PL EN


Preferencje help
Widoczny [Schowaj] Abstrakt
Liczba wyników
2014 | 36 | 06 |

Tytuł artykułu

Genetic transformation of sarpagandha (Rauvolfia serpentina) with Agrobacterium rhizogenes for identification of high alkaloid yielding lines

Warianty tytułu

Języki publikacji

EN

Abstrakty

EN
An efficient transformation system for Rauvolfia serpentina, commonly known as ‘‘sarpagandha’’, an important medicinal shrub of tropical countries of Asia, was established following infection with Agrobacterium rhizogenes strain LBA 9402 using stem and leaf explants of axenic in vitro grown plants. The roots grew rapidly on hormone-free modified Murashige and Skoog’s medium and root growth varied substantially among the ten transformed root lines. PCR and RT-PCR analysis revealed presence and expression ofrolA and rolB genes at the transcription level in Ri-transformed root lines. The transformed root lines showed significant differences (p ≤ 0.05) on the basis of their reserpine content. High accumulation of reserpine was obtained in the root lines RsIX6 (3.11 ± 0.26 mg g⁻¹ DW), RsIXA (2.54 ± 0.66 mg g⁻¹ DW) and RsIX18 (2.26 ± 0.26 mg g⁻¹ DW). This is the first report of detection of reserpine in quantifiable amounts from LBA 9402-transformed root lines of R. serpentina.

Słowa kluczowe

Wydawca

-

Rocznik

Tom

36

Numer

06

Opis fizyczny

p.1599-1605,fig.,ref.

Twórcy

autor
  • Department of Botany, University of Calcutta, 35 Ballygunge Circular Road, 700019 Kolkata, West Bengal, India
autor
  • Department of Botany, University of Calcutta, 35 Ballygunge Circular Road, 700019 Kolkata, West Bengal, India
  • Department of Botany, University of Calcutta, 35 Ballygunge Circular Road, 700019 Kolkata, West Bengal, India
autor
  • Department of Botany, University of Calcutta, 35 Ballygunge Circular Road, 700019 Kolkata, West Bengal, India

Bibliografia

  • Adelberg J (2008) Agitated, thin-film of liquid media for efficient micropopagation. In: Gupta SD, Ibaraki Y (eds) Plant tissue culture engineering. Springer, Dordrecht, pp 101–117
  • Anonymous (2003) The wealth of India: a dictionary of Indian raw materials and industrial products. CSIR, New Delhi, India
  • Baksha R, Akhter Jahan MA, Khatun R, Munshi JL (2007) In vitro rapid clonal propagation of Rauvolfia serpentina (Linn.) Benth. Bangladesh J Sci Ind Res 42(1):37–44
  • Barleben L, Panjikar S, Ruppert M, Koepke J, Stöckigt J (2007) Molecular architecture of strictosidine glucosidase: the gateway to the biosynthesis of the monoterpenoid indole alkaloid family. Plant Cell 19:2886–2897
  • Benjamin BD, Roja G, Heble MR (1993) Agrobacterium rhizogens mediated transformation of Rauvolfia serpentina: regeneration and alkaloid synthesis. Plant Cell Tissue Org Cult 35:253–257
  • Benjamin BD, Roja G, Heble MR (1994) Alkaloid synthesis by root cultures of Rauwolfia serpentina transformed by Agrobacterium rhizogenes. Phytochemistry 35(2):381–383
  • Chadha KL (2007) Advances in horticulture. Medicinal and aromatic plants, vol 11. Malhotra Publishing House, New Delhi, p 935
  • Chandra S (2012) Natural plant genetic engineer Agrobacterium rhizogenes: role of T-DNA in plant secondary metabolism. Biotechnol Lett 34:407–415
  • Chaudhuri KN, Ghosh B, Tepfer D, Jha S (2005) Genetic transformation of Tylophora indica with Agrobacterium rhizogenes A4: growth and tylophorine productivity in different transformed root clones. Plant Cell Rep 24:25–35
  • Chomcznski P, Sacchi N (1987) Single step method of RNA isolation by acid guanidinium thiocyanate phenol chloroform extraction. Anal Biochem 162:156–159
  • Christey MC (2001) Invited review: use of Ri-mediated transformation for production of transgenic plants. In Vitro Cell Dev Biol Plant 37:687–700
  • Dellaporta SL, Woods J, Hicks JB (1983) A plant DNA minipreparation: version 2. Plant Mol Biol Rep 1:19–22
  • Farooqi AA, Sreeramu BS (2001) Cultivation of medicinal and aromatic crops. University Press Ltd, India, pp 210–211
  • Gamborg OL, Miller RA, Ojima K (1968) Nutrient requirements of suspension cultures of soybean root cells. Exp Cell Res 50:151–158
  • Guillon S, Tremouillaux-Guiller J, Pati PK, Rideau M, Gantet P (2006) Harnessing the potential of hairy roots: dawn of a new era. Trends Biotechnol 24:403–409
  • Hamill JD, Rounsley S, Spencer A, Todd G, Rhodes MJ (1991) The use of the polymerase chain reaction in plant transformation studies. Plant Cell Rep 10:221–224
  • Harisaranraj R, Suresh K, Babu SS (2009) Production of reserpine in somatic embryos of Rauwolfia serpentina cultured in bioreactors by the induction of elicitor (Methyl Jasmonate). Glob J Biotechnol Biochem 4(2):143–147
  • Hooykass PJJ, Klapwjik PM, Nuti MP, Schilperoort RA, Rorsch A (1977) Transfer of the A. tumefaciens Ti plasmid to avirulent Agrobacteria and Rhizobium ex planta. J Gen Microbiol 98:477–484
  • Jain V, Singh D, Saraf S, Saraf S (2003) In vitro micropropagation of Rauvolfia serpentina through multiple shoot generation. Anc Sci Life 23(1):1–5
  • Lan X, Quan H (2010) Hairy root culture of Przewalskia tangutica for enhanced production of pharmaceutical tropane alkaloids. J Med Plants Res 4(14):1477–1481
  • Mehrotra S, Goel MK, Rahman LU, Kukreja AK (2013) Molecular and chemical characterization of plants regenerated from Rimediated hairy root cultures of Rauwolfia serpentina. Plant Cell Tiss Org Cult. doi:10.1007/s11240-013-0302-6
  • Murashige T, Skoog F (1962) A revised medium for rapid growth and bioassay with tobacco tissue cultures. Physiol Plant 15:473–497
  • O’Connor SE, Maresh JJ (2006) Chemistry and biology of monoterpene indole alkaloid biosynthesis. Nat Prod Rep 23:532–547
  • Panwar GS, Attitalla IH, Guru SK (2011) An efficient in vitro clonal propagation and estimation of reserpine content in different plant parts of Rauwolfia serpentina L. Am Eurasian J of Sci Res 6(4):217–222
  • Petit A, David C, Dahl GA, Ellis JG, Guyon P, Casse-Delbart F, Tempé J (1983) Further extension of the opine concept: plasmids in Agrobacterium rhizogenes cooperate for opine degradation. Mol Gen Genet 190:204–214
  • Ray S, Ghosh B, Sen S, Jha S (1996) Withanolide production by root cultures of Withania somnifera transformed with Agrobacterium rhizogenes. Planta Med 62:571–573
  • Sambrook J, Russel DW (2001) Molecular cloning: a laboratory manual. Cold Spring Harbour Press, Cold Spring Harbour
  • Sevón N, Oksman-Caldentey KM (2002) Agrobacterium rhizogenesmediated transformation: root cultures as a source of alkaloids. Planta Med 68:859–868
  • Sheludko Y, Gerasimenko I, Kolshorn H, Stöckigt J (2002) New alkaloids of the sarpagine group from Rauvolfia serpentina hairy root culture. J Nat Prod 65(7):1006–1010
  • Shi HP, Kintzios S (2003) Genetic transformation of Pueraria phaseoloides with Agrobacterium rhizogenes and puerarin production in hairy roots. Plant Cell Rep 21:1103–1107
  • Sokal RR, Rohlf FJ (1987) Introduction to biostatistics. WH Freeman, New York
  • Tepfer D, Tempé J (1981) Production of d’agropine par des racines transformes sous I’action d’Agrobacterium rhizogenes souche A4. CR Acad Sci 292:153–156
  • Veena V, Taylor CG (2007) Agrobacterium rhizogenes: recent developments and promising applications. In Vitro Cell Dev Biol Plant 43:383–403
  • Virmani OP, Popli SP, Misra LN, Gupta MM, Srivastava GN, Abraham Z, Singh AK (1992) Dictionary of Indian medicinal plants. CIMAP, Lucknow, p 387

Typ dokumentu

Bibliografia

Identyfikatory

Identyfikator YADDA

bwmeta1.element.agro-da287ad9-bf84-410c-b0f1-0e70ad229379
JavaScript jest wyłączony w Twojej przeglądarce internetowej. Włącz go, a następnie odśwież stronę, aby móc w pełni z niej korzystać.