Novel Small-Molecule CX3CR1 Antagonist Impairs Metastatic Seeding and Colonization of Breast Cancer Cells

Fei Shen1, Yun Zhang1, Danielle L Jernigan1

  • 1Department of Pharmacology and Physiology, Drexel University College of Medicine, Philadelphia, Pennsylvania.

Abstract

Insights

Breast cancer cells use the CX3CR1 receptor to spread to new sites. Targeting this receptor with drugs like JMS-17-2 can block metastasis and slow disease progression.

Area of Science:

  • Oncology
  • Molecular Biology
  • Pharmacology

Background:

  • Cancer cells can spread from secondary lesions to colonize distant tissues, driving metastatic dissemination and disease progression.
  • Breast cancer cells were previously shown to use the chemokine receptor CX3CR1 to exit circulation and lodge in the skeleton.
  • CX3CR1 is overexpressed in human breast tumors and skeletal metastases, indicating its potential role in breast cancer progression.

Purpose of the Study:

  • To validate the functional role of CX3CR1 in metastatic seeding and progression in breast cancer.
  • To assess the clinical potential of targeting CX3CR1 for the treatment of breast cancer metastasis.
  • To develop and evaluate a novel small-molecule antagonist of CX3CR1.

Main Methods:

  • Functional validation using a neutralizing antibody against CX3CR1 and CRISPR interference (CRISPRi) for transcriptional suppression.
  • Synthesis and characterization of JMS-17-2, a potent and selective small-molecule antagonist of CX3CR1.
  • Preclinical testing of JMS-17-2 in animal models of cancer cell seeding and established metastasis.

Main Results:

  • Targeting CX3CR1 with a neutralizing antibody or CRISPRi impaired the lodging of circulating tumor cells to the skeleton and soft tissues.
  • The small-molecule antagonist JMS-17-2 effectively inhibited the lodging of circulating tumor cells and reduced the growth of established metastases.
  • Nine genes were identified that were modulated by both JMS-17-2 and CRISPRi, potentially mediating CX3CR1's pro-metastatic activity.

Conclusions:

  • These findings support the drug development of CX3CR1 antagonists for breast cancer treatment.
  • Targeting CX3CR1 offers a novel therapeutic strategy to prevent or contain metastatic progression.
  • Clinical use of CX3CR1 antagonists could provide effective tools to improve outcomes for breast cancer patients.