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Sulfatase-responsive phase-separating peptide coacervates target stress granules to reverse sorafenib resistance in
Chenhui Wang1, Weishu Wang2, Yutong Li1
1Department of Cell Biology, School of Medicine, Nankai University, Tianjin 300071, China.
Abstract:
Acquired drug resistance in hepatocellular carcinoma (HCC) hinders the clinical therapeutic efficacy of various drugs, but efficient intervention strategies remain scarce. In this study, we reported a coacervate-fusion strategy for inhibiting membraneless organelle stress granules (SGs) via stimuli-induced peptide droplets to reverse sorafenib resistance (SFR) in HCC. SGs are coacervated from translation-stalled mRNAs and RNA-binding proteins, including Ras-GAP SH3 domain-binding proteins (G3BPs), and play a critical role in SFR. The peptide droplets YsF-LSG are formed by liquid-liquid separation (LLPS) of the sulfatase-responsive peptides YsF and YsF-FGDF containing the G3BP ligand. Characterizations in solution reveal that, upon exposure to arylsulfatase A (ARSA), the peptides YsF and YsF-FGDF undergo LLPS and form agglomerate droplets YsF-LSG. Investigations of HCC-SFR cells confirm that the YsF-LSG mixtures are efficiently internalized via clathrin-mediated endocytosis, experience ARSA-responsive hydrolysis in lysosomes and lysosomal escape, and undergo in situ LLPS into droplets. Notably, in situ-formed coacervates YsF-LSG recruit G3BP2 and target SGs with high tumor permeability. YsF-LSG coacervates enhance sorafenib-triggered apoptosis by relieving SGs-mediated inhibition of p38-Caspase-3 signaling and thus reversing SFR of HCC cells. Further investigations in HCC cell-derived xenograft (CDX) models confirm that YsF-LSG peptide coacervates significantly reverse SFR through SGs-targeting and apoptosis-restoring mechanisms. Critically, the combination of the YsF-LSG peptide coacervates with sorafenib more effectively inhibits HCC-SFR growth and has a stronger antitumor effect accompanied by good biosafety. This study highlights the reversal of HCC-SFR via fusion between internal and external coacervates, offering a new approach for overcoming cancer drug resistance. STATEMENT OF SIGNIFICANCE: Design and application of peptide-based coacervates targeting SGs to overcome drug resistance have rarely been studied. Combining the advantages of in situ formulation of coacervate peptide droplets with SGs-targeting property, we developed YsF-LSG peptide mixtures that target SGs through in situ sulfatase-responsive LLPS into droplets for reversing the SFR of HCC. YsF-LSG peptide mixtures present high tumor-permeability and SGs-coalescence potential, undergo CME-involved uptake, experience ARSA sulfatase-responsivity and lysosomal escape, and exhibit potent tumor-killing advantage in HCC-SFR cells and CDX mice model. YsF-LSG peptide mixtures reverse SFR of HCC through G3BP2-recruited, SGs-targeting and apoptosis-restored mechanisms. This provides a new strategy for developing enzyme-induced LLPS peptide coacervates with drug resistance-reversal capacity.
Insights
Researchers developed a novel peptide coacervate strategy to reverse sorafenib resistance in hepatocellular carcinoma (HCC). This approach targets stress granules (SGs) by inducing peptide droplets, enhancing apoptosis and inhibiting tumor growth.
Area of Science:
- Biochemistry
- Molecular Biology
- Cancer Research
Background:
- Acquired drug resistance, specifically sorafenib resistance (SFR) in hepatocellular carcinoma (HCC), significantly limits therapeutic outcomes.
- Membraneless organelles known as stress granules (SGs), formed from stalled mRNAs and RNA-binding proteins like G3BPs, play a crucial role in SFR.
Purpose of the Study:
- To develop a novel coacervate-fusion strategy using stimuli-induced peptide droplets to inhibit SGs and reverse SFR in HCC.
- To investigate the mechanism of action and therapeutic efficacy of these peptide coacervates in HCC models.
Main Methods:
- Synthesized sulfatase-responsive peptides (YsF and YsF-FGDF) designed to undergo liquid-liquid separation (LLPS) into peptide droplets (YsF-LSG) upon encountering arylsulfatase A (ARSA).
- Investigated cellular uptake via clathrin-mediated endocytosis, lysosomal escape, and in situ LLPS of YsF-LSG in HCC-SFR cells.
- Assessed the targeting of SGs, recruitment of G3BP2, modulation of p38-Caspase-3 signaling, and induction of apoptosis.
- Evaluated the efficacy of YsF-LSG peptide coacervates combined with sorafenib in HCC cell-derived xenograft (CDX) models.
Main Results:
- YsF-LSG peptide mixtures successfully formed droplets in response to ARSA, were internalized by HCC-SFR cells, and underwent in situ LLPS.
- The in situ-formed YsF-LSG coacervates effectively targeted SGs, recruited G3BP2, and reversed SFR by relieving SG-mediated inhibition of apoptosis.
- Combination therapy with YsF-LSG and sorafenib demonstrated enhanced inhibition of HCC-SFR growth and significant antitumor effects with good biosafety in CDX models.
Conclusions:
- The study presents a novel peptide-based coacervate strategy targeting SGs to overcome sorafenib resistance in HCC.
- YsF-LSG peptide coacervates offer a promising approach for cancer therapy by leveraging enzyme-induced liquid-liquid phase separation for drug resistance reversal.
- This work provides a new paradigm for developing targeted therapies against drug-resistant cancers through innovative biomaterial design.
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