Isoflavone production in Cyclopia subternata Vogel (honeybush) suspension cultures grown in shake flasks and stirred-tank bioreactor
详细信息    查看全文
  • 作者:Adam Kokotkiewicz ; Maria Luczkiewicz…
  • 关键词:Cyclopia subternata ; Cell suspension cultures ; Isoflavones ; Stirred ; tank bioreactor ; Upstream processing
  • 刊名:Applied Microbiology and Biotechnology
  • 出版年:2013
  • 出版时间:October 2013
  • 年:2013
  • 卷:97
  • 期:19
  • 页码:8467-8477
  • 全文大小:397KB
  • 参考文献:1. Ames TT, Worden RM (1997) Continuous production of daidzein and genistein from soybean in a magnetofluidized bed bioreactor. Biotechnol Prog 13:336-39 CrossRef
    2. Barthe GA, Jourdan PS, McIntosh CA, Mansell RL (1987) Naringin and limonin production in callus cultures and regenerated shoots from / Citrus sp. J Plant Physiol 127:55-5 CrossRef
    3. Beerhues L, Berger U (1994) Xanthones in cell suspension cultures of two / Centaurium species. Phytochemistry 35:1227-231 CrossRef
    4. Boonsnongcheep P, Korsangruang S, Soonthornchareonnon N, Chintapakorn Y, Saralamp P, Prathanturarug S (2010) Growth and isoflavonoid accumulation of / Pueraria candollei var. / candollei and / P. candollei var. / mirifica cell suspension cultures. Plant Cell Tissue Organ Cult 101:119-26 CrossRef
    5. Chen G, Li L (2007) Nutrient consumption and production of isoflavones in bioreactor cultures of / Pueraria lobata (Willd). J Environ Biol 28:321-26
    6. Chen J, Liu L, Hou R, Shao Z, Wu Y, Chen X, Zhou L (2011) Calycosin promotes proliferation of estrogen receptor-positive cells via estrogen receptors and ERK1/2 activation in vitro and in vivo. Cancer Lett 308:144-51 CrossRef
    7. Choi SI, Heo TR, Min B-H, Cui JH, Choi BH, Park SR (2007) Alleviation of osteoarthritis by calycosin-7- / O- / β-D-glucopyranoside (CG) isolated from / Astragali radix (AR) in rabbit osteoarthritis (OA) model. Osteoarthr Cartilage 15:1086-092 CrossRef
    8. De Beer D, Joubert E (2010) Development of HPLC method for / Cyclopia subternata phenolic compound analysis and application to other / Cyclopia spp. J Food Compos Anal 23:289-97 CrossRef
    9. Du M, Wu XJ, Ding J, Hu ZB, White KN, Branford-White CJ (2003) Astragaloside IV and polysaccharide production by hairy roots of / Astragalus membranaceus in bioreactors. Biotechnol Lett 25:1853-856 CrossRef
    10. Federici E, Touché A, Choquart S, Avanti O, Fay L, Offord E, Courtois D (2003) High isoflavone content and estrogenic activity of 25 year-old / Glycine max tissue cultures. Phytochemistry 64:717-24 CrossRef
    11. Fedoreyev SA, Bulgakov VP, Grishchenko OV, Veselova MV, Krivoschekova OE, Kulesh NI, Denisenko VA, Tchernoded GK, Zhuravlev YN (2008) Isoflavonoid composition of a callus culture of the relict tree / Maackia amurensis Rupr. et Maxim. J Agric Food Chem 56:7023-031 CrossRef
    12. Georgiev MI, Eibl R, Zhong J-J (2013) Hosting the plant cells in vitro: recent trends in bioreactors. Appl Microbiol Biotechnol 97:3787-800 CrossRef
    13. Georgiev MI, Weber J, Maciuk A (2009) Bioprocessing of plant cell cultures for mass production of targeted compounds. Appl Microbiol Biotechnol 83:809-23 CrossRef
    14. Goyal S, Ramawat KG (2008a) Ethrel treatment enhanced isoflavonoids accumulation in cell suspension cultures of / Pueraria tuberosa, a woody legume. Acta Physiol Plant 30:849-53 CrossRef
    15. Goyal S, Ramawat KG (2008b) Synergistic effect of morphactin on cytokinin-induced production of isoflavonoids in cell cultures of / Pueraria tuberosa (Roxb. Ex. Willd.) DC. Plant Growth Regul 55:175-81 CrossRef
    16. Grishchenko OV, Kiselev KV, Tchernoded GK, Fedoreyev SA, Veselova MV, Bulgakov VP, Zhuravlev YN (2013) The influence of the / rolC gene on isoflavonoid production in callus cultures of / Maackia amurensis. Plant Cell Tissue Organ Cult 113:429-35 CrossRef
    17. Gueven A, Knorr D (2011) Isoflavonoid production by soy plant callus suspension culture. J Food Eng 103:237-43 CrossRef
    18. Ha H, Lee HY, Lee J-H, Jung D, Choi J, Song K-Y, Jung HJ, Choi JS, Chang S-I, Kim C (2010) Formononetin prevents ovariectomy-induced bone loss in rats. Arch Pharm Res 33:626-32 CrossRef
    19. Hashemi M, Behrangi N, Borna H, Akbarzadeh A (2012) Evaluating new targets of natural anticancer molecules through bioinformatics tools. J Proteomics Bioinform 5:50-3 CrossRef
    20. Huh J-E, Seo D-M, Baek Y-H, Choi D-Y, Park D-S, Lee J-D (2010) Biphasic positive effect of formononetin on metabolic activity of human normal and osteoarthritic subchondral osteoblasts. Int Immunopharmacol 10:500-07 CrossRef
    21. Junker B (2007) Foam and its mitigation in fermentation systems. Biotechnol Prog 23:767-84
    22. Karwasara VS, Dixit VK (2012) Culture medium optimization for improved puerarin production by cell suspension cultures of / Pueraria tuberosa (Roxb. ex Willd.) DC. In Vitro Cell Dev Biol -Plant 48:189-99 CrossRef
    23. Ka?parová M, Siatka T, Du?ek J (2009) Production of isoflavonoids in the / Trifolium pratense L. suspension culture. Ceska Slov Farm 58:66-9
    24. Kokotkiewicz A, Luczkiewicz M, Hering A, Ochocka R, Gorynski K, Bucinski A, Sowinski P (2012a) Micropropagation of / Cyclopia genistoides, an endemic South African plant of economic importance. Z Naturforsch 67c:65-6
    25. Kokotkiewicz A, Luczkiewicz M, Sowinski P, Glod D, Gorynski K, Bucinski A (2012b) Isolation and structure elucidation of phenolic compounds from / Cyclopia subternata Vogel (honeybush) intact plant and in vitro cultures. Food Chem 133:1373-382 CrossRef
    26. Kokotkiewicz A, Wnuk M, Bucinski A, Luczkiewicz M (2009) In vitro cultures of / Cyclopia plants (honeybush) as a source of bioactive xanthones and flavanones. Z Naturforsch 64c:533-40
    27. Li L, Zhang CR (2006) Production of puerarin and isoflavones in cell suspension cultures of / Pueraria lobata (Willd.): effects of medium supplementation with casein hydrolysate and coconut milk. J Environ Biol 27:21-6
    28. Luczkiewicz M, Cisowski W (2001) Optimization of the second phase of a two phase growth system for anthocyanin accumulation in callus cultures of / Rudbeckia hirta. Plant Cell Tissue Organ Cult 65:57-8 CrossRef
    29. Luczkiewicz M, Glod D (2005) Morphogenesis-dependent accumulation of phytoestrogens in / Genista tinctoria in vitro cultures. Plant Sci 168:967-79 CrossRef
    30. Luczkiewicz M, Kokotkiewicz A (2012) Elicitation and permeabilisation affect the accumulation and storage profile of phytoestrogens in high productive suspension cultures of / Genista tinctoria. Acta Physiol Plant 34:1-6 CrossRef
    31. Luczkiewicz MT (2008) Research into isoflavonoid phyto-oestrogens in plant cell cultures. In: Ramawat KG, Merillon JM (eds) Bioactive molecules and medicinal plants. Springer-Verlag, Berlin Heidelberg, pp 55-4 CrossRef
    32. Mohamed MF, Read PE, Coyne DP (1992) Dark preconditioning, CPPU, and thidiazuron promote shoot organogenesis on seedling node explants of common and faba beans. J Amer Soc Hort Sci 117:668-72
    33. Pan H, Fang C, Zhou T, Wang Q, Chen J (2007) Accumulation of calycosin and its 7- / O- / β-D-glucoside and related gene expression in seedlings of / Astragalus membranaceus Bge. var. / mongholicus (Bge.) Hsiao induced by low temperature stress. Plant Cell Rep 26:1111-120 CrossRef
    34. Pasqua G, Avato P, Monacelli B, Santamaria AR, Argentieri MP (2003) Metabolites in cell suspension cultures, calli, and in vitro regenerated organs of / Hypericum perforatum cv. Topas. Plant Sci 165:977-82 CrossRef
    35. Patisaul HB, Jefferson W (2010) The pros and cons of phytoestrogens. Front Neuroendocrinol 31:400-19 CrossRef
    36. Sharma V, Goyal S, Ramawat KG (2009) Scale up production of isoflavonoids in cell suspension cultures of / Pueraria tuberosa grown in shake flasks and bioreactor. Eng Life Sci 9:267-71 CrossRef
    37. Shinde AN, Malpathak N, Fulzele DP (2009a) Studied enhancement strategies for phytoestrogens production in shake flasks by suspension culture of / Psoralea corylifolia. Bioresour Technol 100:1833-839 CrossRef
    38. Shinde AN, Malpathak N, Fulzele DP (2009b) Optimized production of isoflavones in cell cultures of / Psoralea corylifolia L. using elicitation and precursor feeding. Biotechnol Bioprocess Eng 14:612-18 CrossRef
    39. Terrier B, Courtois D, Hénault N, Cuvier A, Bastin M, Aknin A, Dubreuil J, Pétiard V (2007) Two new disposable bioreactors for plant cell culture: the wave and undertow bioreactor and the slug bubble bioreactor. Biotechnol Bioeng 96:914-23 CrossRef
    40. Thwe AA, Mai NTT, Li X, Kim Y, Kim YB, MdR U, Kim YS, Bae H, Kim HH, Lee MY, Park SU (2012) Production of astragaloside and flavones from adventitious root cultures of / Astragalus membranaceus var. / mongholicus. Plant Omics J 5:466-70
    41. Wu Q, Wang M, Simon JE (2003) Determination of isoflavones in red clover and related species by high-performance liquid chromatography combined with ultraviolet and mass spectrometric detection. J Chromatogr A 1016:195-09 CrossRef
    42. Wu SQ, Lian ML, Gao R, Park SY, Piao XC (2011) Bioreactor application on adventitious root culture of / Astragalus membranaceus. In Vitro Cell Dev Biol -Plant 47:719-24 CrossRef
    43. Wu T, Bligh SWA, Gu L-H, Wang Z-T, Liu H-P, Cheng X-M, Branford-White CJ, Hu Z-B (2005) Simultaneous determination of six isoflavonoids in commercial / Radix astragali by HPLC-UV. Fitoterapia 76:157-65 CrossRef
    44. Yanagihara K, Ito A, Toge T, Numoto M (1993) Antiproliferative effects of isoflavones on human cancer cell lines established from the gastrointestinal tract. Cancer Res 53:5815-821
    45. Yong JWH, Ge L, Ng YF, Tan SN (2009) The chemical composition and biological properties of coconut ( / Cocos nucifera L.) water. Molecules 14:5144-164 CrossRef
    46. Zhou M-L, Zhu X-M, Shao J-R, Tang Y-X, Wu Y-M (2011) Production and metabolic engineering of bioactive substances in plant hairy root culture. Appl Microbiol Biotechnol 90:1229-239 CrossRef
  • 作者单位:Adam Kokotkiewicz (1)
    Maria Luczkiewicz (1)
    Wiktor Kowalski (1)
    Anna Badura (2)
    Natalia Piekus (2)
    Adam Bucinski (2)

    1. The Chair and Department of Pharmacognosy, Faculty of Pharmacy, Medical University of Gdansk, al. gen. J. Hallera 107, 80-416, Gdansk, Poland
    2. Department of Biopharmacy, Faculty of Pharmacy, Ludwik Rydygier Collegium Medicum in Bydgoszcz, Nicolaus Copernicus University in Torun, ul. dr A. Jurasza 2, 85-089, Bydgoszcz, Poland
  • ISSN:1432-0614
文摘
Suspension cultures of the endemic South-African plant Cyclopia subternata were established for the first time and evaluated for the presence of isoflavones. The influence of light, as well as medium supplementation strategies with phenylalanine, casein hydrolysate and coconut water on biomass growth and isoflavone production were examined. The highest levels of 7-O-β-glucosides of calycosin, pseudobaptigenin and formononetin (275.57, 125.37 and 147.28?mg/100?g DW, respectively) were recorded for cultures grown in the absence of light, whereas coconut water substantially promoted biomass growth. Cell suspensions were subsequently grown in the 2-l stirred-tank bioreactor. Maximum productivity of 7-O-β-glucosides of calycosin, pseudobaptigenin and formononetin (0.96, 0.44 and 0.22?mg?l??day?, respectively) in bioreactor-cultivated cells was obtained for biomass grown in the dark and supplemented with coconut water. The results indicate that C. subternata suspension cultures can be utilised for the production of the specified isoflavone derivatives absent in the intact plant.

© 2004-2018 中国地质图书馆版权所有 京ICP备05064691号 京公网安备11010802017129号

地址:北京市海淀区学院路29号 邮编:100083

电话:办公室:(+86 10)66554848;文献借阅、咨询服务、科技查新:66554700