Solanum etuberosum PG0019 Assembly & Annotation

Overview

Analysis Name Solanum etuberosum PG0019 Assembly & Annotation
Sequencing technology PacBio data and Hi-C data
Assembly method hifiasm (v.0.13)
Release Date 2022-06-08
Reference Publication(s)

Tang D, Jia Y, Zhang J, Li H, Cheng L, Wang P, Bao Z, Liu Z, Feng S, Zhu X, Li D, Zhu G, Wang H, Zhou Y, Zhou Y, Bryan GJ, Buell CR, Zhang C, Huang S. Genome evolution and diversity of wild and cultivated potatoes. Nature. 2022 Jun;606(7914):535-541. doi: 10.1038/s41586-022-04822-x.

Abstract

Potato (Solanum tuberosum L.) is the world’s most important non-cereal food crop, and the vast majority of commercially grown cultivars are highly heterozygous tetraploids. Advances in diploid hybrid breeding based on true seeds have the potential to revolutionize future potato breeding and production. So far, relatively few studies have examined the genome evolution and diversity of wild and cultivated landrace potatoes, which limits the application of their diversity in potato breeding. Here we assemble 44 high-quality diploid potato genomes from 24 wild and 20 cultivated accessions that are representative of Solanum section Petota, the tuber-bearing clade, as well as 2 genomes from the neighbouring section, Etuberosum. Extensive discordance of phylogenomic relationships suggests the complexity of potato evolution. We fnd that the potato genome substantially expanded its repertoire of disease-resistance genes when compared with closely related seed-propagated solanaceous crops, indicative of the efect of tuber-based propagation strategies on the evolution of the potato genome. We discover a transcription factor that determines tuber identity and interacts with the mobile tuberization inductive signal SP6A. We also identify 561,433 high-confdence structural variants and construct a map of large inversions, which provides insights for improving inbred lines and precluding potential linkage drag, as exemplifed by a 5.8-Mb inversion that is associated with carotenoid content in tubers. This study will accelerate hybrid potato breeding and enrich our understanding of the evolution and biology of potato as a global staple food crop.

Assembly statistics

Genome total length 684,563,641 bp
Scaffold number 13
Scaffold N50 58,488,985 bp
Scaffold L50 5
Scaffold longest 79,206,479 bp
Assembly level Chromosome

Assembly

The Solanum etuberosum PG0019 Assembly file is available in FASTA format.

Downloads

Chromosomes (FASTA file) PG0019.fa.gz

Gene Predictions

The Solanum etuberosum PG0019 genome gene prediction files are available in GFF3 and FASTA format.

Downloads

Genes (GFF3 file) PG0019.gff.gz
CDS sequences (FASTA file) PG0019.cds.fa.gz
Protein sequences (FASTA file) PG0019.protein.fa.gz

Functional Analysis

Functional annotation for the Solanum etuberosum PG0019 is available for download below. The proteins were analyzed using InterProScan to assign InterPro domains(Pfam).

Downloads

Domain from InterProScan Solanum_etuberosum_PG0019.Pfam.tsv.gz

S genes

Summary

QueryChrSize(bp)CoordinatesBLASTn HitBLASTn %IDDomain
SLF15chr01792064792647478-2648737Solanum tuberosum DM8.1, SLF1596.5F-box domain
SLF16Ψchr01792064793398845-3397666Solanum tuberosum DM8.1, SLF1697.1-
SLF11chr017920647925434320-25435489Solanum tuberosum DM8.1, SLF1195F-box domain
SLF5Ψchr017920647928776269-28777367Solanum tuberosum DM8.1, SLF5-290.1-
SLF12Ψchr017920647929151452-29150316Solanum tuberosum DM8.1, SLF1291.5-
SLF14Ψchr017920647947353725-47352602Solanum habrochaites KJ814931.1, SLF1486.4-
SLF10Ψchr017920647949333124-49334050Solanum chilense KJ814888.1, SLF1091.1-
SLF18chr017920647957218294-57219406Solanum chilense KJ814888.1, SLF1895F-box domain
SLF19Ψchr017920647957330163-57329055Solanum lycopersicum SL2.31, SLF1994-

Nucleotide

Protein

© 2023 National Genomics Data Center, China National Center for Bioinformation / Beijing Institute of Genomics, Chinese Academy of Sciences