Expression and inheritance of sporophytic self-incompatibility in synthetic allohexaploid Senecio cambrensis (Asteraceae)

被引:18
作者
Brennan, Adrian C. [2 ]
Hiscock, Simon J. [1 ]
机构
[1] Univ Bristol, Sch Biol Sci, Bristol BS8 1UG, Avon, England
[2] Univ St Andrews, Sch Biol, St Andrews KY16 9TH, Fife, Scotland
关键词
allopolyploidy; hybridization; mixed mating; self-compatibility; self-incompatibility; Senecio; SQUALIDUS L. ASTERACEAE; INTERSPECIFIC HYBRIDIZATION; UNILATERAL INCOMPATIBILITY; POPULATION-GENETICS; HYBRID SPECIATION; MULTIPLE ORIGINS; EVOLUTION; POLYPLOIDY; DIVERSITY; BREAKDOWN;
D O I
10.1111/j.1469-8137.2009.03082.x
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
P>Allopolyploid speciation is common in plants and is frequently associated with shifts from outcrossing, for example self-incompatibility, to inbreeding (i.e. selfing). Senecio cambrensis is a recently evolved allohexaploid species that formed following hybridization between diploid self-incompatible S. squalidus and tetraploid self-compatible S. vulgaris. Studies of reproduction in wild populations of S. cambrensis have concluded that it is self-compatible. Here, we investigated self-compatibility in synthetic lines of S. cambrensis generated via hybridization and colchicine-induced polyploidization and wild S. cambrensis using controlled crossing experiments. Synthetic F1S. cambrensis individuals were all self-compatible but, in F-2 and later generations, self-incompatible individuals were identified at frequencies of 6.7-9.2%. Self-incompatibility was also detected in wild sampled individuals at a frequency of 12.2%. The mechanism and genetics of self-incompatibility were tested in synthetic S. cambrensis and found to be similar to those of its paternal parent S. squalidus (i.e. sporophytic). These results show, for the first time, that functional sporophytic self-incompatibility can be inherited and expressed in allopolyploids as early as the second (F-2) generation. Wild S. cambrensis should therefore be considered as possessing a mixed mating system with the potential for evolution towards either inbreeding or outcrossing.
引用
收藏
页码:251 / 261
页数:11
相关论文
共 79 条
[71]   Molecular mechanisms underlying the breakdown of gametophytic self-incompatibility [J].
Stone, JL .
QUARTERLY REVIEW OF BIOLOGY, 2002, 77 (01) :17-32
[72]   Genetic analysis of novel intra-species unilateral incompatibility in Brassica rapa (syn. campestris) L. [J].
Takada, Y ;
Nakanowatari, T ;
Sato, J ;
Hatakeyama, K ;
Kakizaki, T ;
Ito, A ;
Suzuki, G ;
Shiba, H ;
Takayama, S ;
Isogai, A ;
Watanabe, M .
SEXUAL PLANT REPRODUCTION, 2005, 17 (05) :211-217
[73]   Self-incompatibility in plants [J].
Takayama, S ;
Isogai, A .
ANNUAL REVIEW OF PLANT BIOLOGY, 2005, 56 :467-489
[74]   Is self-fertilization an evolutionary dead end? Revisiting an old hypothesis with genetic theories and a macroevolutionary approach [J].
Takebayashi, N ;
Morrell, PL .
AMERICAN JOURNAL OF BOTANY, 2001, 88 (07) :1143-1150
[75]  
Turelli M, 2000, GENETICS, V154, P1663
[76]   Hybridization and evolution in Cardamine (Brassicaceae) at Urnerboden, central Switzerland: Biosystematic and molecular evidence [J].
Urbanska, KM ;
Hurka, H ;
Landolt, E ;
Neuffer, B ;
Mummenhoff, K .
PLANT SYSTEMATICS AND EVOLUTION, 1997, 204 (3-4) :233-256
[77]  
Vekemans X, 1998, EVOLUTION, V52, P19, DOI 10.1111/j.1558-5646.1998.tb05134.x
[78]  
Vogler DW, 2001, EVOLUTION, V55, P202, DOI 10.1111/j.0014-3820.2001.tb01285.x
[79]   RAY MORPHOLOGY AND CYTOLOGICAL INVESTIGATIONS OF SENECIO-CAMBRENSIS ROSSER [J].
WEIR, J ;
INGRAM, R .
NEW PHYTOLOGIST, 1980, 86 (02) :237-241