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  5. Genomics of sorghum local adaptation to a parasitic plant.

Genomics of sorghum local adaptation to a parasitic plant.

Resource type
Journal article
Creator (person)
Bellis, Emily S.
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Kelly, Elizabeth A.
Lorts, Claire M.
Gao, Huirong
DeLeo, Victoria L.
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Rouhan, Germinal
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Budden, Andrew
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Bhaskara, Govinal B.
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Hu, Zhenbin
Muscarella, Robert
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Timko, Michael P.
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Nebie, Baloua
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Runo, Steven M.
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Chilcoat, N. Doane
Juenger, Thomas E.
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Morris, Geoffrey P.
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dePamphilis, Claude W.
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Lasky, Jesse R.
Date published
February 25, 2020
Abstract
Host–parasite coevolution can maintain high levels of genetic diversity in traits involved in species interactions. In many systems, host traits exploited by parasites are constrained by use in other functions, leading to complex selective pressures across space and time. Here, we study genome-wide variation in the staple crop (L.) Moench and its association with the parasitic weed (Delile) Benth., a major constraint to food security in Africa. We hypothesize that geographic selection mosaics across gradients of parasite occurrence maintain genetic diversity in sorghum landrace resistance. Suggesting a role in local adaptation to parasite pressure, multiple independent loss-of-function alleles at sorghum are broadly distributed among African landraces and geographically associated with occurrence. However, low frequency of these alleles within -prone regions and their absence elsewhere implicate potential trade-offs restricting their fixation. is thought to cause resistance by changing stereochemistry of strigolactones, hormones that control plant architecture and below-ground signaling to mycorrhizae and are required to stimulate parasite germination. Consistent with trade-offs, we find signatures of balancing selection surrounding and other candidates from analysis of genome-wide associations with parasite distribution. Experiments with CRISPR–Cas9-edited sorghum further indicate that the benefit of -mediated resistance strongly depends on parasite genotype and abiotic environment and comes at the cost of reduced photosystem gene expression. Our study demonstrates long-term maintenance of diversity in host resistance genes across smallholder agroecosystems, providing a valuable comparison to both industrial farming systems and natural communities.
Funder
Funder nameAwards
National Science Foundation, United States
Postdoctoral Research Fellowship in Biology under Grant 1711950
Journal title
Proceedings of the National Academy of Sciences
Volume
117
Issue
8
Publisher
National Academy of Sciences
Place of publication
Washington, D.C., U.S.
ISSN
0027-8424
eISSN
1091-6490
Official URL
https://doi.org/10.1073/pnas.1908707117
Rights statement
In Copyright
DOI
10.1073/pnas.1908707117
Keywords
Crop-parasite systems
Coevolution
Landraces
Sorghum bicolor
Parasitic plants
Striga hermonthica
Environmental niche modeling
Species distribution modeling
Genotype–environment association analysis
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