Nanostructured Protein Surfaces Inspired by Spider Silk

M Martin Humenik (Department of Biomaterials University of Bayreuth Bayreuth Germany) T Thomas Scheibel (Department of Biomaterials University of Bayreuth Prof.‐Rüdiger‐Borman Strasse 1 95448 Bayreuth Germany)

Abstract

Abstract Spider silk is renowned for its exceptional mechanical properties, surpassing those of many natural and synthetic materials. This review focuses on biotechnologically produced recombinant spidroin variants inspired by well‐understood major ampullate spider silk proteins (=spidroins), which are role models for understanding molecular composition, architecture, and the nanoscopic and mesoscopic structures formed through self‐assembly and phase separation of spider silk fibers. The use of recombinant spidroins is explored to fabricate functionalized nanostructured surfaces, and molecular engineering is highlighted to tailor the interfacial properties of various morphologies, including particles, capsules, electrospun nanofibers, films/coatings, macroscopic nanofibril‐based hydrogels, and nanohydrogel coatings. One focus is on functionalization of spidroins with peptide tags enabling a variety of affinity‐based targets from cellular markers to inorganic nanoparticles, and allowing for instance specific drug delivery, cell accommodation in hydrogels, or bioselective immobilization of cells on surfaces. Furthermore, applying nanostructured spidroin coatings in combination with photo‐ and soft‐lithography techniques is demonstrated, which can be used to produce micro‐ and nanostructured patterns exhibiting confined, spidroin‐defined targeting, affinity, or repulsion properties.

Article Details

Volume / Issue Vol. 37, Issue 51
Published December 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (2)

M

Martin Humenik

Department of Biomaterials University of Bayreuth Bayreuth Germany

T

Thomas Scheibel

Department of Biomaterials University of Bayreuth Prof.‐Rüdiger‐Borman Strasse 1 95448 Bayreuth Germany