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Protein kinase C βII in diabetic complications: survey of structural, biological and computational studies
M Elizabeth Sobhia1, Baljinder K Grewal, Jyotsna Bhat
1National Institute of Pharmaceutical Education and Research, Department of Pharmacoinformatics, Punjab, India. mesophia@niper.ac.in
Introduction:
PKC-βII is a conventional isoform of PKC. It is overexpressed in hyperglycemic conditions and is known to trigger various diabetic complications, mainly cardiovascular complications and to a certain extent nephropathy, neuropathy, retinopathy etc. Selective inhibition of this enzyme will be one of the favorable approaches to treat diabetes-mellitus-related complications. Due to high sequence similarities among PKC isoforms, selective inhibition of PKC-βII is difficult and yet to be achieved successfully.
Areas Covered:
This review discusses the studies carried out in various aspects of PKC-βII. The biological aspects, crystal structure data, structure–activity relationship study (SAR) and in silico studies related to PKC-βII such as homology modeling, molecular docking, molecular dynamics, quantitative structure–activity relationship (QSAR) studies and pharmacophore modeling etc. are summarized.
Expert Opinion:
PKC-βII is a potential target for treating diabetes-related complications. Selective inhibitors of this enzyme are under clinical trials but to date, success has not been achieved. Thus, extensive research is essential in this direction; the contribution of in silico tools in designing and optimizing selective inhibitors of PKC-βII is valuable.
Insights
Protein kinase C beta-II (PKC-βII) is a key target for treating diabetic complications. While selective inhibitors are in trials, achieving success remains challenging, highlighting the need for further research, especially using in silico tools.
Area of Science:
- Biochemistry
- Pharmacology
- Computational Biology
Background:
- Protein kinase C beta-II (PKC-βII) is overexpressed in hyperglycemia, contributing to diabetic complications like cardiovascular issues, nephropathy, neuropathy, and retinopathy.
- Selective inhibition of PKC-βII is a promising therapeutic strategy for diabetes-related complications.
- Achieving isoform-selective inhibition of PKC-βII is challenging due to high sequence homology with other PKC isoforms.
Purpose of the Study:
- To review current research on PKC-βII, focusing on its biological roles and structural characteristics.
- To summarize structure-activity relationship (SAR) studies and in silico approaches for designing PKC-βII inhibitors.
- To evaluate the potential of PKC-βII as a therapeutic target and the role of computational methods in inhibitor development.
Main Methods:
- Review of existing literature on PKC-βII.
- Summary of biological and crystal structure data.
- Inclusion of in silico studies: homology modeling, molecular docking, molecular dynamics, QSAR, and pharmacophore modeling.
Main Results:
- PKC-βII is implicated in various diabetic complications.
- Structure-activity relationship studies provide insights into inhibitor design.
- In silico tools have been applied to understand PKC-βII structure and interactions.
Conclusions:
- PKC-βII remains a significant target for managing diabetes-related complications.
- Selective inhibitors are in clinical trials, but success is not yet achieved.
- In silico approaches are valuable for designing and optimizing selective PKC-βII inhibitors.
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