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Self-Healing of Recombinant Spider Silk Gel and Coating

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Publisher MDPI
Date 2023 Apr 28
PMID 37112001
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Abstract

Self-healing properties, originating from the natural healing process, are highly desirable for the fitness-enhancing functionality of biomimetic materials. Herein, we fabricated the biomimetic recombinant spider silk by genetic engineering, in which () was employed as a heterologous expression host. The self-assembled recombinant spider silk hydrogel was obtained through the dialysis process (purity > 85%). The recombinant spider silk hydrogel with a storage modulus of ~250 Pa demonstrated autonomous self-healing and high strain-sensitive properties (critical strain ~50%) at 25 °C. The in situ small-angle X-ray scattering (in situ SAXS) analyses revealed that the self-healing mechanism was associated with the stick-slip behavior of the β-sheet nanocrystals (each of ~2-4 nm) based on the slope variation (i.e., ~-0.4 at 100%/200% strains, and ~-0.9 at 1% strain) of SAXS curves in the high q-range. The self-healing phenomenon may occur through the rupture and reformation of the reversible hydrogen bonding within the β-sheet nanocrystals. Furthermore, the recombinant spider silk as a dry coating material demonstrated self-healing under humidity as well as cell affinity. The electrical conductivity of the dry silk coating was ~0.4 mS/m. Neural stem cells (NSCs) proliferated on the coated surface and showed a 2.3-fold number expansion after 3 days of culture. The biomimetic self-healing recombinant spider silk gel and thinly coated surface may have good potential in biomedical applications.

References
1.
Chung H, Kim T, Lee S . Recent advances in production of recombinant spider silk proteins. Curr Opin Biotechnol. 2012; 23(6):957-64. DOI: 10.1016/j.copbio.2012.03.013. View

2.
Ramezaniaghdam M, Nahdi N, Reski R . Recombinant Spider Silk: Promises and Bottlenecks. Front Bioeng Biotechnol. 2022; 10:835637. PMC: 8957953. DOI: 10.3389/fbioe.2022.835637. View

3.
Martel A, Burghammer M, Davies R, Di Cola E, Vendrely C, Riekel C . Silk fiber assembly studied by synchrotron radiation SAXS/WAXS and Raman spectroscopy. J Am Chem Soc. 2008; 130(50):17070-4. DOI: 10.1021/ja806654t. View

4.
Liu Y, Shao Z, Vollrath F . Relationships between supercontraction and mechanical properties of spider silk. Nat Mater. 2005; 4(12):901-5. DOI: 10.1038/nmat1534. View

5.
Hayashi C, Shipley N, Lewis R . Hypotheses that correlate the sequence, structure, and mechanical properties of spider silk proteins. Int J Biol Macromol. 1999; 24(2-3):271-5. DOI: 10.1016/s0141-8130(98)00089-0. View