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Updated: Jul 1, 2025

Silk Film Culture System for in vitro Analysis and Biomaterial Design
Published on: April 24, 2012
Molecular mechanism analysis of apoptosis induced by silk fibroin peptides
Ruyu Shi1, Fuping Wang1, Qiang Fu1
1School of Pharmacy and Bioengineering, Chongqing University of Technology, Chongqing 400054, China.
Abstract:
Silk fibroin derived from silkworm cocoons exhibits excellent mechanical properties, good biocompatibility, and low immunogenicity. Previous studies showed that silk fibroin had an inhibitory effect on cells, suppressing proliferation and inducing apoptosis. However, the source of the toxicity and the mechanism of apoptosis induction are still unclear. In this study, we hypothesized that the toxicity of silk fibroin might originate from the crystalline region of the heavy chain of silk fibroin. We then verified the hypothesis and the specific induction mechanism. A target peptide segment was obtained from α-chymotrypsin. The potentially toxic mixture of silk fibroin peptides (SFPs) was separated by ion exchange, and the toxicity was tested by an MTT assay. The results showed that SFPs obtained after 4 h of enzymatic hydrolysis had significant cytotoxicity, and SFPs with isoelectric points of 4.0-6.8 (SFPα II) had a significant inhibitory effect on cell growth. LC-MS/MS analysis showed that SFPα II contained a large number of glycine-rich and alanine-rich repetitive sequence polypeptides from the heavy-chain crystallization region. A series of experiments showed that SFPα II mediated cell death through the apoptotic pathway by decreasing the expression of Bcl-2 protein and increasing the expression of Bax protein. SFPα II mainly affected the p53 pathway and the AMPK signaling pathway in HepG2 cells. SFPα II may indirectly increase the expression of Cers2 by inhibiting the phosphorylation of EGFR, which activated apoptotic signaling in the cellular mitochondrial pathway and inhibited the Akt/NF-κB pathway by increasing the expression of PPP2R2A.
Insights
Silk fibroin peptides (SFPs) from silkworm cocoons induce cell death. Specific peptides (SFPα II) from crystalline regions trigger apoptosis via the p53 and AMPK pathways, offering insights into silk
Area of Science:
- Biomaterials Science
- Cell Biology
- Biochemistry
Background:
- Silk fibroin from silkworm cocoons has beneficial properties but exhibits unclear cytotoxic mechanisms.
- Previous research indicates silk fibroin can suppress cell proliferation and induce apoptosis.
Purpose of the Study:
- To investigate the source of silk fibroin's toxicity.
- To elucidate the specific mechanism by which silk fibroin induces apoptosis.
Main Methods:
- Enzymatic hydrolysis of silk fibroin followed by ion-exchange separation to obtain silk fibroin peptides (SFPs).
- Cytotoxicity assessment using MTT assays.
- Identification of SFP components using LC-MS/MS.
- Analysis of apoptosis-related protein and signaling pathway expression (Bcl-2, Bax, p53, AMPK, EGFR, Akt/NF-κB).
Main Results:
- SFPs generated after 4h hydrolysis showed significant cytotoxicity.
- A specific fraction, SFPα II (isoelectric point 4.0-6.8), exhibited potent cell growth inhibition.
- SFPα II contains glycine-rich and alanine-rich polypeptides from silk fibroin's heavy-chain crystallization region.
- SFPα II induced apoptosis by downregulating Bcl-2 and upregulating Bax, impacting p53 and AMPK signaling.
- SFPα II inhibited Akt/NF-κB signaling and affected EGFR phosphorylation, potentially increasing Cers2 expression.
Conclusions:
- The crystalline region of silk fibroin's heavy chain is a source of its cytotoxicity.
- Silk fibroin peptides (SFPα II) induce apoptosis through specific molecular pathways, including p53, AMPK, and mitochondrial pathways.
- Understanding these mechanisms is crucial for developing silk-based biomaterials with controlled biological activity.
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