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Author Spotlight: Exploring Intrinsically Disordered Protein Dynamics Through NMR Relaxation Experiments
Published on: November 1, 2024
Presence and utility of intrinsically disordered regions in kinases
Jaymin J Kathiriya1, Ravi Ramesh Pathak, Eric Clayman
1Morsani College of Medicine, Department of Pathology and Cell Biology, University of South Florida, Tampa, FL 33612, USA.
Abstract:
Since aberrant cell signaling pathways underlie majority of pathophysiological morbidities, kinase inhibitors are routinely used for pharmacotherapy. However, most kinase inhibitors suffer from adverse off-target effects. Inhibition of one kinase in a pathogenic signaling pathway elicits multiple compensatory feedback signaling loops, reinforcing the pathway rather than inhibiting it, leading to chemoresistance. Thus, development of novel computational strategies providing predictive evidence to inhibit a specific set of kinases to mitigate an aberrant signaling pathway with minimum side-effects is imperative. First, our analyses reveal that many kinases contain intrinsically disordered regions, which may participate in facilitating protein-protein interactions at the kinome level. Second, we employ a kinome-wide approach to identify intrinsic disorder and streamline a methodology that adds to the knowledge of therapeutically targeting kinase cascades to treat diseases. Furthermore, we find that within the kinome network, some kinases with intrinsically disordered regions have a high topological score, likely acting as kinome modulators. Third, using network analysis, we demonstrate that 5 kinases emerge as topologically most significant, forming kinome sub-networks, comprising of other kinases and transcription factors that are known to serve as drivers of disease pathogenesis. To support these findings, we have biologically validated the interplay between kinome modulators SRC and AKT kinases and uncovered their novel function in regulating transcription factors of the SMAD family. Taken together, we identify novel kinome modulators driven by intrinsic disorder, and biologically validate the thesis that therapeutic disruption of the function of kinome modulators engaged in regulatory cross-talk between disparate pathways can lead to reduced oncogenic potential in cancer cells.
Insights
Identifying intrinsically disordered regions in kinases can reveal key targets for cancer therapy. This approach helps disrupt aberrant signaling pathways, reducing side effects and improving treatment efficacy.
Area of Science:
- Biochemistry
- Systems Biology
- Pharmacology
Background:
- Aberrant cell signaling pathways are implicated in most diseases, with kinase inhibitors being common treatments.
- Current kinase inhibitors often cause adverse off-target effects and can lead to chemoresistance due to compensatory feedback loops.
Purpose of the Study:
- To develop computational strategies for identifying specific kinase sets to inhibit aberrant signaling pathways with minimal side effects.
- To explore the role of intrinsically disordered regions in kinase function and their therapeutic potential.
Main Methods:
- Kinome-wide analysis to identify intrinsic disorder and develop a targeting methodology.
- Network analysis to identify topologically significant kinases and kinome sub-networks.
- Biological validation of identified kinome modulators (SRC, AKT) and their downstream targets (SMAD transcription factors).
Main Results:
- Many kinases possess intrinsically disordered regions that may mediate protein-protein interactions.
- Kinases with intrinsically disordered regions and high topological scores act as kinome modulators.
- Five kinases were identified as topologically significant, forming disease-driving sub-networks.
- The interplay between SRC and AKT kinases in regulating SMAD transcription factors was biologically validated.
Conclusions:
- Novel kinome modulators associated with intrinsic disorder were identified.
- Targeting kinome modulators involved in cross-talk between pathways can reduce the oncogenic potential of cancer cells.
- This approach offers a strategy for developing more effective kinase inhibitor therapies with fewer side effects.
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