Estimation of gene flow in the tropical-rainforest tree Neobalanocarpus heimii (Dipterocarpaceae), inferred from paternity analysis

被引:92
作者
Konuma, A
Tsumura, Y
Lee, CT
Lee, SL
Okuda, T
机构
[1] Natl Inst Environm Studies, Global Environm Div, Tsukuba, Ibaraki 3050053, Japan
[2] Forestry & Forest Prod Res Inst, Kukizaki, Ibaraki 3058687, Japan
[3] Forest Res Inst Malaysia, Kuala Lumpur 52109, Malaysia
关键词
genetic structure; microsatellite; Neobalanocarpus heimii; paternity analysis; pollen flow;
D O I
10.1046/j.1365-294x.2000.01081.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
Pollen flow and population genetic structure among 30 potentially flowering individuals of Neobalanocarpus heimii, a tropical emergent tree, were investigated in a lowland tropical rainforest of Malaysia using microsatellite polymorphism. The 248 offspring in the vicinity of five reproductive trees of the 30 potentially flowering trees were used in paternity analysis for pollen-flow study. Four primer pairs, developed in different species of dipterocarps, were adopted to detect microsatellite polymorphism. Based upon microsatellite polymorphism pollen flow and seed migration were detected. Pollen-flow events of more than 400 m were observed directly, based on paternity analysis in the study plot. The estimated average mating distance of the five reproductive trees was 524 m. This result suggests that reproduction of this species is mediated by a long-distance pollinator. The haplotypes of some offspring were not compatible with the nearest reproductive tree. Thus, the results suggest that some seeds are dispersed by a seed dispersal vector. Investigation of genetic structure showed significant and negative correlation of genetic relatedness and spatial distances between the 30 potentially flowering trees, but this correlation was weak. We suggest that long-distance gene flow and seed migration are responsible for the poorly developed genetic structure of this species.
引用
收藏
页码:1843 / 1852
页数:10
相关论文
共 40 条
[11]   Conservation of microsatellites among tropical trees (Leguminosae) [J].
Dayanandan, S ;
Bawa, KS ;
Kesseli, R .
AMERICAN JOURNAL OF BOTANY, 1997, 84 (12) :1658-1663
[12]  
Dayanandan S, 1990, REPROD ECOLOGY TROPI, P103
[13]   GENETIC-STRUCTURE, OUTCROSSING RATE AND HETEROSIS IN ASTROCARYUM-MEXICANUM (TROPICAL PALM) - IMPLICATIONS FOR EVOLUTION AND CONSERVATION [J].
EGUIARTE, LE ;
PEREZNASSER, N ;
PINERO, D .
HEREDITY, 1992, 69 :217-228
[14]  
Epperson BK, 1997, EVOLUTION, V51, P672, DOI [10.2307/2411144, 10.1111/j.1558-5646.1997.tb03651.x]
[15]   Measurement of genetic structure within populations using Moran's spatial autocorrelation statistics [J].
Epperson, BK ;
Li, TQ .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1996, 93 (19) :10528-10532
[16]   Disturbance-induced density-dependent seed set in Shorea siamensis (Dipterocarpaceae), a tropical forest tree [J].
Ghazoul, J ;
Liston, KA ;
Boyle, TJB .
JOURNAL OF ECOLOGY, 1998, 86 (03) :462-473
[17]  
GOODNIGHT KF, 1999, RELATEDENESS VERSION
[18]   Tropical tree gene flow and seed dispersal [J].
Hamilton M.B. .
Nature, 1999, 401 (6749) :129-130
[19]  
Hamrick James L., 1996, P203
[20]   Molecular phylogeny of dipetrocarpaceae in Southeast Asia based on nucleotide sequences of matK, trnL intron, and trnL-trnF intergenic spacer region in chloroplast DNA [J].
Kajita, T ;
Kamiya, K ;
Nakamura, K ;
Tachida, H ;
Wickneswari, R ;
Tsumura, Y ;
Yoshimaru, H ;
Yamazaki, T .
MOLECULAR PHYLOGENETICS AND EVOLUTION, 1998, 10 (02) :202-209