Abstract
Most patients with muscle-invasive bladder cancer (MIBC) are not cured with platinum chemotherapy. Up-regulation of nuclear factor kappa light-chain enhancer of activated B cells (NF-κB) is a major mechanism underlying chemoresistance, suggesting that its pharmacological inhibition may increase platinum efficacy. NF-κB signaling was investigated in two patient cohorts. The Cancer Genome Atlas (TCGA) was used to correlate NF-κB signaling and patient survival. The efficacy of cisplatin plus the NF-κB inhibitor dimethylaminoparthenolide (DMAPT) versus cisplatin or DMAPT alone was tested in vitro. Xenografted and immunocompetent MIBC mouse models were studied in vivo. Platinum-naive claudin-low MIBC showed constitutive NF-κB signaling and this was associated with reduced disease-specific survival in TCGA patients. Chemotherapy up-regulated NF-κB signaling and chemoresistance-associated genes, including SPHK1, PLAUR, and SERPINE1. In mice, DMAPT significantly improved the efficacy of cisplatin in both models. The combination preserved body weight, renal function, and morphology, reduced muscle fatigue and IL-6 serum levels, and did not aggravate immuno-hematological toxicity compared with cisplatin alone. These data provide a rationale for combining NF-κB inhibition with platinum-based chemotherapy and conducting a clinical trial in MIBC patients.
| Original language | English |
|---|---|
| Pages (from-to) | 2709-2727 |
| Number of pages | 19 |
| Journal | Molecular Oncology |
| Volume | 17 |
| Issue number | 12 |
| DOIs | |
| Publication status | Published - Dec 2023 |
| Externally published | Yes |
Bibliographical note
Publisher Copyright:© 2023 The Authors. Molecular Oncology published by John Wiley & Sons Ltd on behalf of Federation of European Biochemical Societies.
Funding
The authors gratefully acknowledge the patients who agreed to participate in these studies. We acknowledge the expertise and contributions of Magda Moutinho and Antonieta Alvarado (UTAD); Diogo Frias (HV Trofa); and Ana Queiros and Luisa Rocha (CEDIVET) for technical assistance. This work was financially supported by LA/P/0045/2020 (ALiCE), UIDB/00511/2020, UIDP/00511/2020 (LEPABE), and UIDB/04033/2020 funded by national funds through FCT/MCTES (PIDDAC); P30CA015704, P50 CA097186‐19; W81XWH‐17‐1‐0415, W81XWH‐18‐1‐0347, and PI86‐CI‐IPOP‐66‐2017. The authors gratefully acknowledge the patients who agreed to participate in these studies. We acknowledge the expertise and contributions of Magda Moutinho and Antonieta Alvarado (UTAD); Diogo Frias (HV Trofa); and Ana Queiros and Luisa Rocha (CEDIVET) for technical assistance. This work was financially supported by LA/P/0045/2020 (ALiCE), UIDB/00511/2020, UIDP/00511/2020 (LEPABE), and UIDB/04033/2020 funded by national funds through FCT/MCTES (PIDDAC); P30CA015704, P50 CA097186-19; W81XWH-17-1-0415, W81XWH-18-1-0347, and PI86-CI-IPOP-66-2017.
| Funders | Funder number |
|---|---|
| Fuel Cell Technologies Program | |
| Diogo Frias | UIDB/00511/2020, LA/P/0045/2020, UIDP/00511/2020 |
| Ministério da Ciência, Tecnologia e Ensino Superior | P50 CA097186‐19, P30CA015704, PI86‐CI‐IPOP‐66‐2017, W81XWH‐17‐1‐0415, W81XWH‐18‐1‐0347 |
| FCT - Fundação para a Ciência e a Tecnologia | UIDB/04033/2020 |
UN SDGs
This output contributes to the following UN Sustainable Development Goals (SDGs)
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SDG 3 Good Health and Well-being
Keywords
- chemoresistance
- cisplatin
- muscle wasting
- nephrotoxicity
- parthenolide
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