A green dichromophoric protein enabling foliage mimicry in arthropods

peer-reviewed · Proceedings of the National Academy of Sciences · 2025

peer-reviewed · Proceedings of the National Academy of Sciences · 2025. Nikita A. Egorkin et al. Molecular mechanisms underlying the green insect camouflage have puzzled researchers for over a century…
Date 2025-06-10
Type peer-reviewed
Venue Proceedings of the National Academy of Sciences
Publisher National Academy of Sciences
Contribution downstream-application
DOI 10.1073/pnas.2502567122
Citations (OpenAlex) 7
Venue 2-year citedness 8.56

Abstract

Molecular mechanisms underlying the green insect camouflage have puzzled researchers for over a century. Here, we isolated and identified a green water-soluble protein from the integument of bush-cricket Tettigonia cantans . De novo sequencing and cloning revealed a severely fragmented form of vitellogenins, ubiquitous and multifunctional, but still largely enigmatic glycolipoproteins essential for embryonic development and lacking structural characterization. The distinctive color of the identified chromoprotein results from binding of a remarkable combination of farnesylated bilins (recently identified, tentative heme A catabolites) and xanthophylls, which commensurably absorb light in the 600 to 700 nm and 400 to 550 nm spectral regions and thereby produce a hue that perfectly mimics foliage. The high-resolution crystal structure of this unique ~80 kDa dichromophoric protein, which we named “dibilinoxanthinin” (DBXN), revealed two DBXN protomers, each consisting of three polypeptides, with a novel fold enclosing a large hydrophobic cavity that accommodates two bilins, two luteins, and four phosphatidylcholines, all anchored by hydrogen bonds and giving DBXN unique biochemical and optical properties. Among the green insects tested, some contained yellow and blue chromophores in separate fractions, while others had green proteins similar to DBXN, although not necessarily of the same size. Surprisingly, we isolated and identified a larger vitellogenin proteoform with DBXN-like absorption, from the green huntsman spider Micrommata virescens . These data illustrate striking variations in the DBXN-related pigmentation mechanism among different green arthropods and suggest that vitellogenins may have undergone neofunctionalization, reflecting their potential for functional diversification.

Authors

  1. Nikita A. Egorkin · A N Bach Institute of Biochemistry, Lomonosov Moscow State University, Russian Academy of Sciences
  2. Anatoly M. Aleksin · A N Bach Institute of Biochemistry, Lomonosov Moscow State University, Russian Academy of Sciences
  3. Ilya A. Sedlov · A N Bach Institute of Biochemistry, Lomonosov Moscow State University, Russian Academy of Sciences
  4. Nikita I. Zhiganov · Lomonosov Moscow State University
  5. Daria V. Bodunova · Lomonosov Moscow State University
  6. Larisa A. Varfolomeeva · A N Bach Institute of Biochemistry, Russian Academy of Sciences
  7. Yury B. Slonimskiy · A N Bach Institute of Biochemistry, Russian Academy of Sciences
  8. Rustam H. Ziganshin · Institute of Bioorganic Chemistry, Russian Academy of Sciences
  9. Vladimir O. Popov · A N Bach Institute of Biochemistry, Russian Academy of Sciences
  10. Konstantin M. Boyko · A N Bach Institute of Biochemistry, Russian Academy of Sciences
  11. Alexander A. Vassilevski · Institute of Bioorganic Chemistry, Russian Academy of Sciences
  12. Eugene G. Maksimov · Lomonosov Moscow State University
  13. Nikolai N. Sluchanko · A N Bach Institute of Biochemistry, Russian Academy of Sciences

Methods and tools

Methods it uses

  • PEAKS: Commercial DP-based de novo

Data deposited

  • Green bush cricket camouflage is conferred by bichromic protein processed from vitellogenin — as deposited · PXD059498
  • Green bush cricket camouflage is conferred by bichromic protein processed from vitellogenin (PXD059460) — as deposited · PXD059460

Seen in the charts

Back to the full map

Back to top