Molecular mechanisms underlying simplification of venation patterns in holometabolous insects

Development. 2020 Dec 13;147(23):dev196394. doi: 10.1242/dev.196394.

Abstract

How mechanisms of pattern formation evolve has remained a central research theme in the field of evolutionary and developmental biology. The mechanism of wing vein differentiation in Drosophila is a classic text-book example of pattern formation using a system of positional information, yet very little is known about how species with a different number of veins pattern their wings, and how insect venation patterns evolved. Here, we examine the expression pattern of genes previously implicated in vein differentiation in Drosophila in two butterfly species with more complex venation Bicyclus anynana and Pieris canidia We also test the function of some of these genes in B. anynana We identify both conserved as well as new domains of decapentaplegic, engrailed, invected, spalt, optix, wingless, armadillo, blistered and rhomboid gene expression in butterflies, and propose how the simplified venation in Drosophila might have evolved via loss of decapentaplegic, spalt and optix gene expression domains, via silencing of vein-inducing programs at Spalt-expression boundaries, and via changes in expression of vein maintenance genes.

Keywords: Bicyclus anynana; Decapentaplegic; Drosophila melanogaster; Optix; Pieris canidia; Spalt; Venation patterning.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Animals
  • Body Patterning / genetics*
  • Butterflies / genetics
  • Butterflies / growth & development
  • Drosophila melanogaster / genetics
  • Drosophila melanogaster / growth & development
  • Evolution, Molecular*
  • Gene Expression Regulation, Developmental / genetics
  • Holometabola / genetics
  • Holometabola / growth & development
  • Insect Proteins / genetics*
  • Veins / growth & development*
  • Veins / metabolism
  • Wings, Animal / blood supply

Substances

  • Insect Proteins