Genome editing retraces the evolution of toxin resistance in the monarch butterfly.

Karageorgi, Marianthi; Groen, Simon C; Sumbul, Fidan; Pelaez, Julianne N; Verster, Kirsten I; Aguilar, Jessica M; Hastings, Amy P; Bernstein, Susan L et al. · Nature · 2019

basic_science · Level V

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Abstract

Identifying the genetic mechanisms of adaptation requires the elucidation of links between the evolution of DNA sequence, phenotype, and fitness<sup>1</sup>. Convergent evolution can be used as a guide to identify candidate mutations that underlie adaptive traits<sup>2-4</sup>, and new genome editing technology is facilitating functional validation of these mutations in whole organisms<sup>1,5</sup>. We combined these approaches to study a classic case of convergence in insects from six orders, including the monarch butterfly (Danaus plexippus), that have independently evolved to colonize plants that produce cardiac glycoside toxins<sup>6-11</sup>. Many of these insects evolved parallel amino acid substitutions in the α-subunit (ATPα) of the sodium pump (Na<sup>+</sup>/K<sup>+</sup>-ATPase)<sup>7-11</sup>, the physiological target of cardiac glycosides<sup>12</sup>. Here we describe mutational paths involving three repeatedly changing amino acid sites (111, 119 and 122) in ATPα that are associated with cardiac glycoside specialization<sup>13,14</sup>. We then performed CRISPR-Cas9 base editing on the native Atpα gene in Drosophila melanogaster flies and retraced the mutational path taken across the monarch lineage<sup>11,15</sup>. We show in vivo, in vitro and in silico that the path conferred resistance and target-site insensitivity to cardiac glycosides<sup>16</sup>, culminating in triple mutant 'monarch flies' that were as insensitive to cardiac glycosides as monarch butterflies. 'Monarch flies' retained small amounts of cardiac glycosides through metamorphosis, a trait that has been optimized in monarch butterflies to deter predators<sup>17-19</sup>. The order in which the substitutions evolved was explained by amelioration of antagonistic pleiotropy through epistasis<sup>13,14,20-22</sup>. Our study illuminates how the monarch butterfly evolved resistance to a class of plant toxins, eventually becoming unpalatable, and changing the nature of species interactions within ecological communities<sup>2,6-11,15,17-19</sup>.

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