Home LiteratureArticle Details
PMID: 27354520 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Chromosome-level assembly of Arabidopsis thaliana Ler reveals the extent of translocation and inversion polymorphisms.

Zapata L, Ding J, Willing EM, Hartwig B, Bezdan D, Jiao WB, Patel V, Velikkakam James G, Koornneef M, Ossowski S, Schneeberger K

Abstract

Resequencing or reference-based assemblies reveal large parts of the small-scale sequence variation. However, they typically fail to separate such local variation into colinear and rearranged variation, because they usually do not recover the complement of large-scale rearrangements, including transpositions and inversions. Besides the availability of hundreds of genomes of diverse Arabidopsis thaliana accessions, there is so far only one full-length assembled genome: the reference sequence. We have assembled 117 Mb of the A. thaliana Landsberg erecta (Ler) genome into five chromosome-equivalent sequences using a combination of short Illumina reads, long PacBio reads, and linkage information. Whole-genome comparison against the reference sequence revealed 564 transpositions and 47 inversions comprising ∼3.6 Mb, in addition to 4.1 Mb of nonreference sequence, mostly originating from duplications. Although rearranged regions are not different in local divergence from colinear regions, they are drastically depleted for meiotic recombination in heterozygotes. Using a 1.2-Mb inversion as an example, we show that such rearrangement-mediated reduction of meiotic recombination can lead to genetically isolated haplotypes in the worldwide population of A. thaliana Moreover, we found 105 single-copy genes, which were only present in the reference sequence or the Ler assembly, and 334 single-copy orthologs, which showed an additional copy in only one of the genomes. To our knowledge, this work gives first insights into the degree and type of variation, which will be revealed once complete assemblies will replace resequencing or other reference-dependent methods.

Keywords
Arabidopsis PacBio sequencing de novo assembly gene absence/presence polymorphisms inversions
MeSH Terms
Arabidopsis/genetics Chromosome Inversion Chromosomes, Plant Gene Dosage Genome, Plant Genomic Structural Variation Haplotypes Karyotyping Translocation, Genetic
Authors & Affiliations
11 authors, click to expand affiliations / ORCID
Zapata Luis
Bioinformatics and Genomics Programme, Centre for Genomic Regulation, The Barcelona Institute of Science and Technology, 08003 Barcelona, Spain; Universitat Pompeu Fabra, 08002 Barcelona, Spain;
Ding Jia
Department of Plant Breeding and Genetics, Max Planck Institute for Plant Breeding Research, 50829 Cologne, Germany;
Willing Eva-Maria
Department of Plant Developmental Biology, Max Planck Institute for Plant Breeding Research, 50829 Cologne, Germany;
Hartwig Benjamin
Department of Plant Developmental Biology, Max Planck Institute for Plant Breeding Research, 50829 Cologne, Germany;
Bezdan Daniela
Bioinformatics and Genomics Programme, Centre for Genomic Regulation, The Barcelona Institute of Science and Technology, 08003 Barcelona, Spain; Universitat Pompeu Fabra, 08002 Barcelona, Spain;
Jiao Wen-Biao
Department of Plant Developmental Biology, Max Planck Institute for Plant Breeding Research, 50829 Cologne, Germany;
Patel Vipul
Department of Plant Developmental Biology, Max Planck Institute for Plant Breeding Research, 50829 Cologne, Germany;
Velikkakam James Geo
Department of Plant Developmental Biology, Max Planck Institute for Plant Breeding Research, 50829 Cologne, Germany;
Koornneef Maarten
Department of Plant Breeding and Genetics, Max Planck Institute for Plant Breeding Research, 50829 Cologne, Germany; Laboratory of Genetics, Wageningen University, NL-6708 PE, Wageningen, The Netherlands [email protected] [email protected] [email protected].
Ossowski Stephan
Bioinformatics and Genomics Programme, Centre for Genomic Regulation, The Barcelona Institute of Science and Technology, 08003 Barcelona, Spain; Universitat Pompeu Fabra, 08002 Barcelona, Spain; [email protected] [email protected] [email protected].
Schneeberger Korbinian
Department of Plant Developmental Biology, Max Planck Institute for Plant Breeding Research, 50829 Cologne, Germany; [email protected] [email protected] [email protected].
References (55)
55 references, click to expand
  1. Multiple reference genomes and transcriptomes for Arabidopsis thaliana.
    Nature. 2011 Aug 28;477(7365):419-23 PMID: 21874022
  2. Fast-forward genetics enabled by new sequencing technologies.
    Trends Plant Sci. 2011 May;16(5):282-8 PMID: 21439889
  3. The recombination landscape in Arabidopsis thaliana F2 populations.
    Heredity (Edinb). 2012 Apr;108(4):447-55 PMID: 22072068
  4. Interstitial telomere-like repeats in the Arabidopsis thaliana genome.
    Genes Genet Syst. 2002 Feb;77(1):63-7 PMID: 12036106
  5. Analysis of a plant complex resistance gene locus underlying immune-related hybrid incompatibility and its occurrence in nature.
    PLoS Genet. 2014 Dec 11;10(12):e1004848 PMID: 25503786
  6. Divergent evolution of duplicate genes leads to genetic incompatibilities within A. thaliana.
    Science. 2009 Jan 30;323(5914):623-6 PMID: 19179528
  7. Cytogenetic tools for Arabidopsis thaliana.
    Chromosome Res. 2003;11(3):183-94 PMID: 12769286
  8. Genome-wide analysis of DNA methylation and gene expression changes in two Arabidopsis ecotypes and their reciprocal hybrids.
    Plant Cell. 2012 Mar;24(3):875-92 PMID: 22438023
  9. Assembling large genomes with single-molecule sequencing and locality-sensitive hashing.
    Nat Biotechnol. 2015 Jun;33(6):623-30 PMID: 26006009
  10. Recombination and linkage disequilibrium in Arabidopsis thaliana.
    Nat Genet. 2007 Sep;39(9):1151-5 PMID: 17676040
  11. SSPACE-LongRead: scaffolding bacterial draft genomes using long read sequence information.
    BMC Bioinformatics. 2014 Jun 20;15:211 PMID: 24950923
  12. Complex evolutionary events at a tandem cluster of Arabidopsis thaliana genes resulting in a single-locus genetic incompatibility.
    PLoS Genet. 2011 Jul;7(7):e1002164 PMID: 21779175
  13. Hybrid error correction and de novo assembly of single-molecule sequencing reads.
    Nat Biotechnol. 2012 Jul 01;30(7):693-700 PMID: 22750884
  14. Analysis of Arabidopsis genome-wide variations before and after meiosis and meiotic recombination by resequencing Landsberg erecta and all four products of a single meiosis.
    Genome Res. 2012 Mar;22(3):508-18 PMID: 22106370
  15. Gene transposition causing natural variation for growth in Arabidopsis thaliana.
    PLoS Genet. 2010 May 13;6(5):e1000945 PMID: 20485571
  16. Detection of genomic variations and DNA polymorphisms and impact on analysis of meiotic recombination and genetic mapping.
    Proc Natl Acad Sci U S A. 2014 Jul 8;111(27):10007-12 PMID: 24958856
  17. The complete sequence of a heterochromatic island from a higher eukaryote. The Cold Spring Harbor Laboratory, Washington University Genome Sequencing Center, and PE Biosystems Arabidopsis Sequencing Consortium.
    Cell. 2000 Feb 4;100(3):377-86 PMID: 10676819
  18. Reference-guided assembly of four diverse Arabidopsis thaliana genomes.
    Proc Natl Acad Sci U S A. 2011 Jun 21;108(25):10249-54 PMID: 21646520
  19. Bay-0 x Shahdara recombinant inbred line population: a powerful tool for the genetic dissection of complex traits in Arabidopsis.
    Theor Appl Genet. 2002 May;104(6-7):1173-1184 PMID: 12582628
  20. Common sequence polymorphisms shaping genetic diversity in Arabidopsis thaliana.
    Science. 2007 Jul 20;317(5836):338-42 PMID: 17641193
  21. Gepard: a rapid and sensitive tool for creating dotplots on genome scale.
    Bioinformatics. 2007 Apr 15;23(8):1026-8 PMID: 17309896
  22. High-quality draft assemblies of mammalian genomes from massively parallel sequence data.
    Proc Natl Acad Sci U S A. 2011 Jan 25;108(4):1513-8 PMID: 21187386
  23. Real-time DNA sequencing from single polymerase molecules.
    Science. 2009 Jan 2;323(5910):133-8 PMID: 19023044
  24. Incremental steps toward incompatibility revealed by Arabidopsis epistatic interactions modulating salicylic acid pathway activation.
    Proc Natl Acad Sci U S A. 2009 Jan 6;106(1):334-9 PMID: 19106299
  25. Massive genomic variation and strong selection in Arabidopsis thaliana lines from Sweden.
    Nat Genet. 2013 Aug;45(8):884-90 PMID: 23793030
  26. Cytogenetics for the model system Arabidopsis thaliana.
    Plant J. 1998 Mar;13(6):867-76 PMID: 9681023
  27. Rapid and inexpensive whole-genome genotyping-by-sequencing for crossover localization and fine-scale genetic mapping.
    G3 (Bethesda). 2015 Jan 13;5(3):385-98 PMID: 25585881
  28. Variation in crossing-over rates across chromosome 4 of Arabidopsis thaliana reveals the presence of meiotic recombination "hot spots".
    Genome Res. 2006 Jan;16(1):106-14 PMID: 16344568
  29. The genomic landscape of meiotic crossovers and gene conversions in Arabidopsis thaliana.
    Elife. 2013 Dec 17;2:e01426 PMID: 24347547
  30. The scale of population structure in Arabidopsis thaliana.
    PLoS Genet. 2010 Feb 12;6(2):e1000843 PMID: 20169178
  31. A nonparametric test reveals selection for rapid flowering in the Arabidopsis genome.
    PLoS Biol. 2006 May;4(5):e137 PMID: 16623598
  32. DNA Crossover Motifs Associated with Epigenetic Modifications Delineate Open Chromatin Regions in Arabidopsis.
    Plant Cell. 2015 Sep;27(9):2427-36 PMID: 26381163
  33. Juxtaposition of heterozygous and homozygous regions causes reciprocal crossover remodelling via interference during Arabidopsis meiosis.
    Elife. 2015 Mar 27;4:null PMID: 25815584
  34. Versatile and open software for comparing large genomes.
    Genome Biol. 2004;5(2):R12 PMID: 14759262
  35. Genome-wide crossover distribution in Arabidopsis thaliana meiosis reveals sex-specific patterns along chromosomes.
    PLoS Genet. 2011 Nov;7(11):e1002354 PMID: 22072983
  36. A high-resolution map of Arabidopsis recombinant inbred lines by whole-genome exon array hybridization.
    PLoS Genet. 2006 Sep 15;2(9):e144 PMID: 17044735
  37. The Arabidopsis lyrata genome sequence and the basis of rapid genome size change.
    Nat Genet. 2011 May;43(5):476-81 PMID: 21478890
  38. Single-molecule sequencing of the desiccation-tolerant grass Oropetium thomaeum.
    Nature. 2015 Nov 26;527(7579):508-11 PMID: 26560029
  39. Analysis of the genome sequence of the flowering plant Arabidopsis thaliana.
    Nature. 2000 Dec 14;408(6814):796-815 PMID: 11130711
  40. Mind the gap: upgrading genomes with Pacific Biosciences RS long-read sequencing technology.
    PLoS One. 2012;7(11):e47768 PMID: 23185243
  41. Improving the Annotation of Arabidopsis lyrata Using RNA-Seq Data.
    PLoS One. 2015 Sep 18;10(9):e0137391 PMID: 26382944
  42. Long-read, whole-genome shotgun sequence data for five model organisms.
    Sci Data. 2014 Nov 25;1:140045 PMID: 25977796
  43. HUA2 is required for the expression of floral repressors in Arabidopsis thaliana.
    Plant J. 2005 Feb;41(3):376-85 PMID: 15659097
  44. Genomic variation in Arabidopsis: tools and insights from next-generation sequencing.
    Chromosome Res. 2014 Jun;22(2):103-15 PMID: 24801344
  45. Anchoring and ordering NGS contig assemblies by population sequencing (POPSEQ).
    Plant J. 2013 Nov;76(4):718-27 PMID: 23998490
  46. Species-wide genetic incompatibility analysis identifies immune genes as hot spots of deleterious epistasis.
    Cell. 2014 Dec 4;159(6):1341-51 PMID: 25467443
  47. Scaffolding pre-assembled contigs using SSPACE.
    Bioinformatics. 2011 Feb 15;27(4):578-9 PMID: 21149342
  48. Integrated cytogenetic map of chromosome arm 4S of A. thaliana: structural organization of heterochromatic knob and centromere region.
    Cell. 2000 Feb 4;100(3):367-76 PMID: 10676818
  49. Sequencing of natural strains of Arabidopsis thaliana with short reads.
    Genome Res. 2008 Dec;18(12):2024-33 PMID: 18818371
  50. Influence of genetic background and heterozygosity on meiotic recombination in Arabidopsis thaliana.
    Genome. 2001 Dec;44(6):971-8 PMID: 11768224
  51. How and why chromosome inversions evolve.
    PLoS Biol. 2010 Sep 28;8(9):null PMID: 20927412
  52. Patterns of population epigenomic diversity.
    Nature. 2013 Mar 14;495(7440):193-8 PMID: 23467092
  53. Genome-wide comparison of nucleotide-binding site-leucine-rich repeat-encoding genes in Arabidopsis.
    Plant Physiol. 2011 Oct;157(2):757-69 PMID: 21810963
  54. Quantitative trait loci mapping in five new large recombinant inbred line populations of Arabidopsis thaliana genotyped with consensus single-nucleotide polymorphism markers.
    Genetics. 2008 Apr;178(4):2253-64 PMID: 18430947
  55. Whole-genome sequencing of multiple Arabidopsis thaliana populations.
    Nat Genet. 2011 Aug 28;43(10):956-63 PMID: 21874002
Article Info
Journal
Proceedings of the National Academy of Sciences of the United States of America
Abbr.
Proc Natl Acad Sci U S A
ISSN
1091-6490
Published
2016-00-12
Epub
2016-00-27
Pages
E4052-60
Language
English
Region
United States
NLM ID
7505876
PMCID
PMC4948326
Subset
IM
Databases
GENBANK
LUHQ00000000, LUHQ01000000
Analysis Services
Analysis Services

Contact

No. 2 Wenbo Road, Zhangqiu District, Jinan, Shandong

Qilu Normal University · Genelibs Bioinformatics Lab

750 Shunhua Rd, Jinan

2F, Bldg F, University Science Park

Tel: 0531-88819269

WeChat Official Account

Follow our WeChat subscription account for real-time updates and the latest in medical and biological research.


Business Email

E-mail: [email protected]