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CD147 supports paclitaxel resistance via interacting with RanBP1
Gang Nan1, Shu-Hua Zhao2, Ting Wang3
1National Translational Science Center for Molecular Medicine & Department of Cell Biology, Fourth Military Medical University, 710032, Xi'an, China.
Abstract:
Though the great success of paclitaxel, the variable response of patients to the drug limits its clinical utility and the precise mechanisms underlying the variable response to paclitaxel remain largely unknown. This study aims to verify the role and the underlying mechanisms of CD147 in paclitaxel resistance. Immunostaining was used to analyze human non-small-cell lung cancer (NSCLC) and ovarian cancer tissues. RNA-sequencing was used to identify downstream effectors. Annexin V-FITC/propidium iodide and terminal deoxynucleotidyl transferase dUTP nick end labeling (TUNEL) staining were used to detect apoptosis. Co-immunoprecipitation (Co-IP), fluorescence resonance energy transfer (FRET) and surface plasmon resonance (SPR) were performed to determine protein interactions. Fluorescence recovery after photobleaching (FRAP) was performed to measure the speed of microtubule turnover. Xenograft tumor model was established to evaluate sensitivity of cancer cells to paclitaxel in vivo. In vitro and in vivo assays showed that silencing CD147 sensitized the cancer cells to paclitaxel treatment. CD147 protected cancer cells from paclitaxel-induced caspase-3 mediated apoptosis regardless of p53 status. Truncation analysis showed that the intracellular domain of CD147 (CD147ICD) was indispensable for CD147-regulated sensitivity to paclitaxel. Via screening the interacting proteins of CD147ICD, Ran binding protein 1 (RanBP1) was identified to interact with CD147ICD via its C-terminal tail. Furthermore, we showed that RanBP1 mediated CD147-regulated microtubule stability and dynamics as well as response to paclitaxel treatment. These results demonstrated that CD147 regulated paclitaxel response by interacting with the C-terminal tail of RanBP1 and targeting CD147 may be a promising strategy for preventing paclitaxel resistant.
Insights
Targeting CD147 protein may overcome paclitaxel resistance in cancer. This study shows CD147 interacts with RanBP1, affecting microtubule dynamics and protecting cells from chemotherapy-induced apoptosis.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Paclitaxel is a vital chemotherapy drug, but variable patient response due to resistance limits its effectiveness.
- The precise mechanisms driving paclitaxel resistance remain largely unknown, hindering optimal clinical application.
Purpose of the Study:
- To investigate the role and underlying mechanisms of CD147 in paclitaxel resistance.
- To identify CD147's interaction partners and their role in mediating resistance.
Main Methods:
- Immunostaining of human cancer tissues (NSCLC, ovarian).
- RNA-sequencing, apoptosis assays (Annexin V, TUNEL), protein interaction studies (Co-IP, FRET, SPR), and microtubule dynamics analysis (FRAP).
- In vitro and in vivo xenograft models to assess paclitaxel sensitivity.
Main Results:
- Silencing CD147 sensitized cancer cells to paclitaxel.
- CD147 protected cells from paclitaxel-induced apoptosis via caspase-3, independent of p53 status.
- The intracellular domain of CD147 (CD147ICD) is crucial for paclitaxel sensitivity.
- CD147ICD interacts with Ran binding protein 1 (RanBP1).
- RanBP1 mediates CD147's effects on microtubule stability, dynamics, and paclitaxel response.
Conclusions:
- CD147 regulates paclitaxel response by interacting with RanBP1's C-terminal tail.
- Targeting CD147 presents a potential strategy to overcome paclitaxel resistance in cancer treatment.
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