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Multivalent assembly of nucleolin-targeted F3 peptide potentiates TRAIL's tumor penetration and antitumor effects
Ze Tao1, Yingying Li2, Yunchuan Huang3
1Division of Liver surgery and NHC Key Lab of Transplant Engineering and Immunology, Institutes for Systems Genetics, Frontiers Science Center for Disease-Related Molecular Network, West China Hospital, Sichuan University, Chengdu 610041, China; Sichuan Provincial Engineering Laboratory of Pathology in Clinical Application, West China Hospital, Sichuan University, Chengdu 610041, China.
Abstract:
Tumor-targeting drug delivery holds great promise for cancer treatment but faces significant challenges in penetrating solid tumors to achieve optimal therapeutic efficacy. By harnessing the natural tissue-penetration effect conferred by the CendR motif, we identified that the nucleolin (NCL)-targeted peptide F3 possesses tumor-penetrating capabilities. Co-administration of F3 with doxorubicin and the apoptosis-inducing protein TRAIL enhanced effective tumor penetration and improved antitumor activity. Taking advantage of TRAIL's natural self-trimerization, we developed a novel fusion protein, F3-TRAIL. This design enabled the trivalent assembly of F3 when fused with TRAIL, significantly enhancing its binding to NCL-positive tumor endothelial and parenchymal cells, resulting in deeper tumor penetration and superior antitumor effects compared to TRAIL alone. Mechanistic studies revealed that the multivalent F3-enhanced engagement with tumor cells potentiated TRAIL to trigger death receptor-dependent apoptosis signaling, even in TRAIL-resistant tumor cells. Building on this success, we constructed F3-HexaTR using the SpyCatcher/SpyTag superglue ligation system to generate a hexameric TRAIL, further amplifying cytotoxicity and antitumor efficacy. Combined analysis of data from TCGA and GTEx revealed significantly elevated NCL expression across 18 solid tumor types, underscoring the clinical potential of F3-directed targeted therapy. These findings highlight that F3-mediated NCL targeting is an effective strategy to overcome tumor penetration barriers, particularly for protein drug delivery. This multivalent assembly approach represents an innovative avenue for enhancing the therapeutic efficacy of various agents in the treatment of solid tumors.
Insights
This study developed a novel fusion protein, F3-TRAIL, to enhance tumor penetration and cancer treatment. By targeting nucleolin (NCL), this approach improves drug delivery and boosts antitumor activity, offering a promising strategy for solid tumors.
Area of Science:
- Oncology
- Biotechnology
- Drug Delivery
Background:
- Solid tumor drug delivery faces challenges in tumor penetration and therapeutic efficacy.
- The CendR motif and nucleolin (NCL)-targeted peptide F3 show potential for tumor penetration.
- Tumor necrosis factor-related apoptosis-inducing ligand (TRAIL) is an apoptosis-inducing protein with therapeutic potential.
Purpose of the Study:
- To develop a novel fusion protein (F3-TRAIL) for enhanced tumor penetration and efficacy.
- To investigate the mechanism of F3-mediated tumor targeting and its impact on TRAIL-induced apoptosis.
- To evaluate the therapeutic potential of multivalent F3-TRAIL constructs in solid tumors.
Main Methods:
- Co-administration of F3 with doxorubicin and TRAIL to assess tumor penetration and antitumor activity.
- Development of F3-TRAIL fusion protein leveraging TRAIL's self-trimerization for multivalent F3 assembly.
- Construction of F3-HexaTR using SpyCatcher/SpyTag ligation for hexameric TRAIL amplification.
- Analysis of NCL expression in solid tumors using TCGA and GTEx data.
Main Results:
- F3 demonstrated tumor-penetrating capabilities by targeting NCL.
- F3-TRAIL exhibited enhanced tumor penetration and superior antitumor effects compared to TRAIL alone.
- Multivalent F3 engagement potentiated TRAIL to induce apoptosis, overcoming TRAIL resistance.
- F3-HexaTR further amplified cytotoxicity and antitumor efficacy.
- Elevated NCL expression was observed in 18 solid tumor types.
Conclusions:
- F3-mediated NCL targeting effectively overcomes tumor penetration barriers for protein drug delivery.
- Multivalent assembly of F3-TRAIL enhances therapeutic efficacy in solid tumors.
- This approach offers a novel strategy for improving cancer treatment outcomes.
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