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.

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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