{"id":15681,"date":"2026-06-20T12:44:46","date_gmt":"2026-06-20T12:44:46","guid":{"rendered":"https:\/\/dev.iita.org\/news-item\/scientists-generate-farmer-preferred-haplotype-resolved-cassava-reference-genome\/"},"modified":"2026-06-29T20:31:05","modified_gmt":"2026-06-29T20:31:05","slug":"scientists-generate-farmer-preferred-haplotype-resolved-cassava-reference-genome","status":"publish","type":"news-item","link":"https:\/\/iita.org\/fr\/news-item\/scientists-generate-farmer-preferred-haplotype-resolved-cassava-reference-genome\/","title":{"rendered":"Scientists generate farmer-preferred haplotype-resolved cassava reference genome"},"content":{"rendered":"<p class=\"wp-block-paragraph\"><a href=\"https:\/\/iita.org\/fr\/\">IITA<\/a>\u2013<a href=\"https:\/\/www.cgiar.org\/\">CGIAR<\/a> PhD student Michael Landi, with the support of IITA scientists Livia Stavolone, Trushar Shah, and Andreas Gisel and in collaboration with the Swedish University of Agricultural Sciences in Uppsala, Sweden, the University of Fribourg in Switzerland, and the Italian Research Council in Bari, Italy, generated a haplotype-resolved diploid assembly of the cassava cultivar TMEB117, a farmer-preferred cassava cultivar, using PacBio HiFi reads. The high-quality genome assembly was <a href=\"https:\/\/www.nature.com\/articles\/s41597-023-02800-0\">published<\/a> in December 2023 and is a part of the <a href=\"https:\/\/iita.org\/fr\/iita-project\/identification-of-epigenetic-variations-influencing-viral-resistance-and-yield-in-cassava-farmers-fields\/\">EpiCass<\/a> et <a href=\"https:\/\/iita.org\/fr\/iita-project\/cassavanet4dev-in-a-race-to-prevent-hunger-cassava-bioinformatics-for-african-cassava-biotechnology\/\">CassavaNet4Dev<\/a> projects, both funded by the Swedish Research Council.<\/p>\n\n\n\n<p class=\"wp-block-paragraph\"><figure id=\"attachment_28439\" aria-describedby=\"caption-attachment-28439\" style=\"width: 608px\" class=\"wp-caption aligncenter\"><img fetchpriority=\"high\" decoding=\"async\" class=\"size-full wp-image-28439\" src=\"https:\/\/iita.org\/wp-content\/uploads\/2026\/06\/Haplotype.png\" alt=\"This plot displays repeat and gene densities for the two haplotypes visualized in 1 Mbp sliding windows. The tracks from the outer to inner show (i) Repeat density for hap1 genome, (ii) Gene density for hap1 genome, (iii) Repeat density for hap2 genome, and (iv) Gene density for hap2 genome.\" width=\"608\" height=\"589\" \/><figcaption id=\"caption-attachment-28439\" class=\"wp-caption-text\">This plot displays repeat and gene densities for the two haplotypes visualized in 1 Mbp sliding windows. The tracks from the outer to inner show (i) Repeat density for hap1 genome, (ii) Gene density for hap1 genome, (iii) Repeat density for hap2 genome, and (iv) Gene density for hap2 genome.<\/figcaption><\/figure><\/p>\n\n\n\n<p class=\"wp-block-paragraph\">TMEB117 (also called TME117 or <em>isunikankiyan<\/em>) is a Nigerian cassava landrace highly susceptible to African cassava mosaic virus (ACMV). This genotype served as a reference for ACMV studies, and this high-resolution genome will pave the way for the ongoing investigations in epigenetics and small RNA expression analysis to learn more about the mechanisms of ACMV resistance in cassava and the large variability in storage root yield between plants of the same genotype in the same field. The outcome of these studies will give insight into the molecular mechanisms and create data and knowledge to support future breeding programs.<\/p>\n\n\n\n<p class=\"wp-block-paragraph\"><figure id=\"attachment_28440\" aria-describedby=\"caption-attachment-28440\" style=\"width: 785px\" class=\"wp-caption aligncenter\"><img decoding=\"async\" class=\"size-full wp-image-28440\" src=\"https:\/\/iita.org\/wp-content\/uploads\/2026\/06\/Haplotype-p2.png\" alt=\"Chromosome by chromosome comparison of TME117 haplotype 1 genome (blue line) with the official Cassava reference genome sequence version 8 (orange line). Sequence inversions are visualized in orange connections between the two genomes, and in grey, the similar regions and the empty regions are inserts or deletions. \" width=\"785\" height=\"817\" \/><figcaption id=\"caption-attachment-28440\" class=\"wp-caption-text\">Chromosome by chromosome comparison of TME117 haplotype 1 genome (blue line) with the official Cassava reference genome sequence version 8 (orange line). Sequence inversions are visualized in orange connections between the two genomes, and in grey, the similar regions and the empty regions are inserts or deletions.<\/figcaption><\/figure><\/p>\n\n\n\n<p class=\"wp-block-paragraph\">Despite the use of various sequencing technologies over time, there are unresolved gaps in the genome. The reference genome AM560-2, derived from a Colombian cassava line MCol505, has undergone steady improvement over a decade and has had five major releases, with the current version being AM560-2 version 8. While this reference genome benefits the cassava community, it lacks haplotypic separation and does not capture the genetic diversity in African cassava cultivars grown by smallholder farmers due to its homozygous nature.<\/p>\n\n\n\n<p class=\"wp-block-paragraph\">Recently, attempts have been made to assemble genomes of African cassava lines such as TME3, 60444, TME7, and TME204, using a combination of Illumina short reads, PacBio long reads, bio-nano optical mapping, and chromatin conformation capture (Hi-C) sequence technologies. Only the last two attempts produced high-quality and haplotype-resolved reference genomes of African cassava genotypes.<\/p>\n\n\n\n<p class=\"wp-block-paragraph\"><em>Contributed by Andreas Gisel<\/em><\/p>","protected":false},"excerpt":{"rendered":"<p>IITA-CGIAR PhD student Michael Landi, with the support of IITA scientists Livia Stavolone, Trushar Shah, and Andreas Gisel and in collaboration with the Swedish University of Agricultural Sciences in 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