Phytophthora colocasiae from Vietnam, China, Hawaii and Nepal: intra- and inter-genomic variations in ploidy and a long-lived, diploid Hawaiian lineage.

被引:12
作者
Shrestha, Sandesh Kumar [1 ]
Miyasaka, Susan C. [2 ]
Shintaku, Michael [3 ]
Kelly, Heather [4 ]
Lamour, Kurt [1 ]
机构
[1] Univ Tennessee, Dept Entomol & Plant Pathol, Knoxville, TN 37901 USA
[2] Univ Hawaii, Dept Trop Plant & Soil Sci, Hilo, HI 96720 USA
[3] Univ Hawaii, Coll Agr Forestry & Nat Resource Management, 200 W Kawili St, Hilo, HI 96720 USA
[4] Univ Tennessee, Dept Entomol & Plant Pathol, Jackson, TN USA
关键词
Ploidy; Phytophthora colocasiae; Taro; Oomycetes; SNP; Targeted sequencing; MATING-TYPE DISTRIBUTION; LEAF-BLIGHT; TARO; ISLAND; ASIA; DNA;
D O I
10.1007/s11557-017-1323-z
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
Phytophthora colocasiae is an important pathogen of taro and is widely distributed. Our goal was to develop whole genome sequence and single nucleotide polymorphism (SNP) markers to characterize historical and current populations from Hawaii (2010 and 2016, HA), historical isolates from Vietnam and China (2010, VN and CH) and current isolates from Nepal (2016, NEP). Seven isolates (VN = 2, CH = 1, HA = 1, NEP = 3) were sequenced (NCBI BioProject PRJNA378784) and compared using the reference genome of the closely related vegetable pathogen P. capsici. Genome-wide SNP analysis using 27,537 markers revealed genomes of diploid, triploid, tetraploid and higher ploidy. Ploidy varied within and between populations, with HA being primarily diploid, CH primarily triploid, VN containing diploid and triploid isolates, and NEP having predominantly triploid, tetraploid and higher ploidy. A total of 37 SNP markers were genotyped in 89 samples (grown in culture or directly from infected tissue) using targeted-sequencing. Analyses indicate a single clonal lineage dominated populations in HA from 2010 to 2016 and targeted-sequencing was useful to estimate ploidy. The implications for adaptation and evolution of P. colocasiae are discussed, as well as consequences for selection and breeding of resistant taro cultivars.
引用
收藏
页码:893 / 904
页数:12
相关论文
共 32 条
[1]   Stress-Induced Phenotypic Switching in Candida albicans [J].
Alby, Kevin ;
Bennett, Richard J. .
MOLECULAR BIOLOGY OF THE CELL, 2009, 20 (14) :3178-3191
[2]   MATING-TYPE DISTRIBUTION OF PHYTOPHTHORA-COLOCASIAE IN TAIWAN [J].
ANN, PJ ;
KAO, CW ;
KO, WH .
MYCOPATHOLOGIA, 1986, 93 (03) :193-194
[3]   First Report of Taro (Colocasia esculenta) Leaf Blight Caused by Phytophthora colocasiae in Nigeria [J].
Bandyopadhyay, R. ;
Sharma, K. ;
Onyeka, T. J. ;
Aregbesola, A. ;
Kumar, P. Lava .
PLANT DISEASE, 2011, 95 (05) :618-618
[4]   Does stress induce (para)sex? Implications for Candida albicans evolution [J].
Berman, Judith ;
Hadany, Lilach .
TRENDS IN GENETICS, 2012, 28 (05) :197-203
[5]  
Brooks F, 2005, PLANT HLTH INSTRUCTO, DOI [10.1094/PHII2005053101, DOI 10.1094/PHII2005053101]
[6]   Temporal Genetic Dynamics of an Experimental, Biparental Field Population of Phytophthora capsici [J].
Carlson, Maryn O. ;
Gazave, Elodie ;
Gore, Michael A. ;
Smart, Christine D. .
FRONTIERS IN GENETICS, 2017, 8
[7]  
Huang A. S., 2000, Journal of Food Composition and Analysis, V13, P859, DOI 10.1006/jfca.2000.0936
[8]   Molecular characterization of taro (Colocasia esculenta) using RAPD markers [J].
Irwin, SV ;
Kaufusi, P ;
Banks, K ;
de la Peña, R ;
Cho, JJ .
EUPHYTICA, 1998, 99 (03) :183-189
[9]   MATING-TYPE DISTRIBUTION OF PHYTOPHTHORA-COLOCASIAE ON THE ISLAND OF HAWAII [J].
KO, WH .
MYCOLOGIA, 1979, 71 (02) :434-437
[10]   Genetic diversity of taro, Colocasia esculenta (L.) Schott, in Southeast Asia and the Pacific ok [J].
Kreike, CM ;
Van Eck, HJ ;
Lebot, V .
THEORETICAL AND APPLIED GENETICS, 2004, 109 (04) :761-768