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P-glycoprotein 1 as a shared target for resensitizing drug-resistant tumor cells and preventing fibronectin-driven
Li-Tzu Huang1, Li-Hsin Cheng1, Chin-Ho Kuo2
1The Institute of Basic Medical Sciences, College of Medicine, National Cheng Kung University, 1 University Road, Tainan 70101, Taiwan.
Rationale:
The exacerbation of chemoresistance and metastasis by synthetic cytotoxic reagents hinders effective cancer therapy, as these events often coincide and lead to poor clinical outcomes, yet are rarely targeted through a shared molecular mechanism. To address this, we established a mechanism-informed natural compound discovery strategy to identify a non-cytotoxic candidate with dual functionality, namely re-sensitizing drug-resistant tumor cells and preventing metastasis.
Methods:
Western blot, RT-qPCR, and flow cytometry were used for evaluating protein and mRNA expression, as well as cell apoptosis, while GC/MS and HPLC analyses for identifying active phytochemicals from extracts of traditional Chinese medicines. Therapeutic potential was validated in multiple mouse cancer models, including K-rasLSL-G12D/+; p53fl/fl mice. Clinical relevance was investigated via meta-analysis of associated gene signatures.
Results:
Mulberroside A (Mul A) from Cortex Mori Radices was identified as an ideal compound that inhibits P-glycoprotein 1 (Pgp1) in adherent tumor cells and pericellular fibronectin (periFN) assembly on suspended tumor cells (STCs), which drive drug resistance and metastasis, respectively. Using a paclitaxel (PTX)-resistant Lewis lung carcinoma cell line, we demonstrated that ERK-dependent Pgp1 functions as a shared upstream regulator of both chemoresistance and metastatic competence. Accordingly, Mul A inhibited Pgp1 mRNA and protein levels in an ERK-dependent manner, thereby differentially restoring PTX sensitivity both in vitro and in vivo, without intrinsic cytotoxicity, and significantly inhibiting lung metastasis by reducing the Pgp1-XIAP-periFN axis in STCs. Oral administration of Mul A achieved these dual anti-cancer effects in both experimental and spontaneous mouse models. Importantly, meta-analysis of clinical datasets further linked co-elevated FN and Pgp1 expression with poor prognosis and relapse in early-stage cancer patients, underscoring the translational relevance of targeting this shared pathway.
Conclusions:
These findings identify Mul A as a promising non-cytotoxic therapeutic candidate and elucidate the shared upstream molecular mechanism linking distinct downstream chemoresistance and metastasis.
Insights
Mulberroside A (Mul A) is a natural compound that re-sensitizes chemoresistant tumors and prevents metastasis by inhibiting P-glycoprotein 1 (Pgp1). This discovery offers a dual-action therapeutic strategy for cancer treatment.
Area of Science:
- Biochemistry
- Molecular Biology
- Pharmacology
Background:
- Chemoresistance and metastasis are major challenges in cancer therapy, often leading to poor clinical outcomes.
- These events are rarely targeted simultaneously due to a lack of understanding of shared molecular mechanisms.
Purpose of the Study:
- To identify a non-cytotoxic natural compound with dual functionality against chemoresistance and metastasis.
- To elucidate the shared molecular mechanism underlying these two processes.
Main Methods:
- Utilized mechanism-informed natural compound discovery.
- Employed Western blot, RT-qPCR, flow cytometry, GC/MS, and HPLC.
- Validated findings in multiple mouse cancer models and clinical data meta-analysis.
Main Results:
- Mulberroside A (Mul A) inhibits P-glycoprotein 1 (Pgp1) and pericellular fibronectin (periFN) assembly.
- Mul A restores sensitivity to paclitaxel in resistant cells and inhibits metastasis by targeting the Pgp1-XIAP-periFN axis.
- Oral administration of Mul A demonstrated dual anti-cancer effects in vivo.
Conclusions:
- Mul A is a promising non-cytotoxic therapeutic candidate for cancer.
- Identified an upstream molecular mechanism linking chemoresistance and metastasis, offering a novel therapeutic target.
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