Development of Novel Peptides That Target the Ninjurin 1 and 2 Pathways to Inhibit Cell Growth and Survival via p53

Jin Zhang1, Xiangmudong Kong1, Xinbin Chen1

  • 1Comparative Oncology Laboratory, Schools of Veterinary Medicine and Medicine, University of California, Davis, CA 95616, USA.

Cells
|March 26, 2025
PubMed

Insights

New peptides derived from Ninjurin 1 and 2 (NINJ1, NINJ2) show therapeutic potential for cancer treatment. These NINJ1/2 peptides inhibit cancer cell growth, offering a promising avenue for developing novel cancer therapies, especially in wild-type p53 cancers.

Area of Science:

  • Molecular Biology
  • Cell Biology
  • Oncology

Background:

  • Ninjurin 1 and 2 (NINJ1, NINJ2) are homophilic cell adhesion molecules involved in cellular communication and tissue development.
  • Overexpression of NINJ1 and NINJ2 is observed in various cancers, suggesting their potential as therapeutic targets.

Purpose of the Study:

  • To develop NINJ1/2 peptides targeting the N-terminal extracellular domain for cancer therapy.
  • To investigate the therapeutic potential of these peptides in inhibiting cancer cell growth.

Main Methods:

  • Peptides derived from NINJ1 and NINJ2 N-terminal domains (adhesion motif and amphipathic helix) were synthesized.
  • Inhibition of cancer cell growth was assessed in a NINJ1/2 and p53-dependent manner.
  • NINJ1-NINJ2 interaction disruption and p53 expression induction were analyzed.

Main Results:

  • Peptides NINJ1-A and NINJ2-A inhibited cell growth in a NINJ1/2 or p53-dependent manner.
  • Peptides NINJ1-B and NINJ2-B disrupted NINJ1-NINJ2 interaction and potently inhibited cell growth.
  • NINJ1-B and NINJ2-B peptides induced p53 expression, leading to p53-dependent growth suppression.

Conclusions:

  • NINJ1/2 peptides, particularly NINJ1-B and NINJ2-B, demonstrate significant potential as anti-cancer therapeutics.
  • These peptides offer a novel therapeutic strategy for cancers, especially those with wild-type p53.
  • The findings highlight the therapeutic utility of targeting NINJ1-NINJ2 interactions and p53 pathways.

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