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Updated: Aug 10, 2026

Assessment of Mitochondrial Functions and Cell Viability in Renal Cells Overexpressing Protein Kinase C Isozymes
Published on: January 7, 2013
P-glycoprotein, multidrug resistance and protein kinase C
R L Fine1, T C Chambers, C W Sachs
1Department of Medicine, Duke University Medical Center-Veterans Affairs Medical Center, Durham, North Carolina, USA.
Abstract:
The multidrug resistant (MDR) phenotype is a well-studied subject that has been recognized as a determinant underlying specific types of drug resistance in human cancer. Although it is clear that the P-glycoprotein plays a major role in MDR, it is not clear whether post-translational modifications such as phosphorylation have any major impact on its modulation. The laboratory of Dr. Bruce Chabner was one of the first to describe increased expression and activity of protein kinase C (PKC) associated with the MDR phenotype. Since that time, a similar correlation has been observed in many other MDR cell lines. Most of these studies have been performed with doxorubicin-selected cells that have acquired MDR and have shown increased PKC activity, mainly for PKC-alpha isoenzyme. Intrinsic MDR in human renal cell carcinoma lines has been shown to correlate directly with PKC activity, but further studies with intrinsic MDR cell lines are needed before any conclusions can be drawn. More recent evidence suggests that there is a complex biochemical process by which PKC isoenzymes differentially phosphorylate specific serine residues in the linker region of P-glycoprotein which may lead to alterations in P-glycoprotein ATPase and drug-binding functions. To further complicate matters, PKC plays an important role in anti-apoptotic pathways, which can confound the dissection and elucidation of drug-resistance mechanisms. However, these areas are still under active investigation and not fully answered. Further studies are needed to specifically answer the question of whether PKC directly modulates basal and/or drug-stimulated P-glycoprotein function. This manuscript reviews the majority of the literature on PKC and MDR, as well as offers caveats for interpretation of these studies to answer the above questions.
Insights
Protein kinase C (PKC) activity is linked to multidrug resistance (MDR) in cancer, potentially by altering P-glycoprotein function through phosphorylation. Further research is needed to confirm PKC
Area of Science:
- Biochemistry
- Molecular Biology
- Cancer Research
Background:
- The multidrug resistant (MDR) phenotype is a key factor in cancer drug resistance.
- P-glycoprotein is a major contributor to MDR, but its modulation by post-translational modifications like phosphorylation is not fully understood.
- Early studies linked increased protein kinase C (PKC) expression and activity to the MDR phenotype.
Purpose of the Study:
- To review the literature on the relationship between PKC and MDR.
- To explore the potential role of PKC-mediated phosphorylation in modulating P-glycoprotein function.
- To identify areas requiring further investigation regarding PKC's direct impact on P-glycoprotein.
Main Methods:
- Literature review of studies investigating PKC and MDR.
- Analysis of evidence linking PKC activity to MDR phenotypes in various cancer cell lines.
- Examination of proposed mechanisms of PKC-mediated P-glycoprotein phosphorylation.
Main Results:
- A correlation between increased PKC activity (particularly PKC-alpha) and MDR has been observed in many cell lines, especially doxorubicin-selected ones.
- Evidence suggests PKC isoenzymes differentially phosphorylate P-glycoprotein, potentially affecting its ATPase and drug-binding functions.
- PKC's role in anti-apoptotic pathways may complicate the study of drug resistance mechanisms.
Conclusions:
- While a link between PKC and MDR is evident, the precise mechanisms by which PKC modulates P-glycoprotein function require further elucidation.
- More studies are needed, particularly with intrinsic MDR cell lines, to confirm direct modulation of P-glycoprotein by PKC.
- Understanding the complex interplay between PKC, phosphorylation, and P-glycoprotein is crucial for deciphering cancer drug resistance.
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