Iron‐Chelated Silk Microfibers as a Novel Magneto‐Responsive Architecture for In Situ Aligning Biomaterial Scaffolds

Author:

Wojnowski Melissa A.1,Martin Julia L.2,Kanber Mohammad3,Ngo Ken4,Hendricks Gregory5,Uzarski Joshua R.4,Zlotak Aidan6,McDonnell Camille6,Trubko Raisa6,Beltran‐Huarac Juan3,Grimm Ronald L.2,Coburn Jeannine M.1ORCID

Affiliation:

1. Department of Biomedical Engineering Worcester Polytechnic Institute 100 Institute Road Worcester MA 01609 USA

2. Department of Chemistry & Biochemistry Worcester Polytechnic Institute 100 Institute Road Worcester MA 01609 USA

3. Department of Physics East Carolina University E. 5th Street Greenville NC 27858 USA

4. US Army DEVCOM Soldier Center General Greene Ave Natick MA 01760 USA

5. Department of Radiology Division of Cell Biology and Imaging University of Massachusetts Chan Medical School 55 Lake Avenue North Worcester MA 01655 USA

6. Department of Physics Worcester Polytechnic Institute 100 Institute Road Worcester MA 01609 USA

Abstract

AbstractMagnetically functionalized biomaterials represent an exciting prospect in the development of stimuli‐responsive tissue engineering scaffolds. Magneto‐responsive properties are traditionally imparted to scaffold systems via integration of iron oxide‐based magnetic nanoparticles (MNPs), yet poor understanding of long‐term MNP toxicity presents a significant translational challenge. Given the demonstrated iron‐binding capacity of silk fibroin (SF), passive chelation of ferric iron ions is explored herein as an alternative, MNP‐free approach for magnetic functionalization of silk fibroin (SF)‐based biomaterials. SF microfibers treated with aqueous ferric chloride (FeCl3) exhibit significantly increased iron content relative to the nascent protein. Coupled with the absence of detectable chlorine traces and inorganic iron oxide species, the ferric oxidation state of the iron detected within the FeCl3‐treated microfibers suggests that iron is incorporated, without reduction, at innate oxygen‐containing ligands in SF. On exposure to an external magnetic field, these ferric iron‐chelated SF microfibers (Fe3+‐mSF) display paramagnetic magnetization behaviors that facilitate field‐parallel alignment. Both magnetization and directional uniformity increase with iron exposure during FeCl3 treatment, suggesting the observed magnetic response of Fe3+‐mSF is derived from the chelated iron. This work is the first to investigate the magneto‐responsive properties and biocompatibility of ferric iron‐chelated SF, highlighting a novel, MNP‐free mechanism for synthesizing magnetically functionalizedscaffolds.

Funder

Bryon Riesch Paralysis Foundation

North Carolina Biotechnology Center

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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1. Magneto-Mechanical Actuation Induces Endothelial Permeability;ACS Biomaterials Science & Engineering;2023-11-28

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