Application of biotechnology in breeding lentil for resistance to biotic and abiotic stress

被引:61
作者
Muehlbauer, FJ
Cho, S
Sarker, A
McPhee, KE
Coyne, CJ
Rajesh, PN
Ford, R
机构
[1] Washington State Univ, USDA ARS, Pullman, WA 99164 USA
[2] Univ Minnesota, Dept Agron & Plant Genet, St Paul, MN 55108 USA
[3] Int Ctr Agr Res Dry Areas, Germplasm Program, Aleppo, Syria
[4] Univ Melbourne, Sch Agr & Food Syst, Melbourne, Vic 3002, Australia
关键词
genetic mapping; genomics; Lens culinaris; marker-assisted-selection; synteny;
D O I
10.1007/s10681-006-7108-0
中图分类号
S3 [农学(农艺学)];
学科分类号
0901 ;
摘要
Lentil is a self-pollinating diploid (2n = 14 chromosomes) annual cool season legume crop that is produced throughout the world and is highly valued as a high protein food. Several abiotic stresses are important to lentil yields world wide and include drought, heat, salt susceptibility and iron deficiency. The biotic stresses are numerous and include: susceptibility to Ascochyta blight, caused by Ascochyta lentis; Anthracnose, caused by Colletotrichum truncatum; Fusarium wilt, caused by Fusarium oxysporum; Sclerotinia white mold, caused by Sclerotinia sclerotiorum; rust, caused by Uromyces fabae; and numerous aphid transmitted viruses. Lentil is also highly susceptible to several species of Orabanche prevalent in the Mediterranean region, for which there does not appear to be much resistance in the germplasm. Plant breeders and geneticists have addressed these stresses by identifying resistant/tolerant germplasm, determining the genetics involved and the genetic map positions of the resistant genes. To this end progress has been made in mapping the lentil genome and several genetic maps are available that eventually will lead to the development of a consensus map for lentil. Marker density has been limited in the published genetic maps and there is a distinct lack of co-dominant markers that would facilitate comparisons of the available genetic maps and efficient identification of markers closely linked to genes of interest. Molecular breeding of lentil for disease resistance genes using marker assisted selection, particularly for resistance to Ascochyta blight and Anthracnose, is underway in Australia and Canada and promising results have been obtained. Comparative genomics and synteny analyses with closely related legumes promises to further advance the knowledge of the lentil genome and provide lentil breeders with additional genes and selectable markers for use in marker assisted selection. Genomic tools such as macro and micro arrays, reverse genetics and genetic transformation are emerging technologies that may eventually be available for use in lentil crop improvement.
引用
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页码:149 / 165
页数:17
相关论文
共 145 条
[91]  
MONTI L, 1994, CURR PLANT SCI BIOT, V19, P204
[92]   Cross-species hybridisation of pig RNA to human nylon microarrays [J].
Moody, DE ;
Zou, Z ;
McIntyre, L .
BMC GENOMICS, 2002, 3 (1)
[93]   INHERITANCE AND LINKAGE RELATIONSHIPS OF MORPHOLOGICAL AND ISOZYME LOCI IN LENTIL (LENS MILLER) [J].
MUEHLBAUER, FJ ;
WEEDEN, NF ;
HOFFMAN, DL .
JOURNAL OF HEREDITY, 1989, 80 (04) :298-303
[94]  
MUEHLBAUER FJ, 2002, P LENT FOC 2002 M HO
[95]  
Nacry P, 1998, GENETICS, V149, P641
[96]   Association genetics of complex traits in conifers [J].
Neale, DB ;
Savolainen, O .
TRENDS IN PLANT SCIENCE, 2004, 9 (07) :325-330
[97]   Components of rust resistance in lentil [J].
Negussie, T ;
Pretorius, ZA ;
Bender, CM .
EUPHYTICA, 2005, 142 (1-2) :55-64
[98]   A novel source of resistance in lentil (Lens culinaris ssp culinaris) to ascochyta blight caused by Ascochyta lentis [J].
Nguyen, TT ;
Taylor, PWJ ;
Brouwer, JB ;
Pang, ECK ;
Ford, R .
AUSTRALASIAN PLANT PATHOLOGY, 2001, 30 (03) :211-215
[99]   DEVELOPMENT OF RELIABLE PCR-BASED MARKERS LINKED TO DOWNY MILDEW RESISTANCE GENES IN LETTUCE [J].
PARAN, I ;
MICHELMORE, RW .
THEORETICAL AND APPLIED GENETICS, 1993, 85 (08) :985-993
[100]  
PATERSON AH, 1991, ADV AGRON, V46, P39