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VanGessel, C. J.

Publications and source records attributed to VanGessel, C. J..

2 recordsLinked to original sources

Developing future resilience from signatures of adaptation across the sorghum pangenome

While the green revolution adapted a handful of crops to homogenous and high-input industrialized agriculture, much of the global population still relies on local food production from low-input smallholder farms that grow highly variable crop cultivars. The high diversity of the grain and bioenergy crop sorghum 1-4, and many other crops that were not homogenized during the green revolution 5, not only provides the raw materials for breeders to make substantial gains in cultivar improvement, but also constrains breeding efforts due to highly specialized locally adapted plant phenotypes 6. Here, we construct a 33-member pangenome and identify trait-associated variants in 1,988 cultivars and landraces. We then apply these resources to explore the complex interplay between historical contingency, ongoing adaptation, and the potential for future gains through climate-aware genome-enabled breeding. Specifically, our analyses conclusively demonstrate that multiple nested, deeply diverged, and previously uncharacterized structural variants in the domestication gene SHATTERING1 distinguish the previously established multicentric origin of sorghum. We then apply landscape genomics tests to reveal how gene flow, adaptation, and secondary contact created the complex genetic mosaic in current global breeding networks. Further analysis of climate-gene associations highlights candidate loci underlying adaptation, including the biosynthetic gene cluster for the cyanogenic glucoside dhurrin. Combined, the pangenome-informed variants developed here will enable both trait discovery and subsequent marker assays to accelerate breeding and provide a framework for similar applications in other diverse and non-model crops.

genomics↗

Ancient pangenomic origins of noncanonical NLR genes underlying the recent evolutionary rescue of a staple crop

Evolutionary rescue occurs when populations in deteriorating environments avoid extinction by rapid adaptation. The recent evolutionary rescue of the cereal crop sorghum via RMES1 aphid resistance is among a few known in situ cases, but its pangenomic origins and molecular basis is not yet known. Here, we describe the behavioral effects, molecular endophenotypes, and pangenomic evolution underlying this evolutionary rescue. Analysis of near-isogenic lines show that RMES1 disrupts phloem feeding via global immunity activation of conserved defense networks. A growth-to-defense transition is evidenced by extensive transcriptome remodeling (>15% of expressed genes) and mediated by salicylic acid signaling. Nucleotide-binding leucine-rich repeat (NLR) immune receptor genes at the RMES1 locus harbored on a large tandem duplication have extensive copy number variation across the sorghum pangenome. The likely causative NLRs (RMES1A and RMES1B) were inferred from expression and structural variation. The NLRs encoded at RMES1 lack an N-terminal signaling domain and have nucleotide-binding domain sequence variation expected to result in a loss of ATP binding, suggesting RMES1 NLRs function via a noncanonical mechanism. The RMES1 NLR family is shared across the grass super-pangenome and includes the brown planthopper resistance gene BPH40 in Oryza sativa, which is syntenic to RMES1. Finally, k-mer analysis of RMES1 haplotypes in the sorghum pangenome established the East African origin of rare standing variation for resistance. Thus, the birth-and-death process at an ancient gene cluster generated pangenomic variation that was recruited to activate coordinated defense pathways and provide evolutionary rescue.

genetics↗