TP53 mutations in triple-negative breast cancer cells confer sensitivity to ASCT2 inhibition via arginine uptake

Xiaodan Lyu1, Yuancheng Wei1, Ziyi Chen1

  • 1New Drug Screening and Pharmacodynamics Evaluation Center, National Key Laboratory for Multi-Target Natural Drugs, China Pharmaceutical University, Nanjing, China.

Insights

This study identifies TP53 mutations as a biomarker for ASCT2 inhibitor sensitivity in cancer. It reveals a compensatory SLC7A3-arginine-mTORC1 pathway in TP53 wild-type tumors, suggesting combination therapy for improved outcomes.

Area of Science:

  • Oncology
  • Cancer Metabolism
  • Molecular Biology

Background:

  • Targeting glutamine metabolism via ASCT2 inhibition shows promise for cancer therapy.
  • Clinical translation is limited by tumor heterogeneity and lack of predictive biomarkers.

Purpose of the Study:

  • Define genetic determinants of ASCT2 inhibitor sensitivity.
  • Uncover compensatory resistance mechanisms for precision therapeutic strategies.

Main Methods:

  • Systematic evaluation of ASCT2 inhibitor responses across breast cancer molecular subtypes (in vitro/in vivo).
  • Integration of transcriptomics, metabolomics, and functional validation.
  • Utilized TP53 isogenic lines and ASCT2 inhibitors to map metabolic compensation networks.

Main Results:

  • TP53-mutant triple-negative carcinomas exhibited higher sensitivity to ASCT2 monotherapy.
  • ASCT2 inhibition in TP53 wild-type tumors triggered SLC7A3-mediated arginine uptake, sustaining mTORC1 proliferation.
  • Combined ASCT2 and SLC7A3 inhibition overcame resistance in TP53 wild-type models, causing metabolic collapse and tumor reduction.

Conclusions:

  • TP53 mutational status is a predictive biomarker for ASCT2 inhibitor response.
  • The SLC7A3-arginine-mTORC1 axis is a targetable compensatory pathway.
  • A genotype-guided strategy recommends ASCT2 monotherapy for TP53-mutant tumors and combination therapy for TP53 wild-type cancers.

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