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Characterization of the primary structure of the major silk gene, h-fibroin, across caddisfly (Trichoptera) suborders

  • Jacqueline Heckenhauer*
  • , Russell J. Stewart
  • , Blanca Ríos-Touma
  • , Ashlyn Powell
  • , Tshering Dorji
  • , Paul B. Frandsen
  • , Steffen U. Pauls
  • *Autor correspondiente de este trabajo
  • LOEWE Centre for Translational Biodiversity Genomics (LOEWE-TBG)
  • Senckenberg Gesellschaft für Naturforschung
  • University of Utah
  • Universidad de las Americas - Ecuador
  • Brigham Young University
  • Royal University of Bhutan
  • Smithsonian Institution
  • Justus Liebig University Giessen

Producción científica: Contribución a una revistaArtículorevisión exhaustiva

16 Citas (Scopus)

Resumen

Larvae of caddisflies (Trichoptera) produce silk to build various underwater structures allowing them to exploit a wide range of aquatic environments. The silk adheres to various substrates underwater and has high tensile strength, extensibility, and toughness and is of interest as a model for biomimetic adhesives. As a step toward understanding how the properties of underwater silk evolved in Trichoptera, we used genomic data to identify full-length sequences and characterize the primary structure of the major silk protein, h-fibroin, across the order. The h-fibroins have conserved termini and basic motif structure with high variation in repeating modules and variation in the percentage of amino acids, mainly proline. This finding might be linked to differences in mechanical properties related to the different silk usage and sets a starting point for future studies to screen and correlate amino acid motifs and other sequence features with quantifiable silk properties.

Idioma originalInglés
Número de artículo107253
PublicacióniScience
Volumen26
N.º8
DOI
EstadoPublicada - 18 ago. 2023
Publicado de forma externa

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