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Hulke, B.

Publications and source records attributed to Hulke, B..

2 recordsLinked to original sources

Understanding genetic architecture overcomes tradeoffs between seed quality and insect resistance

The sunflower (Helianthus annuus) pericarp protects the seed within from both abiotic and biotic stresses. Achenes with stronger pericarps are less susceptible to damage from insect feeding. Complicating the genetic improvement of pericarp strength is the negative correlation between pericarp thickness (a component of strength) and oil content. As breeding efforts have increased oil content, there has been a concomitant decrease in pericarp thickness. A logical sunflower improvement goal is to improve oil content while preserving pericarp strength through genetic mechanisms independent of the tradeoffs with pericarp thickness. To determine the genetic basis of oil content, pericarp strength, and thickness, we identified QTL in two populations; the Sunflower Association Mapping panel (Mandel et al., 2011) and a recombinant inbred line (RIL) population derived from a thin pericarp oilseed inbred (HA 467) crossed to a thick pericarp open pollinated variety from Turkiye (PI 170415). A region on chromosome 15 was associated with neighboring QTL for banded moth resistance, oil content, and pericarp thickness, partially underlying the trade-offs among these traits. Additional QTL on chromosome 5 and 14 for pericarp strength provide fewer trade-offs with oil content. QTL for pericarp strength on chromosome 5 and pericarp thickness on chromosome 16 were associated with large structural variants, with candidate gene presence/absence variation between the haplotypes on chromosome 5. Understanding the origin and nature of phenotypic tradeoffs is beneficial to plant biologists and sunflower breeders as they seek to understand the origin and genetic architecture of adaptive and maladaptive traits.

genetics↗

Chromosome-scale Genome Assembly of Lewis Flax (Linum lewisii Pursh.)

The shift from self-incompatibility to self-compatibility is a frequent evolutionary transition in flowering plants with numerous ecological and evolutionary consequences. It is also an advantageous transition for domestication of new crop plants, as self-compatibility makes it considerably easier to drive adaptively important alleles to fixation. In the flax genus, Linum, self-incompatibility is linked to the floral polymorphism known as heterostyly, where plants exhibit distinct floral morphs with different positioning of male and female reproductive organs. Heterostyly has been lost multiple times independently across the flax genus, leading to homostyly and self-compatibility, but the genetic causes of this transition are not fully understood. Here, we present a near telomere-to-telomere genome assembly of "Maple Grove" Lewis flax (Linum lewisii, 2n = 2x = 18), a homostylous wild blue flax species native to North America. By comparison to the genome of close heterostylous relative L. perenne, we found that the coding sequence of heterostyly candidate gene TSS1 is deleted in the Lewis flax genome, which could underlie its transition from heterostyly to homostyly. Analysis of chromosomal synteny between Lewis flax and common flax (L. usitatissimum) further revealed a striking amount of chromosomal rearrangements, which will complicate the use of comparative genomics to accelerate domestication of Lewis flax as a new perennial oilseed crop. The final, primary haplotype was 845 Mb in length and comprised 9 pseudochromosomes and 324 unplaced scaffolds with a contig N50 of 17.9 Mb. Annotation of the assembly revealed 19,593 protein-coding genes. This genomic resource will inform ongoing breeding efforts and will support its use in native ecosystem restoration and in other native plantings across western North America.

genomics↗