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2011 | 53 | 1 |

Tytuł artykułu

ISSR analysis of somaclonal variation in callus-derived plants of Amorphophallus rivieri Durieu

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Treść / Zawartość

Warianty tytułu

Języki publikacji

EN

Abstrakty

EN
This communication reports detection of somaclonal variation among tissue culture-raised plants of Amorphophallus rivieri Durieu, an economically important crop in China, with high content of glucomannan in its corms. A population of regenerated plants was obtained from a single donor plant of A. rivieri via corm organogenesis, and 28 plants were randomly selected as a representative sample and subjected to analysis of somaclonal variation using inter-simple sequence repeat (ISSR) markers. Of the 26 ISSR primers screened, 13 gave distinct and reproducible band patterns, yielding 131 bands with an average of 10.1 bands per primer. Ten primers were polymorphic and generated 16 polymorphic bands with 12.2% mean polymorphism. Based on the ISSR data from the regenerated plants and the donor plant, Jaccard's similarity coefficients were calculated; they ranged from 0.961 to 1.000 with a mean of 0.982. A dendrogram was constructed using the unweighted pair group method with arithmetic mean (UPGMA); it showed that a majority of regenerated plants (including the donor plant) clustered closely, with a mean similarity coefficient of 0.987. Low somaclonal variation observed in the regenerated plants indicates that rapid propagation of A. rivieri via corm organogenesis is a practicable method with a low risk of genetic instability.

Wydawca

-

Rocznik

Tom

53

Numer

1

Opis fizyczny

p.120-124,fig.,ref.

Twórcy

autor
  • College of Horticulture, Henan Agricultural University, 95 Wenhua Road, Zhengzhou 450002, P.R.China
autor
autor

Bibliografia

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  • BHATIA R, SINGH KP, JHANG T, and SHARMA TR. 2009. Assessment of clonal fidelity of micropropagated gerberaplants by ISSR markers. Scientia Horticulturae 119:208–211.
  • BHATTACHARYA S, BANDOPADHYAY TK, and GHOSH PD. 2010. Somatic embryogenesis in Cymbopogon pendulus andevaluation of clonal fidelity of regenerants using ISSRmarker. Scientia Horticulturae 123: 505–513.
  • DANFENG H, AIZHONG W, and PEIYING L. 1995. Study on genetic stability of Amorphophallus rivieri tissue culture progenies.Acta Horticulture 402: 214–221.
  • GUO WL, GONG L, DING ZF, LI YD, LI FX, ZHAO SP, and LIU B. 2006. Genomic instability in phenotypically normalregenerants of medicinal plant Codonopsis lanceolataBenth. et Hook. f., as revealed by ISSR and RAPD markers.Plant Cell Reports 25: 896–906.
  • HU JB, LIU J, YAN HB, and XIE CH. 2005. Histological observations of morphogenesis in petiole derived callus of Amorphophallus rivieri Durieu in vitro. Plant CellReports 24: 642–648.
  • HU J, GAO X, LIU J, XIE C, and LI J. 2008. Plant regeneration from petiole callus of Amorphophallus albus and analysisof somaclonal variation of regenerated plants by RAPD andISSR markers. Botanical Studies 49: 189–197.
  • HUANG WJ, NING GG, LIU GF, and BAO MZ. 2009. Determination of genetic stability of long-term micropropagated plantlets of Platanus acerifolia using ISSRmarkers. Biologia Plantarum 53: 159–163.
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  • NAGAOKA T, and OGIHARA Y. 1997. Applicability of inter-simple sequence repeat polymorphisms in wheat for use as DNAmarkers in comparison to RFLP and RAPD markers. Theoretical and Applied Genetics 94: 597–602.
  • NING GG, FAN XL, HUANG WJ, BAO MZ, and ZHANG JB. 2007. Micropropagation of six Prunus mume cultivars throughhigh-frequency axillary shoots proliferation and ISSRanalysis of cloned plants. Acta Biologica CracoviensiaSeries Botanica 49: 25–31.
  • NISHINARI K, WILLIAMS PA, and PHILLIP GO. 1992. Review of the physico-chemical characteristics and properties of konjac glucomannan. Food Hydrocolloids 6: 199–222.
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  • ROHLF FJ. 2000. NTSYS-pc: Numerical taxonomy and multivariate analysis system, version 2.1. Exeter Publications,New York.
  • THOMAS J, VIJAYAN D, JOSHI SD, LOPEZ SJ, and KUMAR RR. 2006. Genetic integrity of somaclonal variants in tea[Camellia sinensis (L.) O Kuntze] as revealed by intersimple sequence repeats. Journal of Biotechnology 132:149–154.
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Typ dokumentu

Bibliografia

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Identyfikator YADDA

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