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Thiol Compounds, Pre-Conditioning and Orientation of Explants – Important Factors Affecting Regeneration from Cotyledons of Legume Crop Sesbania Aculeata Cover

Thiol Compounds, Pre-Conditioning and Orientation of Explants – Important Factors Affecting Regeneration from Cotyledons of Legume Crop Sesbania Aculeata

Open Access
|Nov 2021

References

  1. Avenido, R., Motoda, J. and Hattori, K. (2001). Direct shoot regeneration from cotyledonary nodes as a marker for genomic groupings within the Asiatic Vigna (subgenus Ceratotropis {Piper} Verdc.) species. Plant Growth Regulation, 35(1), 59 ‒ 67. DOI:10.1023/A:1013874902530.10.1023/A:1013874902530
  2. Bansal, Y.K. and Pandey, P. (1993). Micropropagation of Sesbania aculeate (Pers.) by adventitious organogenesis. Plant, Cell, Tissue and Organ Culture, 32(3), 351 ‒ 355. DOI: 10.1007/BF00042299.10.1007/BF00042299
  3. Brunning, J.L. and Kintz, B.L. (1977). Computational Handbook of Statistics, 2nd ed. Scott. Foresman, Glenview, CA, 361 p.
  4. Bunma, S. and Balslev, H. (2019). A review of the economic botany of Sesbania (Leguminosae). Botanical Reviews, 85, 185 ‒ 251. DOI:10.1007/s12229-019-09205-y.10.1007/s12229-019-09205-y
  5. Chaudhury, D., Madanpotra, S., Jaiwal, R., Saini, R., Kumar, P.A. and Jaiwal, P.K. (2007). Agrobacterium tumefaciens-mediated high frequency genetic transformation of an Indian cowpea (Vigna unguiculata L. Walp.) cultivar and transmission of transgenes into progeny. Plant Science, 172(4), 692 ‒ 700. DOI:10.1016/j.plantsci.2006.11.009.10.1016/j.plantsci.2006.11.009
  6. Debnath, A.J., Gangopadhyay, G., Basu, D. and Sikdar, S.R. (2018). An efficient protocol for in vitro direct shoot organogenesis of Sesamum indicum L. using cotyledon as explant. 3 Biotech, 8(3), 1 ‒ 13. DOI:10.1007%2Fs13205-018-1173-7.10.1007/s13205-018-1173-7
  7. Detrez, C., Ndiaye, S. and Dreyfus, B. (1994). In vitro regeneration of the tropical multipurpose leguminous tree Sesbania grandiflora from cotyledon explants. Plant Cell Reports, 14(2 ‒ 3), 87 ‒ 93. DOI:10.1007/BF00233767.10.1007/BF00233767
  8. Gamborg, O.L., Miller, R.A. and Ojima, K. (1968). Nutrient requirement of suspension cultures of soybean root cells. Experimental Cell Research, 50, 151 – 158. DOI: 10.1016/0014-4827(68)90403-5.10.1016/0014-4827(68)90403-5
  9. Hossain, M.A., Focken, U. and Becker, K. (2002). Nutritional evaluation of dhaincha (Sesbania aculeata) seeds as dietary protein source for tilapia Oreochromis niloticus. Aquatic Research, 33(9), 653 ‒ 662. DOI:10.1046/j.1365-2109.2002.00690.x.10.1046/j.1365-2109.2002.00690.x
  10. Jha, A.K., Prakash, S., Jain, N., Nanda, K. and Gupta, S.C. (2004). Micropropagation of Sesbania rostrata from the cotyledonary node. Biologia Plantarum, 48(2), 289 ‒ 292. DOI: 10.1023/B:BIOP.0000033458.88441.67.10.1023/B:BIOP.0000033458.88441.67
  11. Kapoor, S. and Gupta, S.C. (1986). Rapid in vitro differentiation of Sesbania bispinosa plants ‒ a leguminous shrub. Plant cell, Tissue and Organ Culture, 7(3), 263 ‒ 268. DOI: 10.1007/BF00037743.10.1007/BF00037743
  12. Koné, M., Koné, T., Kouakou, H.T., Konaté, S. and Ochatt, S. (2013). Plant regeneration via direct shoot organogenesis from cotyledon explants of Bambara groundnut, Vigna subterranea (L.) Verdc. Biotechnologie, Agronomie, Société et Environnement/ Biotechnology, Agronomy, Society and Environment, 17(4), 584 ‒ 592.
  13. Mehta, N., Rao, P. and Saini, R. (2018). Efficient extraction of thermostable metabolites of Sesbania aculeata and in vitro evaluation for their antibacterial potential. Analele Univesitatii din Oradea, Fascicula Biologie, XXV(1), 33 ‒ 41.
  14. Mehta, N., Rao, P. and Saini, R. (2019). Evaluation of antioxidant and anticancer potential of Sesbania aculeata – a multipurpose legume crop. Annals. Food Science and Technology, 20(1), 109 ‒ 115.
  15. Mekala, G.K., Juturu, V.N., Mallikarjuna, G., Kirti, P.B. and Yadav, S.K. (2016). Optimization of Agrobacterium mediated genetic transformation of shoot tip explants of green gram (Vigna radiata (L.) Wilczek). Plant, Cell, Tissue and Organ Culture, 127, 651 – 663. DOI:10.1007/s11240-016-1085-3.10.1007/s11240-016-1085-3
  16. Mouhamad, R.S., Yousir, S.A., Fadhel, A.S., Taha, D.I. and Iqbal, M. (2014). In vitro culture and plant regeneration of Sesbania grandiflora. International Journal of Chemical and Biochemical Science, 6, 45 ‒ 49. http://citeseerx.ist.psu.edu/viewdoc/download?doi=10.1.1.707.7183&rep=rep1&type=pdf.
  17. Murashige, T. and Skoog, F. (1962). A revised medium for rapid growth and bioassays with tobacco tissue cultures. Physiologia Plantarum, 15, 473 – 497. DOI:10.1111/j.1399-3054.1962.tb08052.x.10.1111/j.1399-3054.1962.tb08052.x
  18. Nagori, R. and Purohit, S.D. (2004). In vitro plantlet regeneration in Annona squamosa through direct shoot bud differentiation on hypocotyl segments. Scientia Horticulturae, 99(1), 89 ‒ 98. DOI:10.1016/S0304-4238(03)00084-0.10.1016/S0304-4238(03)00084-0
  19. Nanda, K.K. and Anand, V.K. (1970). Seasonal changes in auxin effects on rooting of stem cuttings of Populus nigra and its relationship with mobilization of starch. Physiologia Plantarum, 23(1), 99 ‒ 107. DOI:10.1111/j.1399-3054.1970.tb06396.x.10.1111/j.1399-3054.1970.tb06396.x
  20. Pollard, M.A., Fischer, P. and Windhab, E.J. (2011). Characterization of galactomannans derived from legume endosperms of genus Sesbania (Faboideae). Carbohydrate Polymers, 84(1), 550 ‒ 559. DOI:10.1016/j.carbpol.2010.12.019.10.1016/j.carbpol.2010.12.019
  21. Saafi, H. and Borthakur, D. (2002). In vitro plantlet regeneration from cotyledons of the tree-legume Leucaena leucocephala. Plant Growth Regulation, 38(3), 279 ‒ 285. DOI: 10.1023/A:1021591212710.10.1023/A:1021591212710
  22. Sainger, M., Chaudhary, D., Dahiya, S., Jaiwal, R. and Jaiwal, P.K. (2015). Development of an efficient in vitro plant regeneration system amenable to Agrobacterium ‒ mediated transformation of a recalcitrant grain legume blackgram (Vigna mungo L. Hepper). Physiology and Molecular Biology of Plants, 21, 505 ‒ 517. DOI:10.1007/s12298-015-0315-1.10.1007/s12298-015-0315-1464686726600677
  23. Saini, R. and Jaiwal, P.K. (2005). Efficient transformation of a recalcitrant grain legume Vigna mungo L. Hepper via Agrobacterium- mediated gene transfer into shoot apical meristem cultures. Plant Cell Reports, 24, 164 – 171. DOI:10.1007/s00299-005-0934-z.10.1007/s00299-005-0934-z15815929
  24. Santalla, M., Power, J.B. and Davey, M.R. (1998). Efficient in vitro shoot regeneration responses of Phaseolus vulgaris and P. coccineus. Euphytica, 102(2), 195 ‒ 202. DOI: 10.1023/A:1018317327302.10.1023/A:1018317327302
  25. Shanker, S. and Ram, H.Y.M. (1990). Plantlet regeneration from tissue cultures of Sesbania grandiflora. Current Science, 59(1), 39 ‒ 43.
  26. Shiva Prakash, N., Pental, D. and Bhalla-Sarin, N. (1994). Regeneration of pigeonpea (Cajanus cajan) from cotyledonary node via multiple shoot formation. Plant Cell Reports, 13, 623 – 627. DOI:10.1007/BF00232933.10.1007/BF0023293324196241
  27. Singh, A.K., Chand, S., Pattnaik, S. and Chand, P.K. (2002). Adventitious shoot organogenesis and plant regeneration from cotyledons of Dalbergia sissoo Roxb., a timber yielding tree legume. Plant Cell, Tissue and Organ Culture, 68(2), 203 ‒ 209. DOI:10.1023/A:1013870803937.10.1023/A:1013870803937
  28. Singh, N. and Rani, A. (2013). Extraction and processing of fiber from Sesbania aculeata (dhaincha) for preparation of needle punched nonwoven fabric. National Academic Science Letters, 36(5), 489 ‒ 492. DOI:10.1007/s40009-013-0166-7.10.1007/s40009-013-0166-7
  29. Sivanandhan, G., Kapil Dev, G., Theboral, J., Selvaraj, N., Ganapathi, A. and Manickavasagam, M. (2015). Sonication, vacuum infiltration and thiol compounds enhance the Agrobacterium- mediated transformation frequency of Withania somnifera (L.) Dunal. PLoS ONE, 10(4) e0124693. DOI:10.1371/journal.pone.0124693.10.1371/journal.pone.0124693441602625927703
  30. Sujatha, M., Vijay, S., Vasavi, S., Sivaraj, N. and Rao, S.C. (2012). Combination of thidiazuron and 2-isopentenyladenine promotes highly efficient adventitious shoot regeneration from cotyledons of mature sunflower (Helianthus annuus L.) seeds. Plant Cell, Tissue and Organ Culture, 111(3), 359 ‒ 372. DOI:10.1007/s11240-012-0202-1.10.1007/s11240-012-0202-1
  31. Swami, C., Saini, S. and Gupta, V.B. (2012). A study on green dyeing of cotton with ethanolic extract of Sesbania aculeata. Universal Journal of Environmental Research and Technology, 2(2), 38 ‒ 47.
  32. Włodek, L. (2002). Beneficial and harmful effects of thiols. Polish Journal of Pharmacology, 54, 215 ‒ 223.
  33. Yan-Xiu, Z., Dun-Yi, Y. and Harris, P.J. (1993). Plant regeneration from callus and explants of Sesbania spp. Plant Cell, Tissue and Organ Culture, 34(3), 253 ‒ 260. DOI:10.1007/BF00029714.10.1007/BF00029714
DOI: https://doi.org/10.2478/agri-2021-0009 | Journal eISSN: 1338-4376 | Journal ISSN: 0551-3677
Language: English
Page range: 95 - 102
Submitted on: Apr 6, 2021
Accepted on: Jun 16, 2021
Published on: Nov 3, 2021
Published by: National Agricultural and Food Centre
In partnership with: Paradigm Publishing Services
Publication frequency: 4 issues per year

© 2021 Nikhil Mehta, Priyanka Rao, Raman Saini, published by National Agricultural and Food Centre
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 License.