1,258
Views
114
CrossRef citations to date
0
Altmetric
Original Articles

Auxin production by rhizobacteria was associated with improved yield of wheat (Triticum aestivum L.) under drought stress

, , , &
Pages 574-587 | Received 24 Sep 2016, Accepted 27 Jul 2017, Published online: 10 Aug 2017

References

  • Ali B. 2015. Bacterial auxin signaling: comparative study of growth induction in Arabidopsis thaliana and Triticum aestivum. Turk J Bot. 39:1–9.
  • Ali B, Sabri AN, Hasnain S. 2010. Rhizobacterial potential to alter auxin content and growth of Vigna radiata (L.). World J Microbiol Biotechnol. 26:1379–1384.
  • Ali B, Sabri AN, Ljung K, Hasnain S. 2009. Auxin production by plant associated bacteria: impact on endogenous IAA content and growth of Triticum aestivum L. Lett Appl Microbiol. 48:542–547.
  • Asghar HN, Zahir ZA, Akram MA, Ahmad HT, Hussain MB. 2015. Isolation and screening of beneficial bacteria to ameliorate drought stress in wheat. Soil Environ. 34:100–110.
  • Aslam F, Ali B. 2015. Efficacy of charcoal based formulations of Bacillus and Escherichia coli to enhance the growth and yield of Triticum aestivum L. Res J Biotechnol. 10:81–88.
  • Belimov AA, Dodd IC, Hontzeas N, Theobald JC, Safronova VI, Davies WJ. 2009. Rhizosphere bacteria containing 1‐aminocyclopropane‐1‐carboxylate deaminase increase yield of plants grown in drying soil via both local and systemic hormone signalling. New Phytol. 181:413–423.
  • Belimov AA, Dodd IC, Safronova VI, Shaposhnikov AI, Azarova TS, Makarova NM, Davies WJ, Tikhonovich IA. 2015. Rhizobacteria that produce auxins and contain 1‐amino‐cyclopropane‐1‐carboxylic acid deaminase decrease amino acid concentrations in the rhizosphere and improve growth and yield of well‐watered and water‐limited potato (Solanum tuberosum). Ann Appl Biol. 167:11–25.
  • Bidyarani N, Prasanna R, Babu S, Hossain F, Saxena AK. 2016. Enhancement of plant growth and yields in chickpea (Cicer arietinum L.) through novel cyanobacterial and biofilmed inoculants. Microbiol Res. 188:97–105.
  • Cappuccino JG, Sherman N. 2002. Microbiology: a laboratory manual. 6th ed. Signapore: Pearson Education.
  • Cassán F, Vanderleyden J, Spaepen S. 2014. Physiological and agronomical aspects of phytohormone production by model plant-growth-promoting rhizobacteria (PGPR) belonging to the genus Azospirillum. J Plant Growth Regul. 33:440–459.
  • Dessaux Y, Grandclément C, Faure D. 2016. Engineering the Rhizosphere. Trends Plant Sci. 21:266–278.
  • Falkenmark M. 2013. Growing water scarcity in agriculture: future challenge to global water security. Philos Trans Royal Soc London A: Math Phys Eng Sci. 371:20120410.
  • Fibach-Paldi S, Burdman S, Okon Y. 2012. Key physiological properties contributing to rhizosphere adaptation and plant growth promotion abilities of Azospirillum brasilense. FEMS Microbiol Lett. 326:99–108.
  • Forni C, Duca D, Glick BR. 2017. Mechanisms of plant response to salt and drought stress and their alteration by rhizobacteria. Plant Soil. 410:335–356.
  • Goswami D, Thakker JN, Dhandhukia PC. 2015. Simulataneous detection and quantification of indole-3-acetic acid (IAA) and indole-3-butyric acid (IBA) produced by rhizobacteria from L-tryptophan (Trp) using HPTLC. J Microbiol Meth. 110:7–14.
  • Hasnain S, Thomas CM. 1996. Two related rolling circle replication plasmids from salt-tolerant bacteria. Plasmid. 36:191–199.
  • Johnson JL. 1994. Similarity analysis of rRNAs. In: Gerhardt P, Rge M, Wa W, Nr K, editors. Methods for general and molecular bacteriolog. Washington (DC): Am Soc Microbiol; p. 625–700.
  • Kaushal M, Wani SP. 2016. Plant-growth-promoting rhizobacteria: drought stress alleviators to ameliorate crop production in drylands. Ann Microbiol. 66:35–42.
  • Kolari KK, Sarjala T. 1995. Acid phosphatase activity and phosphorus nutrition in Scots pine needles. Tree Physiol. 15:747–752.
  • Krzyzanowska D, Obuchowski M, Bikowski M, Rychlowski M, Jafra S. 2012. Colonization of potato rhizosphere by GFP-tagged Bacillus subtilis MB73/2, Pseudomonas sp. P482 and Ochrobactrum sp. A44 shown on large sections of roots using enrichment sample preparation and confocal laser scanning microscopy. Sensors. 12:17608–17619.
  • Kumar M, Mishra S, Dixit V, Kumar M, Agarwal L, Chauhan PS, Nautiyal CS. 2016. Synergistic effect of Pseudomonas putida and Bacillus amyloliquefaciens ameliorates drought stress in chickpea (Cicer arietinum L.). Plant Signal Behav. 11(1):e1071004.
  • Laplaze L, Lucas M, Champion A. 2015. Rhizobial root hair infection requires auxin signaling. Trends Plant Sci. 20:332–334.
  • Ludwig-Müller J. 2015. Bacteria and fungi controlling plant growth by manipulating auxin: balance between development and defense. J Plant Physiol. 172:4–12.
  • Mayak S, Tirosh T, Glick BR. 2004. Plant growth promoting bacteria that confer resistance to water stress in tomatoes and peppers. Plant Sci. 166:525–530.
  • Ngumbi E, Kloepper J. 2016. Bacterial mediated drought tolerance: current and future prospects. Appl Soil Ecol. 105:109–125.
  • Parray JA, Jan S, Kamili AN, Qadri RA, Egamberdieva D, Ahmad P. 2016. Current perspectives on plant growth-promoting rhizobacteria. J Plant Growth Regul. 35:877–902.
  • Poljakoff-Mayber A, Popilevski I, Belausov E, Ben-Tal Y. 2002. Involvement of phytohormones in germination of dormant and non-dormant oat (Avena sativa L.) seeds. Plant Growth Regul. 37:7–16.
  • Racusen D, Foote M. 1965. Protein synthesis in dark-grown bean leaves. Can J Bot. 43:817–824.
  • Raheem A, Ali B. 2015. Halotolerant rhizobacteria: beneficial plant metabolites and growth enhancement of Triticum aestivum L. in salt-amended soils. Arch Agron Soil Sci. 61:1691–1705.
  • Shakir MA, Bano A, Ashad M. 2012. Rhizosphere bacteria containing ACC-deaminase conferred drought tolerance in wheat grown under semi-arid climate. Soil Environ. 31:108–112.
  • Sial MA, Arain MA, Laghari KA, Khanzada S. 2012. Evolution of new wheat variety Nia-Amber for the general cultivation in Sindh province-A case study. Pak J Bot. 44:301–306.
  • Spaepen S, Vanderleyden J, Remans R. 2007. Indole-3-acetic acid in microbial and microorganism-plant signaling. FEMS Microbiol Rev. 31:425–448.
  • Su Y-H, Liu Y-B, Zhang X-S. 2011. Auxin-cytokinin interaction regulates meristem development. Mol Plant. 4:616–625.
  • Sutariati GAK, Khaeruni A. 2013. Seed biomatriconditioning using rhizobacteria for growth promotion and increase the yield of sorghum (Sorghum bicolour (L.) Moench) on marginal soil. Agric Sci Res J. 3:85–92.
  • Timmusk S, El-Daim IAA, Copolovici L, Tanilas T, Kännaste A, Behers L, Nevo E, Seisenbaeva G, Stenström E, Niinemets Ü. 2014. Drought-tolerance of wheat improved by rhizosphere bacteria from harsh environments: enhanced biomass production and reduced emissions of stress volatiles. Plos One. 9:e96086.
  • Verma JP, Yadav J, Tiwari K, Lavakush SV. 2010. Impact of plant growth promoting rhizobacteria on crop production. Int J Agric Res. 5:954–983.
  • Vílchez JI, García-Fontana C, Román-Naranjo D, González-López T, Manzanera M. 2016. Plant drought tolerance enhancement by trehalose production of desiccation-tolerant microorgansims. Front Microbiol. 7:1577.
  • Vurukonda SSKP, Vardharajula S, Shrivastava M, Skz A. 2016. Enhancement of drought stress tolerance in crops by plant growth promoting rhizobacteria. Microbiol Res. 184:13–24.
  • Zhang G, Chen M, Li L, Xu Z, Chen X, Guo J, Ma Y. 2009. Overexpression of the soybean GmERF3 gene, an AP2/ERF type transcription factor for increased tolerances to salt, drought, and diseases in transgenic tobacco. J Exp Bot. 60:3781–3796.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.