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Updated: Jul 1, 2025

Silk Film Culture System for in vitro Analysis and Biomaterial Design
Published on: April 24, 2012
Tuning the Biodegradation Rate of Silk Materials via Embedded Enzymes
Junqi Wu1, Kareen A Fajardo Cortes1, Chunmei Li1
1Department of Biomedical Engineering, Tufts University, Medford, Massachusetts 02155, United States.
Abstract:
Conventional thinking when designing biodegradable materials and devices is to tune the intrinsic properties and morphological features of the material to regulate their degradation rate, modulating traditional factors such as molecular weight and crystallinity. Since regenerated silk protein can be directly thermoplastically molded to generate robust dense silk plastic-like materials, this approach afforded a new tool to control silk degradation by enabling the mixing of a silk-degrading protease into bulk silk material prior to thermoplastic processing. Here we demonstrate the preparation of these silk-based devices with embedded silk-degrading protease to modulate the degradation based on the internal presence of the enzyme to support silk degradation, as opposed to the traditional surface degradation for silk materials. The degradability of these silk devices with and without embedded protease XIV was assessed both in vitro and in vivo. Ultimately, this new process approach provides direct control of the degradation lifetime of the devices, empowered through internal digestion via water-activated proteases entrained and stabilized during the thermoplastic process.

