Recombination and migration of Cryphonectria hypovirus 1 as inferred from gene genealogies and the coalescent

被引:82
作者
Carbone, I
Liu, YC
Hillman, BI
Milgroom, MG
机构
[1] Cornell Univ, Dept Plant Pathol, Ithaca, NY 14853 USA
[2] N Carolina State Univ, Dept Plant Pathol, Ctr Integrated Fungal Res, Raleigh, NC 27695 USA
[3] Rutgers State Univ, Dept Plant Pathol, New Brunswick, NJ 08901 USA
关键词
D O I
10.1534/genetics.166.4.1611
中图分类号
Q3 [遗传学];
学科分类号
071007 ; 090102 ;
摘要
Genealogy-based methods were used to estimate migration of the fungal virus Cryphonectria hypovirus I between vegetative compatibility types of the host fungus, Cryphonectria parasitica, as a means of estimating horizontal transmission within two host populations. Vegetative incompatibility is a self/non-self recognition system that inhibits virus transmission under laboratory conditions but its effect. on transmission in nature has not been clearly demonstrated. Recombination within and among different loci in the virus,genome restricted the genealogical analyses to haplotypes with common initiation and recombinational histories. The existence of recombination necessitated that we also Use genealogical approaches that can take advantage of both the imitation and recombinational histories of the sample. Virus migration between populations was significantly restricted. In contrast, estimates of migration between vegetative compatibility types were relatively high within populations despite previous evidence that transmission in the laboratory was restricted. The discordance between laboratory estimates and migration estimates from natural populations highlights the challenges in estimating pathogen transmission rates. Genealogical analyses inferred migration patterns throughout the entire coalescent history of one viral region in natural populations and not just recent patterns of migration or laboratory transmission. This application of genealogical analyses provides markedly stronger inferences on overall transmission rates than laboratory estimates do.
引用
收藏
页码:1611 / 1629
页数:19
相关论文
共 80 条
[31]   The structure of haplotype blocks in the human genome [J].
Gabriel, SB ;
Schaffner, SF ;
Nguyen, H ;
Moore, JM ;
Roy, J ;
Blumenstiel, B ;
Higgins, J ;
DeFelice, M ;
Lochner, A ;
Faggart, M ;
Liu-Cordero, SN ;
Rotimi, C ;
Adeyemo, A ;
Cooper, R ;
Ward, R ;
Lander, ES ;
Daly, MJ ;
Altshuler, D .
SCIENCE, 2002, 296 (5576) :2225-2229
[32]   Fatal attraction: Nonself recognition and heterokaryon incompatibility in filamentous fungi [J].
Glass, NL ;
Kaneko, I .
EUKARYOTIC CELL, 2003, 2 (01) :1-8
[33]   HETEROKARYOTIC TRANSMISSION OF SENESCENCE PLASMID DNA IN NEUROSPORA [J].
GRIFFITHS, AJF ;
KRAUS, SR ;
BARTON, R ;
COURT, DA ;
MYERS, CJ ;
BERTRAND, H .
CURRENT GENETICS, 1990, 17 (02) :139-145
[34]   ANCESTRAL INFERENCE IN POPULATION-GENETICS [J].
GRIFFITHS, RC ;
TAVARE, S .
STATISTICAL SCIENCE, 1994, 9 (03) :307-319
[35]   Ancestral inference from samples of DNA sequences with recombination [J].
Griffiths, RC ;
Marjoram, P .
JOURNAL OF COMPUTATIONAL BIOLOGY, 1996, 3 (04) :479-502
[36]  
HARTL DL, 1975, GENETICS, V81, P553
[37]   Temporal change in genetic structure and effective population size in steelhead trout (Oncorhynchus mykiss) [J].
Heath, DD ;
Busch, C ;
Kelly, J ;
Atagi, DY .
MOLECULAR ECOLOGY, 2002, 11 (02) :197-214
[38]   RECONSTRUCTING EVOLUTION OF SEQUENCES SUBJECT TO RECOMBINATION USING PARSIMONY [J].
HEIN, J .
MATHEMATICAL BIOSCIENCES, 1990, 98 (02) :185-200
[39]  
Hey J, 1997, GENETICS, V145, P833
[40]  
Hillman B. I., 2000, VIRUS TAXONOMY, P515