Abstract

The mass release of transgenic insects carrying female lethal self‐limiting genes can reduce pest insect populations. Substantial releases are also a novel resistance management tool, since wild type alleles conferring susceptibility to pesticides can dilute resistance alleles in target populations. However, a potential barrier is the need for large‐scale area‐wide releases. Here, we address whether localized releases of transgenic insects could provide an alternative means of population suppression and resistance management, without serious loss of efficacy.We used experimental mesocosms constituting insect metapopulations to explore the evolution of resistance to the Bacillus thuringiensis toxin Cry1Ac in a high‐dose/refugia landscape in the insect Plutella xylostella. We ran two selection experiments, the first compared the efficacy of “everywhere” releases and negative controls to a spatially density‐dependent or “whack‐a‐mole” strategy that concentrated release of transgenic insects in subpopulations with elevated resistance. The second experiment tested the relative efficacy of whack‐a‐mole and everywhere releases under spatially homogenous and heterogeneous selection pressure.The whack‐a‐mole releases were less effective than everywhere releases in terms of slowing the evolution of resistance, which, in the first experiment, largely prevented the evolution of resistance. In contrast to predictions, heterogeneous whack‐a‐mole releases were no more effective under heterogeneous selection pressure. Heterogeneous selection pressure did, however, reduce total insect population sizes.Whack‐a‐mole releases provided early population suppression, indistinguishable from homogeneous everywhere releases. However, insect population densities tracked the evolution of resistance in this system, as phenotypic resistance provides access to additional diet containing the toxin Cry1Ac. Thus, as resistance levels diverged between treatments, carrying capacities and population sizes increased under the whack‐a‐mole approach. Synthesis and applications. Spatially density‐dependent releases of transgenic insects, particularly those targeting source populations at a landscape level, could suppress pest populations in the absence of blanket area‐wide releases. The benefits of self‐limiting transgenic insects were reduced in spatially localized releases, suggesting that they are not ideal for “spot” treatment of resistance problems. Nevertheless, spatially homogeneous or heterogeneous releases could be used to support other resistance management interventions.

Highlights

  • A range of pest management approaches, including chemical, biological, and cultural control can impose strong selection on the evolution of resistance (Onstad, 2013)

  • We used experimental mesocosms constituting insect metapopulations to explore the evolution of resistance to the Bacillus thuringiensis toxin Cry1Ac in a high-dose/refugia landscape in the insect Plutella xylostella

  • These data showed that the everywhere release largely prevented the evolution of resistance (Figure 2c, treatment × generation interaction − Likelihood ratio test = 29.0, df = 2, p < 0.0001). In this scenario the whack-­a-­mole release and the control treatments were indistinguishable. These experiments represent a short time series, we investigated whether the dynamics in resistance within subpopulations might be affected by release of transgenic insects

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Summary

| INTRODUCTION

A range of pest management approaches, including chemical, biological, and cultural control can impose strong selection on the evolution of resistance (Onstad, 2013). Experimentally and theoretically, short-­term release of transgenic insects can reverse the evolution of resistance and potentially reduce resistance frequencies to a lower equilibrium that could be maintained by a high-d­ ose refuge strategy (Alphey et al, 2009; Zhou, Alphey, Walker, Travers, Hasan, et al, 2018). Building on our previous work (Zhou, Alphey, Walker, Travers, Hasan, et al, 2018), we investigate how spatially heterogeneous release of self-­limiting transgenic insects and the high-d­ ose/refuge strategy can control populations and mitigate the evolution of resistance in model experimental systems using the diamondback moth (DBM), Plutella xylostella. DBM is a well-­established model for evaluating novel resistance management strategies (Raymond, Sayyed, Hails, & Wright, 2007; Zhao et al, 2005)

| MATERIALS AND METHODS
Findings
| DISCUSSION
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