Hort. Sci. (Prague), 2021, 48(2):63-72 | DOI: 10.17221/106/2020-HORTSCI

Establishment of an efficient micropropagation system in enhancing rooting efficiency via stem cuttings of apple rootstock M9T337Original Paper

Jiangli Shi, Zhidan Dong, Chunhui Song, Beiyang Xie, Xianbo Zheng, Shangwei Song, Jian Jiao, Miaomiao Wang, Tuanhui Bai ORCID...*
College of Horticulture, Henan Agricultural University, Zhengzhou, P.R. China

Rootstocks play a vital role in regulating the environmental adaptability and controlling the growth and development of apple trees. M9T337, an excellent apple rootstock widely used in commercial orchards, could confer dwarf tree architectures, early fruiting and suitability for high-density planting. However, the rooting ability of M9T3337 is low when it is vegetatively propagated, and researchers have not yet established an efficient micropropagation system. The present study systematically evaluated the multiplication in adventitious shoots and the in vitro formation of adventitious roots to determine the effects of the culture media and plant growth regulators of M9T337 and a rapid micropropagation system was developed. For the shoot multiplication, the highest multiplication index of 3.93 was obtained on Murashige and Skoog (MS) media supplemented with 2.0 mg/L 6-BA, 0.1 mg/L NAA and 0.3 mg/L GA3 from 12 combinations of 6-BA and NAA. Stronger and taller adventitious shoots were grown on MS supplemented with 1.8 mg/L 6-BA and 0.5 mg/L NAA. The optimal media with 100% rooting was obtained using 1/2 MS supplemented with 0.3 mg/L IBA or MS supplemented with 0.6 mg/L IBA for the rooting induction, resulting in mean rooting numbers of 13.00 and 11.33, respectively. Additionally, the effect on rooting of adding 0.3 mg/L IBA or not on the 1/2 MS and MS media was compared; the results suggested that an appropriate IBA concentration was the key to successful rooting. The rooted plantlets were acclimatised in a shaded greenhouse with an 84% survival rate. The established micropropagation system could be used for the rapid propagation of M9T337 for commercial production.

Keywords: regeneration; tissue culture; rooting induction; IBA

Published: June 30, 2021  Show citation

ACS AIP APA ASA Harvard Chicago Chicago Notes IEEE ISO690 MLA NLM Turabian Vancouver
Shi J, Dong Z, Song C, Xie B, Zheng X, Song S, et al.. Establishment of an efficient micropropagation system in enhancing rooting efficiency via stem cuttings of apple rootstock M9T337. Hort. Sci. (Prague). 2021;48(2):63-72. doi: 10.17221/106/2020-HORTSCI.
Download citation

References

  1. Amirchakhmaghi N., Hosseinpour B., Yousefzadeh H. (2019): Development of a micropropagation protocol for Malus orientalis using axillary buds. In Vitro Cellular & Developmental Biology-Plant, 55: 625-634. Go to original source...
  2. Amiri E.M., Elahini A. (2011): Optimization of media composition for apple rootstocks. African Journal of Biotechnology, 10: 3594-3601.
  3. Aroonpong P., Chang J. (2015): Micropropagation of a difficult-to-root weeping mulberry (Morus alba var. Shidareguwa): A popular variety for ornamental purposes. Scientia Horticulturae, 194: 320-326. Go to original source...
  4. Bellini C., Pacurar D.I., Perrone I. (2014): Adventitious roots and lateral roots: Similarities and differences. Annual Review of Plant Biology, 65: 639-666. Go to original source... Go to PubMed...
  5. Caboni E., Lauri P., D'Angeli S. (2000): In vitro plant regeneration from callus of shoot apices in apple shoot culture. Plant Cell Reports, 19: 755-760. Go to original source... Go to PubMed...
  6. Dai H., Li W., Mao W., Zhang L., Han G., Zhao K., Liu Y., Zhang Z. (2014): Development of an efficient regeneration and Agrobacterium-mediated transformation system in crab apple (Malus micromalus) using cotyledons as explants. In Vitro Cellular & Developmental Biology-Plant, 50: 1-8. Go to original source...
  7. Dobránszki J., Teixeira da Silva J.A. (2010): Micropropagation of apple-A review. Biotechnology Advances, 28: 462-488. Go to original source... Go to PubMed...
  8. Dobránszki J., Teixeira da Silva J.A. (2011): Adventitious shoot regeneration from leaf thin cell layers in apple. Scientia Horticulturae, 127: 460-463. Go to original source...
  9. Ďurkovič J., Lux A. (2010): with a novel pattern of adventitious rooting in American sweetgum (Liquidambar styraciflua L.). Trees, 24: 491-497. Go to original source...
  10. Fan S., Jian D., Wei X., Chen J., Beeson R.C., Zhou Z., Wang X. (2017): Micropropagation of blueberry 'bluejay' and 'pink lemonade' through in vitro shoot culture. Scientia Horticulturae, 226: 277-284. Go to original source...
  11. Gjamovski V., Kiprijanovski M. (2011): Influence of nine dwarfing apple rootstocks on vigour and productivity of apple cultivar 'Granny Smith'. Scientia Horticulturae, 129: 742-746. Go to original source...
  12. James D.J., Passey A.J., Rugini E. (1988): Factor affecting high frequency plant regeneration from apple leaf tissues culture in vitro. Journal of Plant Physiology, 132: 148-154. Go to original source...
  13. Kaushal N., Modgil M., Thakur M., Sharma D.R. (2005): In vitro clonal multiplication of an apple rootstock by culture of shoot apices and axillary buds. Journal of Experimental Biology, 43: 561-565.
  14. Kermani M.J, Hosseini Z.S., Habashi A.A. (2009): A refined tissue culture media for in vitro proliferation of apple rootstocks. Acta Horticulturae (ISHS), 829: 313-318. Go to original source...
  15. Khamushi M., DehestaniArdakani M., Zarei A., Aliabad K.K. (2019): An efficient protocol for micropropagation of old cypress of Abarkuh (Cupressus sempervirens var. horizontalis [Mill.]) under in vitro condition. Plant Cell Tissue and Organ Culture, 138: 597-601. Go to original source...
  16. Kosina J. (2010): Effect of dwarfing and semi dwarfing apple rootstocks on growth and productivity of selected apple cultivars. Horticultural Science, 37: 121-126. Go to original source...
  17. Lei C., Fan S., Li K., Meng Y., Mao J., Han M., Zhao C., Bao L., Zhang D. (2018): TRAQ-based proteomic analysis reveals potential regulation networks of IBA-induced adventitious root formation in apple. International Journal of Molecular Sciences, 19: 667. Go to original source... Go to PubMed...
  18. Li B., Feng C., Hu L., Wang M., Chen L., Wang Q. (2014): Shoot regeneration and cryopreservation of shoot tips of apple (Malus) by encapsulation-dehydration. In Vitro Cellular & Developmental Biology-Plant, 50: 357-368. Go to original source...
  19. Lordan J., Fazio G., Francescatto P., Robinson T. (2017): Effects of apple (Malus × domestica) rootstocks on scion performance and hormone concentration. Scientia Horticulturae, 225: 96-105. Go to original source...
  20. Machakova I., Zazimalova E., George E.F. (2008): Plant growth regulators I: introduction; auxins, their analogues and inhibitors. In: George E.F., Hall M. A., Klerk G.J.D. (eds): Plant Propagation by Tissue Culture 3rd E.. Dordrecht: Springer: 501.
  21. Magyar-Tábori K., Dobránszki J., Jámbor-Benczúr E., Lazányi J., Szalai J., Ferenczy A. (2002): Effects of indole-3-butyric acid levels and activated charcoal on rooting of in vitro shoots of apple rootstocks. International Journal of Molecular Sciences, 8: 25-28 Go to original source...
  22. Magyar-Tábori K., Dobránszki J., Jaime A., Sean M.T.S., Ildiko´Huda´k.B. (2010): The role of cytokinins in shoot organogenesis in apple. Plant Cell Tissue and Organ Culture, 101: 251-267. Go to original source...
  23. Mao J., Zhang D., Meng Y., Li K., Wang H., Han M. (2019): Inhibition of adventitious root development in apple rootstocks by cytokinin is based on its suppression of adventitious root primordia formation. Physiologia Plantarum, 166: 663-676. Go to original source... Go to PubMed...
  24. Modgil M., Guleria N., Ghani M., Sharma J.N. (2012): Identifying somaclonal variants of the apple rootstock Malling 7 resistant to white root rot. Scientia Horticulturae, 137: 148-155. Go to original source...
  25. Modgil M., Sharma D.R., Bhardwaj S.V. (1999): Micropropagtion of apple cv. Tydeman's Early Worcester. Scientia Horticulturae, 81: 179-188. Go to original source...
  26. Murashige T., Skoog F. (1962): A revised media for rapid growth and bioassays with tobacco tissue cultures. Physiologia Plantarum, 15: 473-497. Go to original source...
  27. Nagy J.K., Sule S., Sampaio J.P. (2005): Apple tissue culture contamination by Rhodotorula spp.: Identification and prevention. In Vitro Cellular & Developmental BiologyPlant, 41: 520-524. Go to original source...
  28. Rafael A., Scott N., Ellen G.S. (1989): Relationship of IBA and adventitious rooting in M26 shoots cultured in vitro. Plant Growth Regulation, 8: 263-272. Go to original source...
  29. Sarwar M., Skirvin R.M. (1997): Effect of thidiazuron and 6-benzylaminopurine on adventitious shoot regeneration from leaves of three strains of 'McIntosh' apple (Malus × domestica Borkh.) in vitro. Scientia Horticulturae, 68: 95-100. Go to original source...
  30. Sedira M., Welander M., Geier T. (2007): Influence of IBA and aphidicolin on DNA synthesis and adventitious root regeneration from Malus 'Jork 9' stem discs. Plant Cell Reports, 26: 539-545. Go to original source...
  31. Sicurani M., Piccioni E., Standardi A. (2001): Micropropagation and preparation of synthetic seed in M.26 apple rootstock I: attempts towards saving labor in the production of adventitious shoot tips suitable for encapsulation. Plant Cell Tissue and Organ Culture, 66: 207-216. Go to original source...
  32. Sotiropoulos T.E. (2008): Performance of the apple (Malus domestica Borkh) cultivar Imperial Double Red Delicious grafted on five rootstocks. Scientia Horticulturae, 35: 7-11. Go to original source...
  33. Teixeira da Silva J.A., Gulyás A., Magyar-Tábori K., Wang M.R., Wang Q.C., Dobránszki J. (2019): In vitro tissue culture of apple and other Malus species: recent advances and applications. Planta, 249: 975-1006. Go to original source... Go to PubMed...
  34. Van Hooijdonk B.M., Woolley D.J., Warrington I.J., Tustin D.S. (2010): Initial alteration of scion architecture by dwarfing apple rootstocks may involve shoot-root-shoot signalling by auxin, gibberellin, and cytokinin. Journal of Horticultural Science & Biotechnology, 85: 59-65. Go to original source...
  35. Wang M.R., Li B.Q., Feng C.H., Wang Q.C. (2016): Culture of shoot tips from adventitious shoots can eradicate apple stem pitting virus but fails in apple grooving virus. Plant Cell Tissue and Organ Culture, 125: 283-291. Go to original source...
  36. Wang Y., Li W., Xu X., Qiu C., Wu T., Wei Q., Ma F., Han Z. (2019): Progress of apple rootstock breeding and its use. Horticultural Plant Journal, 5: 183-191. Go to original source...
  37. Ward S.P., Leyser O. (2004): Shoot branching. Current Opinion in Plant Biology, 7: 73-78. Go to original source... Go to PubMed...
  38. Yang H., Klopotek Y., Hajirezaei M.R., Zerche S., Franken P., Druege U. (2019): Role of auxin homeostasis and response in nitrogen limitation and dark stimulation of adventitious root formation in petunia cuttings. Annals of Botany, 124: 1053-1066. Go to original source... Go to PubMed...
  39. Yepes L.M., Aldwinckle H.S. (1994): Factors that affect leaf regeneration efficiency in apple, and effect of antibiotics in morphogenesis. Plant Cell Tissue and Organ Culture, 37: 257-269. Go to original source...
  40. Zhang X., Qin Y., Liang D., Zou Y., Ma F. (2014): Enhancement of in vitro shoot regeneration from leaf explants of apple rootstock G.41. In Vitro Cellular & Developmental BiologyPlant, 50: 263-270. Go to original source...
  41. Zimmerman R.H., Bhardwaj S.V, Fordham I.M. (1995): Use of starch-gelled media for tissue culture of some fruit crops. Plant Cell Tissue and Organ Culture, 43: 207-213. Go to original source...

This is an open access article distributed under the terms of the Creative Commons Attribution-NonCommercial 4.0 International (CC BY NC 4.0), which permits non-comercial use, distribution, and reproduction in any medium, provided the original publication is properly cited. No use, distribution or reproduction is permitted which does not comply with these terms.