Skip to content

1 paper indexed here

We haven’t gathered this author’s papers yet. Follow them and we’ll fetch their work.

Not the right person? Other researchers publish under this name.

Open access Jul 2026

Transparent silk hydrogels as a versatile platform for cell culture and imaging

Recombinant spider silk proteins (spidroins) are emerging as a promising feedstock for biomaterial production due to their inherent ability to form hydrogels at 37 °C. However, their broader application as a robust cell culture platform has been hindered by slow gelation kinetics, CO2-induced turbidity, unknown long-term stability, and the use of Tris-HCl buffers that are suboptimal for most mammalian cells. In this study, we aimed to accelerate gelation kinetics of mini-spidroin-based hydrogels, reduce their turbidity, and improve gel stability under physiological conditions. Systematic evaluation of protein pre-treatments and buffer compositions identified parameters governing conformational behavior, gelation dynamics, and structural stability. Multimodal characterization, including turbidity measurements, circular dichroism spectroscopy, Fourier-transform infrared spectroscopy, mechanical assessment, transmission electron microscopy, Thioflavin T assays, and in vitro studies, enabled the formulation of a cytocompatible buffer system optimized for mini-spidroin hydrogels. The formulation improves transparency and accelerates gelation, while maintaining experimental simplicity, thereby advancing the utility of mini-spidroin hydrogels as cell culture platforms. This study accelerates gelation kinetics of mini-spidroin-based hydrogels. By identifying parameters that govern conformational behavior, gelation dynamics, and structural stability, a cytocompatible buffer system is optimized, improving optical transparency.

S. Stadlmayr, Tove Kivijärvi, B. Gross et al. · 1 citation