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Snead, A. A.

Publications and source records attributed to Snead, A. A..

2 recordsLinked to original sources

Cities as evolutionary incubators for the global spread of the Spotted Lanternfly

Habitat destruction and invasive species pose two of the greatest global threats to biodiversity. These factors do not operate in isolation, and nowhere is their interaction more apparent than in urban environments. Urban organisms rapidly evolve under novel ecological circumstances where they also encounter anthropogenic opportunities for range expansion. Here, we examine the role of urbanization in the invasive success of an emerging global pest, the Spotted Lanternfly, during colonization and expansion. We demonstrate that the invasive population in the United States has undergone three sequential bottlenecks, resulting in significantly reduced genetic diversity and elevated inbreeding. The success of this invasive population may be in part attributable to adaptation in the native range prior to the invasion: we detect divergence between urban and rural lanternflies in Shanghai, China, (the invasion origin) in genes related to stress response, metabolism, and detoxification pathways. Additionally, we detect genomic signatures of selection in the invasive population suggesting adaptive refinement as the invasion progresses. This study provides evidence of adaptive evolution in response to urbanization despite substantial loss of genetic diversity, and implicates adaptive responses to pesticide application, dietary shifts, and climate in the invasive success of the Spotted Lanternfly.

evolutionary biology↗

Ectopic cambia in Japanese wisteria (Wisteria floribunda) vines are associated with the expression of conserved KNOX genes

Secondary growth is a conserved mechanism that gives rise to vascular tissues produced via a single vascular cambium. Molecular mechanisms underlying this process are characterized mostly in model species bearing typical vascular architecture, while the genetics underlying ecologically-important atypical vascular architectures remain unexplored. We use developmental anatomy, comparative transcriptomics, and molecular evolutionary analyses to address this knowledge gap, investigating how multiple ectopic cambia (EC) form in the woody vine Japanese wisteria. Anatomical studies show EC in Japanese wisteria arise from cortical parenchyma, while cambium-specific transcriptome comparisons reveal that genes acting as regulators of typical cambium development in model species are likewise associated with atypical EC development. Gene trees of KNOX proteins indicate duplication events may contribute to EC formation, including a Fabaceae-specific duplication of KNAT6 detected as under positive selection. These findings reveal insights into the genetics of EC formation, advancing our understanding of the development of complex vascular traits.

plant biology↗