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Characterize Disease-related Mutants of RAF Family Kinases by Using a Set of Practical and Feasible Methods
Published on: July 17, 2019
Characterization of an activated mutant of focal adhesion kinase: 'SuperFAK'
Veronica Gabarra-Niecko1, Patricia J Keely, Michael D Schaller
1Department of Cell and Developmental Biology, 534 Taylor Hall CB 7090, University of North Carolina, Chapel Hill, NC 27599, U.S.A.
Abstract:
Focal adhesion kinase (FAK) is a non-receptor tyrosine kinase that plays an important role in normal cellular processes such as adhesion, spreading, migration, proliferation and survival. In addition, FAK is overexpressed in a variety of cancer cells and tumours and may play a role in the development of human cancer. As a prelude to modelling the role of aberrant FAK signalling in the initiation of cancer, the goal of the present study was to engineer point mutations in FAK that would enhance enzymic activity. A number of substitutions that were reported as activating mutations in other tyrosine kinases were introduced into FAK. Glutamic acid substitutions for two lysine residues in the activation loop of FAK, based upon the K650E (Lys(650-->)Glu) mutant of fibroblast-growth-factor receptor 3, were made to create 'SuperFAK'. Two brain-specific exons were engineered into avian FAK to create FAK6.7. SuperFAK and, to a lesser extent, FAK6.7, exhibited increased catalytic activity in vitro compared with wild-type FAK. The expression of SuperFAK and FAK6.7 in fibroblasts led to hyperphosphorylation of FAK substrates. Although the catalytic activity of SuperFAK and FAK6.7 was largely independent of cell adhesion, tyrosine phosphorylation of downstream substrates was adhesion-dependent. Further, since SuperFAK exhibited the same ability as wild-type FAK to recruit Src family kinases, tyrosine phosphorylation of substrates was likely due to direct phosphorylation by FAK. In addition to enhanced biochemical signalling, SuperFAK also increased the motility of epithelial cells. SuperFAK and FAK6.7 may be valuable molecular tools to investigate the potential role of aberrant FAK signalling in human disease.
Insights
Engineered focal adhesion kinase (FAK) variants, SuperFAK and FAK6.7, show enhanced activity and promote cell motility. These tools aid research into FAK
Area of Science:
- Biochemistry
- Cell Biology
- Molecular Oncology
Background:
- Focal adhesion kinase (FAK) is a tyrosine kinase crucial for cellular functions.
- Overexpressed FAK is implicated in human cancer development.
- Aberrant FAK signaling is a target for cancer research.
Purpose of the Study:
- To engineer FAK point mutations to enhance its enzymatic activity.
- To create molecular tools for studying FAK's role in cancer initiation.
- To investigate the impact of enhanced FAK activity on cellular processes.
Main Methods:
- Introduced activating mutations from other tyrosine kinases into FAK.
- Created 'SuperFAK' via lysine to glutamic acid substitutions.
- Engineered avian FAK with brain-specific exons to create FAK6.7.
Main Results:
- SuperFAK and FAK6.7 exhibited increased in vitro catalytic activity compared to wild-type FAK.
- Expression of SuperFAK/FAK6.7 in fibroblasts caused hyperphosphorylation of FAK substrates.
- Enhanced FAK variants increased epithelial cell motility, with substrate phosphorylation being adhesion-dependent.
Conclusions:
- SuperFAK and FAK6.7 are valuable tools for investigating aberrant FAK signaling in diseases.
- Enhanced FAK activity can modulate cell motility and downstream signaling.
- Further research is warranted to explore FAK's role in human cancer initiation.
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