Somatic hybrid plants of Nicotiana x sanderae (+) N. debneyi with fungal resistance to Peronospora tabacina

被引:19
作者
Patel, Deval [1 ]
Power, J. Brian [1 ]
Anthony, Paul [1 ]
Badakshi, Farah [2 ]
Heslop-Harrison, J. S. [2 ]
Davey, Michael R. [1 ]
机构
[1] Univ Nottingham, Sch Biosci, Plant & Crop Sci Div, Loughborough LE12 5RD, Leics, England
[2] Univ Leicester, Dept Biol, Leicester LE1 7RH, Leics, England
关键词
Chloroplast DNA (cpDNA); protoplasts; electrofusion; fungal resistance; genomic in situ hybridization (GISH); mitochondrial DNA (mtDNA); Nicotiana debneyi; N. x sanderae; Peronospora tabacina; random amplified polymorphic DNA (RAPD); somatic hybridization; GENE; DNA; HYBRIDIZATION; INACTIVATION; REGENERATION; PROTOPLASTS; DIVERSITY; NUCLEAR; CULTURE; TAXA;
D O I
10.1093/aob/mcr197
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Background and Aims The genus Nicotiana includes diploid and tetraploid species, with complementary ecological, agronomic and commercial characteristics. The species are of economic value for tobacco, as ornamentals, and for secondary plant-product biosynthesis. They show substantial differences in disease resistance because of their range of secondary products. In the last decade, sexual hybridization and transgenic technologies have tended to eclipse protoplast fusion for gene transfer. Somatic hybridization was exploited in the present investigation to generate a new hybrid combination involving two sexually incompatible tetraploid species. The somatic hybrid plants were characterized using molecular, molecular cytogenetic and phenotypic approaches. Methods Mesophyll protoplasts of the wild fungus-resistant species N. debneyi (2n = 4x = 48) were electrofused with those of the ornamental interspecific sexual hybrid N. x sanderae (2n = 2x = 18). From 1570 protoplast-derived cell colonies selected manually in five experiments, 580 tissues were sub-cultured to shoot regeneration medium. Regenerated plants were transferred to the glasshouse and screened for their morphology, chromosomal composition and disease resistance. Key Results Eighty-nine regenerated plants flowered; five were confirmed as somatic hybrids by their intermediate morphology compared with parental plants, cytological constitution and DNA-marker analysis. Somatic hybrid plants had chromosome complements of 60 or 62. Chromosomes were identified to parental genomes by genomic in situ hybridization and included all 18 chromosomes from N. x sanderae, and 42 or 44 chromosomes from N. debneyi. Four or six chromosomes of one ancestral genome of N. debneyi were eliminated during culture of electrofusion-treated protoplasts and plant regeneration. Both chloroplasts and mitochondria of the somatic hybrid plants were probably derived from N. debneyi. All somatic hybrid plants were fertile. In contrast to parental plants of N. x sanderae, the seed progeny of somatic hybrid plants were resistant to infection by Peronospora tabacina, a trait introgressed from the wild parent, N. debneyi. Conclusions Sexual incompatibility between N. x sanderae and N. debneyi was circumvented by somatic hybridization involving protoplast fusion. Asymmetrical nuclear hybridity was seen in the hybrids with loss of chromosomes, although importantly, somatic hybrids were fertile and stable. Expression of fungal resistance makes these somatic hybrids extremely valuable germplasm in future breeding programmes in ornamental tobacco.
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收藏
页码:809 / 819
页数:11
相关论文
共 42 条
[1]   Phenotypic, genetic and genomic consequences of natural and synthetic polyploidization of Nicotiana attenuata and Nicotiana obtusifolia [J].
Anssour, S. ;
Kruegel, T. ;
Sharbel, T. F. ;
Saluz, H. P. ;
Bonaventure, G. ;
Baldwin, I. T. .
ANNALS OF BOTANY, 2009, 103 (08) :1207-1217
[2]   Identification of two RAPD markers tightly linked with the Nicotiana debneyi gene for resistance to black root rot of tobacco [J].
Bai, D ;
Reeleder, R ;
Brandle, JE .
THEORETICAL AND APPLIED GENETICS, 1995, 91 (08) :1184-1189
[3]   Production and characterization of tobacco addition lines carrying Nicotiana debneyi chromosomes with a gene for resistance to black root rot [J].
Bai, DP ;
Reeleder, R ;
Brandle, JE .
CROP SCIENCE, 1996, 36 (04) :852-857
[4]  
Baldwin IT, 2001, PLANT PHYSIOL, V127, P1449, DOI 10.1104/pp.010762
[5]   PARASEXUAL INTERSPECIFIC PLANT HYBRIDIZATION [J].
CARLSON, PS ;
SMITH, HH ;
DEARING, RD .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1972, 69 (08) :2292-+
[6]   Molecular systematics, GISH and the origin of hybrid taxa in Nicotiana (Solanaceae) [J].
Chase, MW ;
Knapp, S ;
Cox, AV ;
Clarkson, JJ ;
Butsko, Y ;
Joseph, J ;
Savolainen, V ;
Parokonny, AS .
ANNALS OF BOTANY, 2003, 92 (01) :107-127
[7]   Nuclear glutamine synthetase evolution in Nicotiana: Phylogenetics and the origins of allotetraploid and homoploid (diploid) hybrids [J].
Clarkson, James J. ;
Kelly, Laura J. ;
Leitch, Andrew R. ;
Knapp, Sandra ;
Chase, Mark W. .
MOLECULAR PHYLOGENETICS AND EVOLUTION, 2010, 55 (01) :99-112
[8]  
Clayton E. E., 1945, JOUR AGRIC RES, V70, P79
[9]   Plant protoplasts: status and biotechnological perspectives [J].
Davey, MR ;
Anthony, P ;
Power, JB ;
Lowe, KC .
BIOTECHNOLOGY ADVANCES, 2005, 23 (02) :131-171
[10]   A SET OF UNIVERSAL PRIMERS FOR AMPLIFICATION OF POLYMORPHIC NONCODING REGIONS OF MITOCHONDRIAL AND CHLOROPLAST DNA IN PLANTS [J].
DEMESURE, B ;
SODZI, N ;
PETIT, RJ .
MOLECULAR ECOLOGY, 1995, 4 (01) :129-131