Microstructuring of Thermoresponsive Biofunctional Hydrogels by Multiphoton Photocrosslinking

Author:

Morozov Yevhenii M.1ORCID,Wiesner (née Diehl) Fiona2,Grün Jonas J.2,Pertiller Matthias3,Fossati Stefan4,Schmidt Katharina3,Quilis Nestor Gisbert5,Gusenbauer Claudia6,Zbiral Barbara7,Toca‐Herrera Jose Luis7,Klees Sven2,Thiagarajan Clinton Richard Victor2,Jonas Ulrich2,Dostalek Jakub34ORCID

Affiliation:

1. Center for Health & Bioresources AIT‐Austrian Institute of Technology Giefinggasse 4 Vienna 1210 Austria

2. Macromolecular Chemistry Department of Chemistry and Biology University of Siegen Adolf Reichwein‐Straße 2 57076 Siegen Germany

3. LiST‐Life Sciences Technology Danube Private University Viktor‐Kaplan‐Straße 2 Wiener Neustadt 2700 Austria

4. FZU‐Institute of Physics Czech Academy of Sciences Na Slovance 2 Prague 182 21 Czech Republic

5. Biosensor Technologies AIT‐Austrian Institute of Technology Konrad‐Lorenz‐Strasse 24 Tulln an der Donau 3430 Austria

6. Institute of Wood Technology and Renewable Materials University of Natural Resources and Life Sciences Konrad‐Lorenz‐Strasse 24 Tulln an der Donau 3430 Austria

7. Institute of Biophysics University of Natural Resources and Life Sciences Muthgasse 11/II Vienna 1190 Austria

Abstract

AbstractA pioneering method is reported for creating thermoresponsive biofunctional hydrogel microstructures using maskless multiphoton lithography. Departing from conventional multiphoton‐triggered polymerization‐based techniques, this approach relies on simultaneous photocrosslinking and attachment of already pre‐synthesized polymer chains onto solid substrates. The method allows improving control over polymer network characteristics and enables facile integration of additional functionalities through postmodification with biomolecules at specific sites. Exploring two distinct benzophenone‐ and anthraquinone‐based photocrosslinkers incorporated into specially designed poly(N‐isopropyl acrylamide)‐based co‐ and terpolymers, the photocrosslinking efficacy is scrutinized with the use of a custom femtosecond near‐infrared laser lithographer. Comprehensive characterization via surface plasmon resonance imaging, atomic force microscopy, and optical fluorescence microscopy reveals swelling behavior and demonstrates postmodification feasibility. Notably, within a specific range of multiphoton photocrosslinking parameters, the surface‐attached microstructures exhibit a quasiperiodic topography akin to wrinkle‐pattern formation. Leveraging the capabilities of established multiphoton lithographer systems that offer fast pattern writing with high resolution, this approach holds great promise for the versatile fabrication of multifunctional 3D micro‐ and nanostructures. Such tailored responsive biofunctional materials with spatial control over composition, swelling behavior, and postmodification are particularly attractive in the areas of bioanalytical and biomedical technologies.

Funder

Gesellschaft für Forschungsförderung Niederösterreich

Grantová Agentura České Republiky

Benign Essential Blepharospasm Research Foundation

European Commission

Austrian Science Fund

Publisher

Wiley

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