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Apigenin Modulates Expression Pattern of Cancer Multidrug Resistance Proteins in Non-Small Lung Cancer Cell Line
1Department of Endocrinology, Sher-i-Kashmir Institute of Medical Sciences, Soura, J&K, India.
Abstract:
Multidrug resistance (MDR), the most common cause of waning in cancer chemotherapy, hampers the effectiveness of available different anticancer drugs in treating this disease. This MDR is triggered by a class of membrane transporter proteins called ATP-binding cassette (ABC) transporters via drug efflux mechanism which is ATP-dependent. P-glycoprotein (P-gp), an ABC transporter is encoded by the MDR1/ABCB1 gene, is normally involved in the expulsion of toxins from normal cells and also confers resistance to certain chemotherapeutic agents. Inhibition of these membrane bound ABC transporters in drug resistant cells to reverse this MDR mechanism is a well-known approach to enhance the safety and efficacy of cancer chemotherapy. The molecular docking studies between apigenin & P-glycoprotein (P-gp)/ABCB1/MDR1 revealed that apigenin possesses greater binding affinity with transmembrane domain (TMD) region of P-gp/ABCB1/MDR1. In this study, pretreatment with apigenin significantly enhanced antiproliferative effect of PTX in NCI-H460 cells. Comparing Rhodamine-123 (Rh-123) drug efflux mechanism studies among the treatment groups, revealed that apigenin significantly and PTX moderately inhibit transport function when compared to control. Additionally, in comparison to control cells, apigenin treatment drastically decreased the mRNA expression levels of ABCB1/MDR1. Furthermore, expression of ABCB1/MDR1 was found to be downregulated during apigenin treatment. In this study, apigenin enhanced cytotoxicity of PTX in NCI-H460 cells. This might be due to enhanced PTX availability as apigenin inhibits membrane transport function. Thus, the present findings illustrate the modulatory role of apigenin on PTX sensitization in relatively resistant NCI-H460 cells.
Insights
Apigenin enhances chemotherapy effectiveness by inhibiting P-glycoprotein (P-gp), a key factor in multidrug resistance (MDR). This natural compound sensitizes cancer cells to drugs like paclitaxel (PTX) by reducing drug efflux and lowering MDR1 gene expression.
Area of Science:
- Biochemistry
- Molecular Biology
- Pharmacology
Background:
- Multidrug resistance (MDR) significantly limits cancer chemotherapy efficacy.
- ATP-binding cassette (ABC) transporters, like P-glycoprotein (P-gp), mediate drug efflux, causing MDR.
- Reversing MDR by inhibiting ABC transporters is crucial for improving cancer treatment outcomes.
Purpose of the Study:
- To investigate the potential of apigenin in overcoming MDR mediated by P-gp/ABCB1.
- To evaluate apigenin's effect on paclitaxel (PTX) efficacy in NCI-H460 lung cancer cells.
- To elucidate the molecular mechanisms underlying apigenin's action on P-gp/ABCB1.
Main Methods:
- Molecular docking simulations to assess apigenin's binding affinity to P-gp/ABCB1.
- In vitro studies using NCI-H460 cells to evaluate apigenin's impact on PTX antiproliferative effects.
- Rhodamine-123 (Rh-123) drug efflux assays to measure P-gp transport function.
- Quantitative real-time PCR to analyze ABCB1/MDR1 mRNA expression levels.
Main Results:
- Molecular docking revealed strong binding affinity of apigenin to the transmembrane domain of P-gp/ABCB1.
- Apigenin pretreatment significantly enhanced the antiproliferative activity of PTX in NCI-H460 cells.
- Apigenin markedly inhibited Rh-123 efflux and significantly reduced ABCB1/MDR1 mRNA expression, indicating P-gp inhibition.
- Apigenin treatment downregulated ABCB1/MDR1 expression, further supporting its role in overcoming MDR.
Conclusions:
- Apigenin demonstrates significant potential as an MDR modulator, enhancing PTX efficacy in NCI-H460 cells.
- Apigenin's mechanism involves direct inhibition of P-gp transport function and downregulation of ABCB1/MDR1 expression.
- These findings suggest apigenin could be a valuable adjunct therapy to improve cancer chemotherapy outcomes.
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