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Updated: May 23, 2026

Detection of Aggregation-Prone Behavior in Mutant P53 V157F Breast Cancer Cells Using Multipoint Thioflavin T Fluorescence
Published on: December 30, 2025
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.
Abstract:
Targeting dysregulated glutamine metabolism via ASCT2 inhibition has therapeutic potential in cancer, but its clinical translation is hindered by tumor metabolic heterogeneity and the lack of predictive biomarkers. This study aims to define genetic determinants of ASCT2 inhibitor sensitivity and uncover compensatory resistance mechanisms to enable precision therapeutic strategies. We systematically evaluated ASCT2 inhibitor responses across molecular subtypes of breast cancer via in vitro and in vivo models. Mechanistic studies integrated transcriptomics, metabolomics, and functional validation of candidate pathways. Using genetic and pharmacological tools, including TP53 isogenic lines and ASCT2 inhibitors, we mapped the metabolic compensation networks. This approach revealed that TP53-mutant triple-negative carcinomas were more sensitive to ASCT2 monotherapy than any other subtype. In TP53 wild-type tumors, ASCT2 inhibition triggered SLC7A3-mediated arginine uptake, destabilizing the CASTOR1-GATOR2 complex to sustain mTORC1-driven proliferation. Cotargeting ASCT2 and SLC7A3 overcame resistance in TP53 wild-type models, inducing metabolic collapse and tumor reduction. This work establishes the TP53 mutational status as a potential predictive biomarker for ASCT2 inhibitor responsiveness and defines the SLC7A3-arginine-mTORC1 axis as a targetable compensatory pathway. Therefore, we propose a genotype-guided therapeutic strategy, recommending ASCT2 monotherapy for TP53-mutant tumors and combined ASCT2 and SLC7A3 inhibition for TP53 wild-type cancers. These findings advance precision in targeting glutamine metabolism while providing a blueprint to counter adaptive resistance through rational drug combinations.
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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