The genome of the soybean cyst nematode (Heterodera glycines) reveals complex patterns of duplications involved in the evolution of parasitism genes

被引:57
作者
Masonbrink, Rick [1 ,2 ]
Maier, Tom R. [1 ]
Muppirala, Usha [1 ,2 ]
Seetharam, Arun S. [1 ,2 ]
Lord, Etienne [3 ]
Juvale, Parijat S. [1 ]
Schmutz, Jeremy [4 ,5 ]
Johnson, Nathan T. [6 ]
Korkin, Dmitry [6 ,7 ]
Mitchum, Melissa G. [8 ]
Mimee, Benjamin [3 ]
Eves-van den Akker, Sebastian [9 ]
Hudson, Matthew [10 ]
Severin, Andrew J. [2 ]
Baum, Thomas J. [1 ]
机构
[1] Iowa State Univ, Dept Plant Pathol, Ames, IA USA
[2] Iowa State Univ, Genome Informat Facil, Ames, IA 50011 USA
[3] Agr & Agri Food Canada, St Jean, PQ, Canada
[4] Joint Genome Inst, Dept Energy, Walnut Creek, CA USA
[5] HudsonAlpha Inst Biotechnol, Huntsville, AL USA
[6] Worcester Polytech Inst, Bioinformat & Computat Biol Program, Worcester, MA 01609 USA
[7] Worcester Polytech Inst, Dept Comp Sci, Worcester, MA 01609 USA
[8] Univ Missouri, Div Plant Sci, Columbia, MO USA
[9] Univ Cambridge, Dept Plant Sci, Cambridge, England
[10] Univ Illinois, Dept Crop Sci, Urbana, IL 61801 USA
基金
美国国家科学基金会; 英国生物技术与生命科学研究理事会;
关键词
Heterodera glycines; SCN; Soybean cyst nematode; Genome; Tandem duplication; Effector; Evolution; ESOPHAGEAL GLAND-CELLS; GLOBODERA-PALLIDA; PLANT PARASITISM; SEQUENCE; ALIGNMENT; MELOIDOGYNE; ANNOTATION; BACTERIA; RNA; IDENTIFICATION;
D O I
10.1186/s12864-019-5485-8
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
BackgroundHeterodera glycines, commonly referred to as the soybean cyst nematode (SCN), is an obligatory and sedentary plant parasite that causes over a billion-dollar yield loss to soybean production annually. Although there are genetic determinants that render soybean plants resistant to certain nematode genotypes, resistant soybean cultivars are increasingly ineffective because their multi-year usage has selected for virulent H. glycines populations. The parasitic success of H. glycines relies on the comprehensive re-engineering of an infection site into a syncytium, as well as the long-term suppression of host defense to ensure syncytial viability. At the forefront of these complex molecular interactions are effectors, the proteins secreted by H. glycines into host root tissues. The mechanisms of effector acquisition, diversification, and selection need to be understood before effective control strategies can be developed, but the lack of an annotated genome has been a major roadblock.ResultsHere, we use PacBio long-read technology to assemble a H. glycines genome of 738 contigs into 123Mb with annotations for 29,769 genes. The genome contains significant numbers of repeats (34%), tandem duplicates (18.7Mb), and horizontal gene transfer events (151 genes). A large number of putative effectors (431 genes) were identified in the genome, many of which were found in transposons.ConclusionsThis advance provides a glimpse into the host and parasite interplay by revealing a diversity of mechanisms that give rise to virulence genes in the soybean cyst nematode, including: tandem duplications containing over a fifth of the total gene count, virulence genes hitchhiking in transposons, and 107 horizontal gene transfers not reported in other plant parasitic nematodes thus far. Through extensive characterization of the H. glycines genome, we provide new insights into H. glycines biology and shed light onto the mystery underlying complex host-parasite interactions. This genome sequence is an important prerequisite to enable work towards generating new resistance or control measures against H. glycines.
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