Skip to main content
Log in

Response of Nitrate Reductase to Exogenous Application of 5-Aminolevulinic Acid in Barley Plants

  • Published:
Journal of Plant Growth Regulation Aims and scope Submit manuscript

Abstract

Information on mechanisms and the pathway for plant nitrogen assimilation by 5-aminolevulinic acid (ALA) is still limited. In addition, the molecular mechanism of nitrate reductase (NR) regulation in response to ALA treatment in plants has not been fully elucidated. In this study, we investigate the effect of different concentrations of exogenous ALA on expression, protein content, and enzyme activity of NR in 7-day-old barley (Hordeum vulgare L.) seedlings grown in the presence of its substrate, KNO3. Our data indicate that the nitrate-inducible Nar1 gene is up-regulated, and protein content and enzyme activity also increase in leaves of barley seedlings treated with ALA. We suggest that one of the mechanisms of ALA-enhanced growth and development of barley plants is regulation of NR at the transcriptional and translational levels.

This is a preview of subscription content, log in via an institution to check access.

Access this article

Price excludes VAT (USA)
Tax calculation will be finalised during checkout.

Instant access to the full article PDF.

Fig. 1
Fig. 2
Fig. 3

Similar content being viewed by others

References

  • Akram NA, Ashraf M (2013) Regulation in plant stress tolerance by a potential plant growth regulator, 5-aminolevulinic acid. J Plant Growth Regul 32:663–679

    Article  CAS  Google Scholar 

  • Bradford MM (1976) A rapid and sensitive method for quantification of microgram quantities of protein utilizing the principle of protein–dye binding. Anal Biochem 72:248–254

    Article  CAS  PubMed  Google Scholar 

  • Campbell WH, Kinghorn KR (1990) Functional domains of assimilatory nitrate reductases and nitrite reductases. Trends Biochem Sci 15:315–319

    Article  CAS  PubMed  Google Scholar 

  • Campell WH (1999) Nitrate reductase structure, function and regulation: bridging the gap between biochemistry and physiology. Annu Rev Plant Physiol Plant Mol Biol 50:277–305

    Article  Google Scholar 

  • Czarnecki O, Gläßer C, Chen J, Mayer K, Grimm B (2012) Evidence for a contribution of ALA synthesis to plastid-to-nucleus signaling. Front Plant Sci. doi:10.3389/fpls.2012.00236

    PubMed Central  PubMed  Google Scholar 

  • Fischer K, Barbier GG, Hecht HJ, Mendel RR, Campbell WH, Schwarz G (2005) Structural basis of eukaryotic nitrate reduction: crystal structures of the nitrate reductase active site. Plant Cell 17:1167–1179

    Article  PubMed Central  CAS  PubMed  Google Scholar 

  • Foyer CH, Parry M, Noctor G (2003) Markers and signals associated with nitrogen assimilation in higher plants. J Exp Bot 54:585–593

    Article  CAS  PubMed  Google Scholar 

  • Garg SK (2013) Role and hormonal regulation of nitrate reductase activity in higher plants: a review. Plant Sci Feed 3:13–20

    Google Scholar 

  • Hotta Y, Tanaka T, Takaoka H, Takeuchi Y, Konnai M (1997) Promotive effects of 5-aminolevulinic acid on the yield of several crops. Plant Growth Regul 22:109–114

    Article  CAS  Google Scholar 

  • Iwai K, Saito A, Leeuwen J, Tanaka T, Takeuchi Y (2005) A new functional fertilizer containing 5-aminolevulinic acid promoted hydroponically grown vegetables in the Netherlands. Acta Hort 697:351–355

    Article  CAS  Google Scholar 

  • Jain A, Srivastava HS (1981) Effect of salicylic acid on nitrate reductase activity in maize seedlings. Physiol Plant 51:339–342

    Article  CAS  Google Scholar 

  • Jossier M, Bouly JP, Meimoun P, Arjmand A, Lessard P, Hawley S, Hardie G (2009) SnRK1 (SNF1-related kinase 1) has a central role in sugar and ABA signaling in Arabidopsis thaliana. Plant J 59:316–328

    Article  CAS  PubMed  Google Scholar 

  • Kaiser WM, Huber SC (2001) Post-translational regulation of nitrate reductase: mechanism, physiological relevance and environmental triggers. J Exp Bot 52:1981–1989

    Article  CAS  PubMed  Google Scholar 

  • Kleinhofs A, Warner RL, Melzer JM (1989) Genetics and molecular biology of higher plant nitrate reductases. Recent Adv Phytochem 23:117–155

    CAS  Google Scholar 

  • Krouk G, Lacombe B, Bielach A, Perrine-Walker F (2010) Nitrate-regulated auxin transport by NRT 1.1 defines a mechanism for nutrient sensing in plants. Dev Cell 18:927–937

    Article  CAS  PubMed  Google Scholar 

  • Kuo TM, Somers DA, Kleinhofs A, Warner RL (1982) NADH-nitrate reductase in barley leaves: identification and amino acid composition of subunit protein. Biochim Biophys Acta 708:75–81

    Article  CAS  Google Scholar 

  • Laemmli UK (1970) Cleavage of structural proteins during the assembly of the head of bacteriophage T4. Nature 227(5259):680–685

    Article  CAS  PubMed  Google Scholar 

  • Lewis OA (1986) Plants and nitrogen studies in biology. Edward Arnold, London

    Google Scholar 

  • Maruyama-Nakashita A, Hirai MY, Funada S, Fueki S (2010) Exogenous application of 5-aminolevulinic acid increases the transcript levels of sulfur transport and assimilatory genes, sulfate uptake, and cysteine and glutathione contents in Arabidopsis thaliana. Soil Sci Plant Nutr 56:281–288

    Article  CAS  Google Scholar 

  • Mishra SN, Srivastava HS (1983) Stimulation of nitrate reductase activity by delta aminolevulinic acid in excised maize leaves. Experientia 39:1118–1120

    Article  CAS  Google Scholar 

  • Park BS, Song JT, Seo HS (2011) Arabidopsis nitrate reductase activity is stimulated by the E3 SUMO ligase AtSIZ1. Nat Commun. doi:10.1038/ncomms1408

    Google Scholar 

  • Shah SH (2008) Effects of nitrogen fertilization on nitrate reductase activity, protein and oil yields of Nigella sativa L. as affected by foliar GA3 application. Turk J Bot 32:165–170

    Google Scholar 

  • Stitt M, Muller C, Matt P, Gibson Y, Carillo P, Morcuende R, Scheible WR, Krapp A (2002) Steps towards an integrated view of nitrogen metabolism. J Exp Bot 53:959–970

    Article  CAS  PubMed  Google Scholar 

  • Sueyoshi K, Kleinhofs A, Warner RL (1995) Expression of NADH-specific and NAD(P)H-bispecific nitrate reductase genes in response to nitrate in barley. Plant Physiol 107:1303–1311

    PubMed Central  CAS  PubMed  Google Scholar 

  • Tanaka R, Tanaka A (2007) Tetrapyrrole biosynthesis in higher plants. Annu Rev Plant Biol 58:321–346

    Article  CAS  PubMed  Google Scholar 

  • Tanaka T, Iwai K, Watanabe K, Hotta Y (2005) Development of 5-aminolevulinic acid for agriculture uses. Regul Plant Growth Dev 40:22–29

    CAS  Google Scholar 

  • Tripathy BC, Chakraborty N (1991) 5-Aminolevulinic acid-induced photodynamic damage of the photosynthetic electron transport chain of cucumber cotyledons. Plant Physiol 96:761–767

    Article  PubMed Central  CAS  PubMed  Google Scholar 

  • Warner RL, Narayanan KR, Kleinhofs A (1987) Inheritance and expression of NAD(P)H nitrate reductase in barley. Theor Appl Genet 74:714–717

    Article  CAS  PubMed  Google Scholar 

  • Wei ZY, Zhang ZP, Lee M, Sun YP, Wang LJ (2012) Effect of 5-aminolevulinic acid on leaf senescence and nitrogen metabolism of pakchoi under different nitrate levels. J Plant Nutr. doi:10.1080/01904167.2012.631666

    Google Scholar 

  • Yuan JS, Reed A, Chen F, Stewart CN Jr (2006) Statistical analysis of real-time PCR data. BMC Bioinformatics 85:1–12

    Google Scholar 

Download references

Acknowledgments

This work was supported by a Grant (B11MC-017) from the Belarussian Republican Foundation for Fundamental Research. We also thank Dr. N. Kozel and Dr. E. Kabachevskaya for their kind help and Dr. D. Shcharbin for improving the English of the manuscript.

Conflict of interest

The authors declare that they have no conflict of interest.

Author information

Authors and Affiliations

Authors

Corresponding author

Correspondence to Natalia G. Averina.

Rights and permissions

Reprints and permissions

About this article

Cite this article

Beyzaei, Z., Sherbakov, R.A. & Averina, N.G. Response of Nitrate Reductase to Exogenous Application of 5-Aminolevulinic Acid in Barley Plants. J Plant Growth Regul 33, 745–750 (2014). https://doi.org/10.1007/s00344-014-9422-4

Download citation

  • Received:

  • Accepted:

  • Published:

  • Issue Date:

  • DOI: https://doi.org/10.1007/s00344-014-9422-4

Keywords

Navigation