2924–2938 (2014)CrossRef
20.
go back to reference Rigó, G., et al.: Inactivation of plasma membrane-localized CDPK-RELATED KINASE5 decelerates PIN2 exocytosis and root gravitropic response in Arabidopsis. Plant Cell 25, 1592–1608 (2013)CrossRef Rigó, G., et al.: Inactivation of plasma membrane-localized CDPK-RELATED KINASE5 decelerates PIN2 exocytosis and root gravitropic response in Arabidopsis. Plant Cell 25, 1592–1608 (2013)CrossRef
21.
go back to reference Nemoto, K., et al.: Members of the plant CRK superfamily are capable of trans,- and autophophorylation of tyrosin residues. J. Biol. Chem. 290(27), 16665–16677 (2015)CrossRef Nemoto, K., et al.: Members of the plant CRK superfamily are capable of trans,- and autophophorylation of tyrosin residues. J. Biol. Chem. 290(27), 16665–16677 (2015)CrossRef
22.
go back to reference Wang, J.P., et al.: Calcium dependent protein kinase (CDPK) and CDPK related kinase (CRK) gene families in tomato: genome wide identification and functional analyses in disease resistance. Mol. Genet. Genomics 291(2), 661–676 (2016)CrossRef Wang, J.P., et al.: Calcium dependent protein kinase (CDPK) and CDPK related kinase (CRK) gene families in tomato: genome wide identification and functional analyses in disease resistance. Mol. Genet. Genomics 291(2), 661–676 (2016)CrossRef
24.
go back to reference Harper, J.F., et al.: Decoding Ca(2+) signals through plant protein kinases. Ann. Rev. Plant Biol. 55, 263–288 (2004)CrossRef Harper, J.F., et al.: Decoding Ca(2+) signals through plant protein kinases. Ann. Rev. Plant Biol. 55, 263–288 (2004)CrossRef
25.
go back to reference The Arabidopsis Genome Initiative. Analysis of the genome sequence of the flowering plant Arabidopsis thaliana. Nature 408, 796–815 (2000) The Arabidopsis Genome Initiative. Analysis of the genome sequence of the flowering plant Arabidopsis thaliana. Nature 408, 796–815 (2000)
26.
go back to reference Hrabak, E.M., et al.: The Arabidopsis CDPK-SnRK superfamily of protein kinases. Plant Physiol. 132, 666–680 (2003)CrossRef Hrabak, E.M., et al.: The Arabidopsis CDPK-SnRK superfamily of protein kinases. Plant Physiol. 132, 666–680 (2003)CrossRef
27.
go back to reference Boudsocq, M., Sheen, J.: CDPKs in immune and stress signaling. Trends Plant Sci. 18, 30–40 (2013)CrossRef Boudsocq, M., Sheen, J.: CDPKs in immune and stress signaling. Trends Plant Sci. 18, 30–40 (2013)CrossRef
28.
go back to reference Hamel, L.P., et al.: Ancient signals: comparative genomics of green plant CDPKs. Trends Plant Sci. 19, 79–89 (2014)CrossRef Hamel, L.P., et al.: Ancient signals: comparative genomics of green plant CDPKs. Trends Plant Sci. 19, 79–89 (2014)CrossRef
29.
go back to reference Umezawa, T., et al.: SnRK2C, a SNF1-related protein kinase 2, improve drought tolerance by controlling stress-responsive gene expression in Arabidopsis thaliana. Proc. Natl. Acad. Sci. USA 101, 17306–17311 (2004)CrossRef Umezawa, T., et al.: SnRK2C, a SNF1-related protein kinase 2, improve drought tolerance by controlling stress-responsive gene expression in Arabidopsis thaliana. Proc. Natl. Acad. Sci. USA 101, 17306–17311 (2004)CrossRef
30.
go back to reference Podell, S., Gribskov, M.: Predicting N-terminal myristoylation sites in plant proteins. BMC Genom. 5, 37–52 (2004)CrossRef Podell, S., Gribskov, M.: Predicting N-terminal myristoylation sites in plant proteins. BMC Genom. 5, 37–52 (2004)CrossRef
31.
go back to reference Rigó, G., et al.: Suspension protoplasts as useful experimental tool to study localization of GFP-tagged proteins in Arabidopsis thaliana. Acta Biol. Szeged. 52, 59–61 (2008) Rigó, G., et al.: Suspension protoplasts as useful experimental tool to study localization of GFP-tagged proteins in Arabidopsis thaliana. Acta Biol. Szeged. 52, 59–61 (2008)
32.
go back to reference Wang, Y., et al.: Characterization of a calmodulin-regulated Ca2+-dependent-protein-kinase-related protein kinase, AtCRK1, from Arabidopsis. Biochem. J. 383, 73–81 (2004)CrossRef Wang, Y., et al.: Characterization of a calmodulin-regulated Ca2+-dependent-protein-kinase-related protein kinase, AtCRK1, from Arabidopsis. Biochem. J. 383, 73–81 (2004)CrossRef
33.
go back to reference Liu, H.T., et al.: The calmodulin-binding protein kinase 3 is a part of heat-shock signal transduction in Arabidopsis thaliana. Plant J. 55, 760–773 (2008)CrossRef Liu, H.T., et al.: The calmodulin-binding protein kinase 3 is a part of heat-shock signal transduction in Arabidopsis thaliana. Plant J. 55, 760–773 (2008)CrossRef
34.
go back to reference Tao, X.C., Lu, Y.T.: Loss of AtCRK1 gene function in Arabidopsis thaliana decreases tolerance to salt. J. Plant Biol. 56, 306–314 (2013)CrossRef Tao, X.C., Lu, Y.T.: Loss of AtCRK1 gene function in Arabidopsis thaliana decreases tolerance to salt. J. Plant Biol. 56, 306–314 (2013)CrossRef
35.
go back to reference Li, R.J., et al.: Arabidopsis cytosolic glutamine synthetase AtGLN1; 1 is a potential substrate of AtCRK3 involved in leaf senescence. Biochem. Biophys. Res. Commun. 342, 119–126 (2006)CrossRef Li, R.J., et al.: Arabidopsis cytosolic glutamine synthetase AtGLN1; 1 is a potential substrate of AtCRK3 involved in leaf senescence. Biochem. Biophys. Res. Commun. 342, 119–126 (2006)CrossRef
37.
go back to reference Leclercq, J., et al.: Molecular and biochemical characterization of LeCRK1, a ripening associated tomato CDPK-related kinase. J. Exp. Bot. 56, 25–35 (2005) Leclercq, J., et al.: Molecular and biochemical characterization of LeCRK1, a ripening associated tomato CDPK-related kinase. J. Exp. Bot. 56, 25–35 (2005)
38.
go back to reference Salopek-Sondi, B., et al.: Improvement of root architecture under abiotic stress through control of auxin homeostasis in Arabidopsis and Brassica crops. J. Endocytobiosis Cell Res. 26, 100–111 (2015) Salopek-Sondi, B., et al.: Improvement of root architecture under abiotic stress through control of auxin homeostasis in Arabidopsis and Brassica crops. J. Endocytobiosis Cell Res. 26, 100–111 (2015)
39.
go back to reference Miwa, K., et al.: Plants tolerant of high boron levels. Science 318, 1417 (2007)CrossRef Miwa, K., et al.: Plants tolerant of high boron levels. Science 318, 1417 (2007)CrossRef
40.
go back to reference Takanoa, J., et al.: Polar localization and degradation of Arabidopsis boron transporters through distinct trafficking pathways. Proc. Natl. Acad. Sci. U.S.A. 107, 5220–5225 (2010)CrossRef Takanoa, J., et al.: Polar localization and degradation of Arabidopsis boron transporters through distinct trafficking pathways. Proc. Natl. Acad. Sci. U.S.A. 107, 5220–5225 (2010)CrossRef
Metadata
Title
Striving Towards Abiotic Stresses: Role of the Plant CDPK Superfamily Members
Authors
Abu Imran Baba
Gábor Rigó
Norbert Andrási
Olaf Tietz
Klaus Palme
László Szabados
Ágnes Cséplő
Copyright Year
2019
DOI
https://doi.org/10.1007/978-3-030-03816-8_14