362
Views
4
CrossRef citations to date
0
Altmetric
Research Articles

The response of different potato cultivars to plant growth-promoting rhizobacteria (PGPRs) and chemical fertilizers in aeroponic culture conditions

, , , &
Pages 2975-2985 | Received 23 Mar 2021, Accepted 11 Nov 2021, Published online: 27 Jan 2022

References

  • Adesemoye, A. O., and J. W. Kloepper. 2009. Plant-microbes interactions in enhanced fertilizer-use efficiency. Applied Microbiology and Biotechnology 85 (1):1–12. doi: 10.1007/s00253-009-2196-0.
  • Ali, B., A. N. Sabri, and S. Hasnain. 2010. Rhizobacterial potential to alter auxin content and growth of Vigna radiata (L.). World Journal of Microbiology and Biotechnology 26 (8):1379–84. doi: 10.1007/s11274-010-0310-1.
  • Bag, T., A. Srivastava, S. Yadav, M. Gurjar, L. Diengdoh, R. Rai, and S. Singh. 2015. Potato (Solanum tuberosum) aeroponics for quality seed production in north eastern Himalayan region of India. The Indian Journal of Agricultural Sciences 85 (10):1360–4.
  • Batukaev, A. A., I. Bamatov, and E. A. Khadzhimuradova. 2018. The system of production of healthy planting material for potato under the conditions of the Chechen Republic. Journal of Pharmaceutical Sciences 10:106–9.
  • Chatzipavlidis, I., I. Kefalogianni, A. Venieraki, and W. Holzapfel. 2013. Commission on genetic resources for food and agriculture. status and trends of the conservation and sustainable use of microorganisms in agroindustrial processes. Background study paper no. 64.
  • Chennappa, G., C. Adkar-Purushothama, M. Naik, U. Suraj, and M. Sreenivasa. 2014. Impact of pesticides on PGPR activity of Azotobacter sp. isolated from pesticide flooded paddy soils. Greener Journal of Agricultural Sciences 4 (4):117–29. doi: 10.15580/GJAS.2014.4.010314003.
  • Chiipanthenga, M., M. Maliro, P. Demo, and J. Njoloma. 2012. Potential of aeroponics system in the production of quality potato (Solanum tuberosum l.) seed in developing countries. African Journal of Biotechnology 11 (17):3993–9.
  • Dash, S., and R. Jena. 2015. Biofertilizer options in nutrient management ofpotato. Int. J. Sci. Res (4): 420-421
  • Datta, S., C. M. Kim, M. Pernas, N. D. Pires, H. Proust, T. Tam, P. Vijayakumar, and L. Dolan. 2011. Root hairs: Development, growth and evolution at the plant-soil interface. Plant and Soil 346 (1-2):1–14. doi: 10.1007/s11104-011-0845-4.
  • Dragićević, I., R. Konjević, B. Vinterhalter, D. Vinterhalter, and M. Nešković. 2008. The effects of IAA and tetcyclacis on tuberization in potato (Solanum tuberosum L.) shoot cultures in vitro. Plant Growth Regulation 54 (3):189–93. doi: 10.1007/s10725-007-9243-6.
  • El-Latif, K. A., E. Osman, R. Abdullah, and N. A. El Kader. 2011. Response of potato plants to potassium fertilizer rates and soil moisture deficit. Advances in Applied Science Research 2 (2):388–97.
  • Farran, I., and A. M. Mingo-Castel. 2006. Potato minituber production using aeroponics: Effect of plant density and harvesting intervals. American Journal of Potato Research 83 (1):47–53. doi: 10.1007/BF02869609.
  • Gao, Y., L. Jia, B. Hu, A. Alva, and M. Fan. 2014. Potato stolon and tuber growth influenced by nitrogen form. Plant Production Science 17 (2):138–43. doi: 10.1626/pps.17.138.
  • Ghanepasand, F., G. Noormohamadi, M. H. S. Hadi, and M. T. Darzi. 2014. Influence of manure application and nitrogen fixing bacteria on yield and yield components of black cumin (Nigella sativa L.). International Journal of Advanced Biological and Biomedical Research 2 (3):628–35.
  • Hung, L.-L. L., and D. M. Sylvia. 1988. Production of vesicular-arbuscular mycorrhizal fungus inoculum in aeroponic culture. Applied and Environmental Microbiology 54 (2):353–7. doi: 10.1128/aem.54.2.353-357.1988.
  • Inomura, K., J. Bragg, and M. J. Follows. 2017. A quantitative analysis of the direct and indirect costs of nitrogen fixation: A model based on Azotobacter vinelandii. The ISME Journal 11 (1):166–75. doi: 10.1038/ismej.2016.97.
  • Kutz, A., A. Müller, P. Hennig, W. M. Kaiser, M. Piotrowski, and E. W. Weiler. 2002. A role for nitrilase 3 in the regulation of root morphology in sulphur-starving Arabidopsis thaliana . The Plant Journal : For Cell and Molecular Biology 30 (1):95–106. doi: 10.1046/j.1365-313x.2002.01271.x.
  • Lommen, W., and P. Struik. 1992. Production of potato minitubers by repeated harvesting: Effects of crop husbandry on yield parameters. Potato Research 35 (4):419–32. doi: 10.1007/BF02357598.
  • Mahdipour, M. M., G. Emtiazi, and Z. Salehi. 2012. Enhanced auxin production by Azospirillum pure cultures from plant root exudates. Journal of Agriculture, Science and Technology 14:985–94.
  • Marchant, A., R. Bhalerao, I. Casimiro, J. Eklöf, P. J. Casero, M. Bennett, and G. Sandberg. 2002. AUX1 promotes lateral root formation by facilitating indole-3-acetic acid distribution between sink and source tissues in the Arabidopsis seedling. The Plant Cell 14 (3):589–97. doi: 10.1105/tpc.010354.
  • Marschner, H., & Marschner, P. (2012). Marschner's mineral nutrition of higher plants/Mineral nutrition of higher plants (No. 581.1335). Elsevier/Academic Press.
  • Mateus-Rodriguez, J., S. de Haan, and A. Rodríguez-Delfín. 2011. Response of three potato cultivars grown in a novel aeroponics system for mini-tuber seed production. Acta Horticulturae 947 (947):361–7.
  • Mateus-Rodriguez, J., S. de Haan, and A. Rodríguez-Delfín. 2014. Genotype by environment effects on Potato mini-tuber seed production in an aeroponics System. Agronomy 4 (4):514–28. doi: 10.3390/agronomy4040514.
  • Mbiyu, M. W., C. Lung’aho, S. A. Otieno, M. W. Nyongesa, M. N. Muchui, and J. N. Ogemma. 2018. Performance of five potato varieties with regards to growth and production of mini-tubers under an aeroponic system in central highlands of Kenya. African Journal of Agricultural Research 13 (8):366–78.
  • Moinuddin, Singh, K., and Bansal S. 2005. Growth, yield, and economics of potato in relation to progressive application of potassium fertilizer. Journal of Plant Nutrition 28 (1):183–200. doi: 10.1081/PLN-200042288.
  • Movahedi, Z., A. Moieni, and A. Soroushzadeh. 2012. Comparison of aeroponics and conventional soil systems for potato minitubers production and evaluation of their quality characters. Journal of Plant Physiology and Breeding 2 (2):13–21.
  • Muhibuddin, A., Z. Razak, S. Salam, and J. Boling. 2018. Nutrients formulation for improving production and quality of potato minitubers using aeroponic system in Indonesia. Advances in Environmental Biology 12 (12):38–43.
  • Naqqash, T., S. Hameed, A. Imran, M. Hanif, A. Majeed, J. Dirk, and V. Elsas. 2016. Differential growth stimulation response of potato towards inoculation with taxonomically diverse plant growth promoting rhizobacteria. Frontiers in Plant Science 7 (7) :144-144.
  • Navarre, R., and M. J. Pavek. 2014. The potato: Botany, production and uses. CABI.
  • Otazu, V. 2010. Manual on quality seed potato production using aeroponics. International Potato Center.
  • Rezaei, M., A. Moieni, H. Dehghani, and Z. Movahedi. 2017. Effects of paclobutrazol and jasmonic acid on potato minituber production and some plant characteristics in aeroponic cultivation system. Iranian Journal of Genetics and Plant Breeding 6 (2):9–19.
  • Rolot, J. L., and H. Seutin. 1999. Soilless production of potato minitubers using a hydroponic technique. Potato Research 42 (3-4):457–69. doi: 10.1007/BF02358162.
  • Roumeliotis, E., B. Kloosterman, M. Oortwijn, W. Kohlen, H. J. Bouwmeester, R. G. Visser, and C. W. Bachem. 2012. The effects of auxin and strigolactones on tuber initiation and stolon architecture in potato. Journal of Experimental Botany 63 (12):4539–47. doi: 10.1093/jxb/ers132.
  • Rubio, V., R. Bustos, M. L. Irigoyen, X. Cardona-López, M. Rojas-Triana, and J. Paz-Ares. 2009. Plant hormones and nutrient signaling. Plant Molecular Biology 69 (4):361–73. doi: 10.1007/s11103-008-9380-y.
  • Rykbost, K., and J. Maxwell. 1993. Effects of plant population on the performance of seven varieties in the Klamath Basin of Oregon. American Potato Journal 70 (6):463–74. doi: 10.1007/BF02849065.
  • Schachtman, D. P., and R. Shin. 2007. Nutrient sensing and signaling: NPKS. Annual Review of Plant Biology 58:47–69. doi: 10.1146/annurev.arplant.58.032806.103750.
  • Shahgholi, G., M. Latifi, B. Imani, and N. Farrokhi. 2020. Determination of the creep behavior of potato tubers during storage period by means of uniaxial and triaxial creep tests. Food Science & Nutrition 8 (4):1857–63. doi: 10.1002/fsn3.1468.
  • Shobha, G., and B. Kumudini. 2012. Antagonistic effect of the newly isolated PGPR Bacillus spp. on Fusarium oxysporum. International Journal of Applied Science & Engineering 1 (3):463–74.
  • Stokstad, E. 2019. The new potato. American Association for the Advancement of. Science 363 (6427):574–7. doi: 10.1126/science.363.6427.574.
  • Tagore, G., S. Namdeo, S. Sharma, and N. Kumar. 2013. Effect of Rhizobium and phosphate solubilizing bacterial inoculants on symbiotic traits, nodule leghemoglobin, and yield of chickpea genotypes. International Journal of Agronomy. 2013:1–8. doi: 10.1155/2013/581627.
  • Tao, G.-Q., D. S. Letham, J. W. Yong, K. Zhang, P. C. John, O. Schwartz, S. C. Wong, and G. D. Farquhar. 2010. Promotion of shoot development and tuberisation in potato by expression of a chimaeric cytokinin synthesis gene at normal and elevated CO2 levels. Functional Plant Biology 37 (1):43–54. doi: 10.1071/FP07032.
  • Tessema, L., A. Chindi, W. G. Gebremedhin, A. Solomon, E. Shunka, and E. Seid. 2017. Determination of nutrient solutions for potato (Solanum tuberosum L.) seed production under aeroponics production system. Open Agriculture 2 (1):155–9.
  • Tkachenko, O. V., N. V. Evseeva, N. V. Boikova, L. Y. Matora, G. L. Burygin, Y. V. Lobachev, and S. Y. Shchyogolev. 2015. Improved potato microclonal reproduction with the plant growth-promoting rhizobacteria Azospirillum. Agronomy for Sustainable Development 35 (3):1167–74. doi: 10.1007/s13593-015-0304-3.
  • Tkachenko, O. V., N. V. Evseeva, E. V. Terentyeva, G. L. Burygin, A. А. Shirokov, A. М. Burov, L. Y. Matora, and S. Y. Shchyogolev. 2021. Improved production of high-quality potato seeds in aeroponics with plant-growth-promoting rhizobacteria. Potato Research 64 (1):55–66. doi: 10.1007/s11540-020-09464-y.
  • Tufik, C. B. A., P. C. R. Fontes, C. do Carmo Milagres, and M. A. Moreira. 2019. Productivity of potato seed submitted to different doses of potassium in hydroponic system. Emirates Journal of Food and Agriculture 31 (7):555–60. doi: 10.9755/ejfa.2019.v31.i7.1979.
  • Walworth, J. L., and J. Muniz. 1993. A compendium of tissue nutrient concentrations for field-grown potatoes. American Potato Journal 70 (8):579–97. doi: 10.1007/BF02850848.
  • Wang, Z. H., S. X. Li, and S. Malhi. 2008. Effects of fertilization and other agronomic measures on nutritional quality of crops. Journal of the Science of Food and Agriculture 88 (1):7–23. doi: 10.1002/jsfa.3084.
  • Wróbel, S. 2014. Assessment of possibilities of microtuber and in vitro plantlet seed multiplication in field conditions. Part 1: PVY, PVM and PLRV spreading. American Journal of Potato Research 91 (5):554–65. doi: 10.1007/s12230-014-9388-6.
  • Yadegari, M., and A. Shakerian. 2014. The effect salicylic acid and jasmonic acid foliar applications on essence and essential oil of salvia (Salvia officinalis L.). Journal of Applied Science and Agriculture 9 (4):1578–84.

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.