Data from amplified fragment length polymorphism (AFLP) markers show indication of size homoplasy and of a relationship between degree of homoplasy and fragment size

被引:708
作者
Vekemans, X
Beauwens, T
Lemaire, M
Roldán-Ruiz, I
机构
[1] Free Univ Brussels, Lab Genet & Ecol Vegetales, B-1160 Brussels, Belgium
[2] Ctr Agr Res Gent, Dept Genet & Plant Breeding, B-9090 Melle, Belgium
关键词
AFLP; genetic diversity; homoplasy; Lolium perenne; Phaseolus lunatus;
D O I
10.1046/j.0962-1083.2001.01415.x
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
We investigate the distribution of sizes of fragments obtained from the amplified fragment length polymorphism (AFLP) marker technique. We find that empirical distributions obtained in two plant species, Phaseolus lunatus and Lolium perenne, are consistent with the expected distributions obtained from analytical theory and from numerical simulations. Our results indicate that the size distribution is strongly asymmetrical, with a much higher proportion of small than large fragments, that it is not influenced by the number of selective nucleotides nor by genome size but that it may vary with genome-wide GC-content, with a higher proportion of small fragments in cases of lower GC-content when considering the standard AFLP protocol with the enzyme MseI. Results from population samples of the two plant species show that there is a negative relationship between AFLP fragment size and fragment population frequency. Monte Carlo simulations reveal that size homoplasy, arising from pulling together nonhomologous fragments of the same size, generates patterns similar to those observed in P. lunatus and L. perenne because of the asymmetry of the size distribution. We discuss the implications of these results in the context of estimating genetic diversity with AFLP markers.
引用
收藏
页码:139 / 151
页数:13
相关论文
共 42 条
[31]   Genetic structure and AFLP variation of remnant populations in the rare plant Pedicularis palustris (Scrophulariaceae) and its relation to population size and reproductive components [J].
Schmidt, K ;
Jensen, K .
AMERICAN JOURNAL OF BOTANY, 2000, 87 (05) :678-689
[32]   Assessment of genetic diversity in Azadirachta indica using AFLP markers [J].
Singh, A ;
Negi, MS ;
Rajagopal, J ;
Bhatia, S ;
Tomar, UK ;
Srivastava, PS ;
Lakshmikumaran, M .
THEORETICAL AND APPLIED GENETICS, 1999, 99 (1-2) :272-279
[33]  
Sokal RR., 2012, BIOMETRY, V4rd
[34]   An analysis of genetic diversity in coconut (Cocos nucifera) populations from across the geographic range using sequence-tagged microsatellites (SSRs) and AFLPs [J].
Teulat, B ;
Aldam, C ;
Trehin, R ;
Lebrun, P ;
Barker, JHA ;
Arnold, GM ;
Karp, A ;
Baudouin, L ;
Rognon, F .
THEORETICAL AND APPLIED GENETICS, 2000, 100 (05) :764-771
[35]   Genetic linkage in the estimation of pairwise relationship [J].
Thompson, EA ;
Meagher, TR .
THEORETICAL AND APPLIED GENETICS, 1998, 97 (5-6) :857-864
[36]   COMPARISON OF RFLP AND RAPD MARKERS TO ESTIMATING GENETIC-RELATIONSHIPS WITHIN AND AMONG CRUCIFEROUS SPECIES [J].
THORMANN, CE ;
FERREIRA, ME ;
CAMARGO, LEA ;
TIVANG, JG ;
OSBORN, TC .
THEORETICAL AND APPLIED GENETICS, 1994, 88 (08) :973-980
[37]   AFLP - A NEW TECHNIQUE FOR DNA-FINGERPRINTING [J].
VOS, P ;
HOGERS, R ;
BLEEKER, M ;
REIJANS, M ;
VANDELEE, T ;
HORNES, M ;
FRIJTERS, A ;
POT, J ;
PELEMAN, J ;
KUIPER, M ;
ZABEAU, M .
NUCLEIC ACIDS RESEARCH, 1995, 23 (21) :4407-4414
[38]   A study of genetic diversity in Populus nigra subsp. betulifolia in the upper severn area of the UK using AFLP markers [J].
Winfield, MO ;
Arnold, GM ;
Cooper, F ;
Le Ray, M ;
White, J ;
Karp, A ;
Edwards, KJ .
MOLECULAR ECOLOGY, 1998, 7 (01) :3-10
[39]   Differentiation of bermudagrass (Cynodon spp.) genotypes by AFLP analyses [J].
Zhang, LH ;
Ozias-Akins, P ;
Kochert, G ;
Kresovich, S ;
Dean, R ;
Hanna, W .
THEORETICAL AND APPLIED GENETICS, 1999, 98 (6-7) :895-902
[40]   Estimating population structure in diploids with multilocus dominant DNA markers [J].
Zhivotovsky, LA .
MOLECULAR ECOLOGY, 1999, 8 (06) :907-913