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Adaptation to heavy-metal contaminated environments proceeds via selection on pre-existing genetic variation

Wright, K. M.; Gaudinier, A.; Hellsten, U.; Jeong, A. L.; Sreedasyam, A.; Holalu, S.; Flores Vegara, M.; Rojas Carvajal, A.; Antelope, C.; Chapman, J. A.; Franks, R. G.; Grimwood, J.; Barry, K. W.; Jenkins, J. W.; Lovell, J. T.; Coop, G.; Schmutz, J.; Kelly, J. K.; Rokhsar, D. S.; Blackman, B. K. M.; Willis, J. H.

2024-12-16 evolutionary biology
10.1101/029900 bioRxiv
Show abstract

Anthropogenic environmental changes create evolutionary pressures on populations to adapt to novel stresses. It is as yet unclear, when populations respond to these selective pressures, the extent to which this results in convergent genetic evolution and whether convergence is due to independent mutations or shared ancestral variation. We address these questions using a classic example of adaptation by natural selection by investigating the rapid colonization of the plant species Mimulus guttatus to copper contaminated soils. We use field-based reciprocal transplant experiments to demonstrate that mine alleles at a major copper tolerance locus, Tol1, are strongly selected in the mine environment. We assemble the genome of a mine adapted genotype and identify regions of this genome in tight genetic linkage to Tol1. We discover a set of a multicopper oxidase genes that are genetically linked to Tol1 and exhibit large differences in expression between tolerant and non-tolerant genotypes. We overexpressed this gene in M. guttatus and A. thaliana and found the introduced gene contributes to enhanced copper tolerance. We identify convergent adaptation loci that are additional to Tol1 by measuring genome-wide differences in allele frequency between pairs of mine and off-mine populations and narrow these regions to specific candidate genes using differences in protein sequence and gene expression. Furthermore, patterns of genetic variation at the two most differentiated candidate loci are consistent with selection acting upon alleles that predates the existence of the copper mine habitat. These results suggest that adaptation to the mine habitat occurred via selection on ancestral variation, rather than independent de novo mutations or migration between populations.

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