We report a near telomere-to-telomere high quality genome assembly of the historically important spring wheat cultivar, Timstein, generated using PacBio HiFi long-read sequencing data followed by Hi-C scaffolding. The assembly spanned 14.76 Gb, accounting for all 21 chromosomes of the A, B, and D subgenomes. Gene annotations identified around 105 K high-confidence (HC) gene models. The genome was comprised of ~85% transposable elements, primarily from the Gypsy, Copia, and CACTA families. For each subgenome, the BUSCO completeness score ranging from 97.4 to 99.6% and LTR Assembly Index (LAI) values surpassing 13 indicated the assembly quality was reference grade. Synteny analysis with IWGSC Chinese Spring (CS) RefSeq v2.1 revealed strong chromosomal collinearity between two genomes. Timstein has been extensively studied in classical genetics research for stem and leaf rust resistance and septoria nodorum blotch (SNB) susceptibility. This high-quality genome assembly provides cultivar-resolved references that can expand the wheat pangenome, supports structural and functional genomics studies, and enables fine mapping of disease resistance/susceptibility loci for their utilization in wheat genetics and breeding programs.
Jatinder Singh, Santosh Gudi, P. Maughan et al.· Scientific Data· 1 citation· ⚡1
Tan spot is an economically important fungal disease of wheat that occurs globally. In this necrotrophic pathosystem, pathogen effectors are recognized by wheat genes in an inverse gene-for-gene manner, leading to the hijacking of host defense mechanisms and ultimately disease susceptibility. Here, we identified the tan spot susceptibility gene
Tsc2
through positional cloning, mutagenesis, and transgenic complementation.
Tsc2
encodes a diverged form of the exocyst subunit Exo70FX15 that localizes to the nucleus and cytoplasm and does not interact directly with the fungal effector. A 21‑nucleotide deletion in
Tsc2
occurred in durum wheat more than a century ago and subsequently spread to common wheat through breeding practices, which allowed recognition of the pathogen effector and subsequent hijacking of the host immune system. We demonstrate that elimination of
Tsc2
through conventional breeding using a diagnostic marker or disruption of
Tsc2
by gene editing can be used to improve tan spot resistance in wheat.
Gurminder Singh, Katherine L. D. Running, Zeng-Cui Zhang et al.· Nature Communications· 0 citations
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