The functional role of 14-3-3 proteins in plant-stress interactions
Main Article Content
Abstract
Article Details
References
Aitken AC, Heusden D, Isobe B, Roseboom T, Rosenfeld P (1992) 14-3-3 proteins: A highly conserved, widespread family of eukaryotic proteins. Trends in Biochemical Sciences 12:498-501
Berg D, Holzmann C, Riess O (2003) 14-3-3 proteins in the nervous system. Nature Review Neuroscience 4:752–762
Brechenmacher L, Kim MY, Benitez M, Li M, Joshi T, Calla B, Lee MP, Libault M, Vodkin LO, Xu D (2008) Transcription profiling of soybean nodulation by Bradyrhizobium japonicum. Molecular Plant-Microbe Interactions 21:631–645
Chen F, Li Q, Sun L, He Z (2006) The rice 14-3-3 gene family and its involvement in responses to biotic and abiotic stress. DNA Research 13:53–63
Chen Q, Kan Q, Wang P, Yu W, Yu Y (2015) Phosphorylation and interaction with the 14-3-3 protein of the plasma membrane H+-ATPase are involved in the regulation of magnesium-mediated increases in aluminum-induced citrate exudation in broad bean (Vicia faba L). Plant and Cell Physiology (doi:10.1093/pcp/pcv038)
Chevalier D, Morris E, Walker J (2009) 14-3-3 and FHA gomains mediate phosphoprotein interactions. Annual Review of Plant Biology 60:67-91
Cooper B, Clarke JD, Budworth P (2003) A network of rice genes associated with stress response and seed development. Proceedings of the National Academy of Sciences USA 100:4945-4950
Delauney AJ, Verma DPS (1993) Proline biosynthesis and osmoregulation in plants. The Plant Journal 4:215–223
Fuglsang AT, Visconti S, Drumm K, Jahn T, Stensballe A, Mattei B (1999) Binding of 14-3-3 protein to the plasma membrane H(+)-ATPase AHA2 involves the three C terminal residues Tyr(946)-Thr-Val and requires phosphorylation of Thr(947). Journal of Biological Chemistry 274:36774-36780
Gökirmak T, Paul A, Ferl R (2010) Plant phosphopeptide-binding proteins as signaling mediators. Current Opinion in Plant Biology 13:527-532
Klink V, Hosseini P, Matsye P, Alkharouf N, Matthews B (2009) A gene expression analysis of syncytia laser microdissected from the roots of the Glycine max (soybean) genotype PI 548402 (Peking) undergoing a resistant reaction after infection by Heterodera glycines (soybean cyst nematode). Plant Molecular Biology 71:525-567
Li X, Chen L, Dhaubhadel S (2012) 14-3-3 proteins regulate the intracellular localization of the transcriptional activator GmMYB176 and affect isoflavonoid synthesis in soybean. The Plant Journal 71:239-250
Liu B, Zhang S, Zhu X, Yang Q, Wu S, Mei M, Leung H (2004) Candidate defense genes as predictors of quantitative blast resistance in rice. Molecular Plant-Microbe Interactions 17:1146-1152
Lorenzo-Durán R, Robatzek S (2015) 14-3-3 proteins in plant-pathogen interactions. Molecular Plant-Microbe Interactions (doi: http://dx.doi.org/10.1094/MPMI-10-14-0322-CR)
Meng X, Chen X, Wang Y, Xiao R, Liu H, Wang X (2014) Characterization and subcellular localization of two 14-3-3 genes and their response to abiotic stress in wheat. Chinese Journal of Biotechnology 30:232-246
Moore B, Perez V (1967) Specific acidic proteins of the nervous system. Pages 343-359 In: Carlson FD (ed) Physiological and biochemical aspects of nervous integration. A symposium, Woods Hole, MA Prentice-Hall, Englewood Cliffs, N.J.
O’Donnell PJ, Truesdale MR, Calvert CM, Dorans A, Roberts MR, Bowles DJ (1998) A novel tomato gene that rapidly responds to wound- and pathogen-related signals. The Plant Journal 14:137–1342
Oh C, Martin G, (2011) Tomato 14-3-3 protein TFT7 interacts with a MAP kinase kinase to regulate immunity-associated programmed cell death mediated by diverse disease resistance proteins. Journal of Biological Chemistry 286:14129-14136
Purwestri YA, Ogaki Y, Tamaki S, Tsuji H, Shimamoto K (2009) The 14-3-3 protein GF14c acts as a negative regulator of flowering in rice by interacting with the florigen Hd3a. Plant and Cell Physiology 50:429–438
Radwan O, Wu X, Govindarajulu M, Libault M, Neece D, Oh S, Clough S (2012) 14-3-3 proteins SGF14c and SGF14l play critical roles during soybean nodulation. Plant Physiology 160:2125-2136
Reinhardt H, Yaffe M, (2013) Phospho-Ser/Thr-binding domains: Navigating the cell cycle and DNA damage response. Nature Reviews Molecular Cell Biology 14:563-580
Sehnke PC, Rosenquist M, Alsterfjord M (2002) Evolution and isoform specificity of plant 14-3-3 proteins. Plant Molecular Biology 50:1011–1018
Shin R, Alvarez S, Burch AY, Jez JM, Schachtman DP (2007) Phosphoproteomic identification of targets of the Arabidopsis sucrose nonfermenting-like kinase SnRK2.8 reveals a connection to metabolic processes. Proceedings of the National Academy of Sciences, USA 104:6460–6465
Sun X, Luo X, Sun M, Chen C, Ding X, Wang X, Yang S, Yu S, Jia B, Ji W, Cai H, Zhu Y (2014) A Glycine soja 14-3-3 protein GsGF14o participates in stomatal and root hair development and drought tolerance in Arabidopsis thaliana. Plant and Cell Physiology 55:99-118
Svennelid F, Olsson A, Piotrowski M, Rosenquist M, Ottman C,
Larsson C (1999) Phosphorylation of Thr-948 at the C terminus of the plasma pembrane H+-ATPase creates a binding site for the regulatory 14-3-3 protein. Plant Cell 11:2379-2392
Visconti S, Camoni L, Marra M, Aducci P (2008) Role of the 14-3-3 C-terminal region in the interaction with the plasma membrane H+-ATPase. Plant Cell Physiology 49:1887–1897
Wen F, Vanetten H, Tsaprailis G, Hawes M (2007) Extracellular proteins in pea root tip and border cell exudates. Plant Physiology 143:773-783
Xu WF, Shi WM (2006) Expression profiling of the 14-3-3 gene family in response to salt stress and potassium and iron deficiencies in young tomato (Solanum lycopersicum) roots: analysis by real-time RT-PCR. Annals of Botany 98:965–974
Xu W, Jia L, Shi W, Baluška F, Kronzucker H, Liang J (2013) Tomato 14-3-3 protein TFT4 modulates proton efflux, basipetal auxin transport and PKS5-J3 pathway in root growth response to alkaline stress. Plant Physiology 163:1817-1828
Yan J, He C,Wang J, Mao Z, Holaday SA (2004) Overexpression of the Arabidopsis 14-3-3 protein GF14λ in cotton leads to a “stay-green” phenotype and improves stress tolerance under moderate drought conditions. Plant Cell Physiology 45:1007–14
Yaffe MB, Elia AE (2001) Phosphoserine/ threonine-binding domains. Current Opinion in Cell Biology 13:131–138