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  4. Biomimetic Silk Nanoparticle Manufacture: Calcium Ion-Mediated Assembly
 
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2025
Journal Article
Title

Biomimetic Silk Nanoparticle Manufacture: Calcium Ion-Mediated Assembly

Abstract
Silk has emerged as an interesting candidate among protein-based nanocarriers due to its favorable properties, including biocompatibility and a broad spectrum of processing options to tune particle critical quality attributes. The silk protein conformation during storage in the middle silk gland of the silkworm is modulated by various factors, including the most abundant metallic ion, calcium ion (Ca2+). Here, we report spiking of liquid silk with calcium ions to modulate the silk nanoparticle size. Conformational and structural analyses of silk demonstrated Ca2+-induced silk assemblies that resulted in a liquid crystalline-like state, with the subsequent generation of β-sheet-enriched silk nanoparticles. Thioflavin T studies demonstrated that Ca2+ effectively induces self-assembly and conformation changes that also increased model drug loading. Ca2+ incorporation in the biopolymer feed significantly increased the nanoparticle production yield from 16 to 89%, while simultaneously enabling Ca2+ concentration-dependent particle-size tuning with a narrow polydispersity index and altered zeta potential. The resulting silk nanoparticles displayed high biocompatibility in macrophages with baseline levels of cytotoxicity and cellular inflammation. Our strategy for manufacturing biomimetic silk nanoparticles enabled overall tuning of particle size and improved yields-features that are critical for particle-based nanomedicines.
Author(s)
Roamcharern, Napaporn
University of Strathclyde
Matthew, Saphia A.L.
University of Strathclyde
Brady, Daniel J.
Fraunhofer-Institut für Molekularbiologie und Angewandte Oekologie IME  
Parkinson, John A.
University of Strathclyde
Rattray, Zahra
University of Strathclyde
Seib, Philipp
Fraunhofer-Institut für Molekularbiologie und Angewandte Oekologie IME  
Journal
ACS biomaterials science & engineering  
Open Access
DOI
10.1021/acsbiomaterials.4c02175
Additional link
Full text
Language
English
Fraunhofer-Institut für Molekularbiologie und Angewandte Oekologie IME  
Keyword(s)
  • antisolvent precipitation

  • Bombyx mori

  • desolvation

  • metal ion

  • nanomedicine

  • silk fibroin

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