In vitro chili pepper biotechnology

被引:85
作者
Ochoa-Alejo N. [1 ]
Ramirez-Malagon R. [2 ]
机构
[1] Departmento de Ingeniería Genética de Plantas, Unidad de Biotecnología e Ingeniería Genética de Plantas, Instituto Politécnico Nacional (CINVESTAV-Unidad Irapuato), Irapuato, Gto. 36500
[2] Instituto de Ciencias Agrícolas, Universidad de Guanajuato, Irapuato, Gto. 36500
关键词
Capsaicinoids; Capsicum; Metabolite production; Plant regeneration; Transformation;
D O I
10.1007/s11627-001-0121-z
中图分类号
学科分类号
摘要
Chili pepper is an important horticultural crop that can surely benefit from plant biotechnology. However, although it is a Solanaceous member, developments in plant cell, tissue, and organ culture, as well as on plant genetic transformation, have lagged far behind those achieved for other members of the same family, such as tobacco (Nicotiana tabacum), tomato (Lycopersicon esculentum), and potato (Solanum tuberosum), species frequently used as model systems because of their facility to regenerate organs and eventually whole plants in vitro, and also for their ability to be genetically engineered by the currently available transformation methods. Capsicum members have been shown to be recalcitrant to differentiation and plant regeneration under in vitro conditions, which in turn makes it very difficult or inefficient to apply recombinant DNA technologies via genetic transformation aimed at genetic improvement against pests and diseases. Some approaches, however, have made possible the regeneration of chili pepper plants from in vitro-cultured cells, tissues, and organs through organogenesis or embryogenesis. Anther culture has been successfully applied to obtain haploid and doubled-haploid plants. Organogenic systems have been used for in vitro micropropagation as well as for genetic transformation. Application of both tissue culture and genetic transformation techniques have led to the development of chili pepper plants more resistant to at least one type of virus. Cell and tissue cultures have been applied successfully to the selection of variant cells exhibiting increased resistance to abiotic stresses, but no plants exhibiting the selected traits have been regenerated. Production of capsaicinoids, the hot principle of chili pepper fruits, by cells and callus tissues has been another area of intense research. The advances, limitations, and applications of chili pepper biotechnology are discussed.
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页码:701 / 729
页数:28
相关论文
共 140 条
[121]  
Sripichit P., Nawata E., Shigenaga S., The effects of exposure dose and dose rate of gamma radiation on in vitro shoot-forming capacity of cotyledon explants of red pepper (Capsicum annuum L. cv. Yatsufusa), Jap. J. Breed., 38, pp. 27-34, (1988)
[122]  
Sripichit P., Nawata E., Shigenaga S., Radiation-induced mutation by using in vitro adventitious bud technique in red pepper (Capsicum annuum L. cv. Yatsufusa) - Analysis of the variant appeared in M<sub>1</sub> generation, Jap. J. Breed., 38, pp. 141-150, (1988)
[123]  
Subhash K., Venkataiah P., Bhaskar P., Induction of streptomycin-resistant plantlets in Capsicum annuum L. through mutagenesis in vitro, Plant Cell. Rep., 16, pp. 111-113, (1996)
[124]  
Sudhakar Johnson T., Ravishankar G.A., Dhanaraj S., Pungency threshold of capsaicin produced by in vitro culture of placental tissues of Capsicum frutescens Mill, Food Biotechnol., 9, pp. 167-173, (1995)
[125]  
Sudhakar Johnson T., Ravishankar G.A., Venkataraman L.V., In vitro capsaicin production by immobilized cells and placental tissues of Capsicum annuum L. grown in liquid medium, Plant Sci., 70, pp. 223-229, (1990)
[126]  
Sudhakar Johnson T., Ravishankar G.A., Venkataraman L.V., Biotransformation of ferulic acid and vanillylamine to capsaicin and vanillin in immobilized cell cultures of Capsicum frutescens, Plant Cell. Tiss. Organ Cult., 44, pp. 117-121, (1996)
[127]  
Suzuki T., Kawada T., Iwai K., Biosynthesis of acyl moieties of capsaicin and its analogues from valine and leucine in Capsicum fruits, Plant Cell. Physiol., 22, pp. 23-32, (1981)
[128]  
Szasz A., Nervo G., Fari M., Screening for in vitro shoot-forming capacity of seedling explants in bell pepper (Capsicum annuum L.) genotypes and efficient regeneration using thidiazuron, Plant Cell Rep., 14, pp. 666-669, (1995)
[129]  
Tisserat B., Galletta P.D., In vitro flowering and fruiting of Capsicum frutescens L., HortScience, 30, pp. 130-132, (1995)
[130]  
Ulvskov P., Nielsen T.H., Seiden P., Marcussen J., Cytokinins and leaf development in sweet pepper (Capsicum annuum L.). I. Spatial distribution of endogenous cytokinins in relation to leaf growth, Planta, 188, pp. 70-77, (1992)