Distinct allosteric networks in CDK4 and CDK6 in the cell cycle and in drug resistance
Wengang Zhang1, Devin Bradburn2, Gretchen Heidebrink2
1Cancer Innovation Laboratory, National Cancer Institute, Frederick, MD 21702, U.S.A.
Abstract:
Cyclin-dependent kinases 4 and 6 (CDK4 and CDK6) are key regulators of the G1-S phase transition in the cell cycle. In cancer cells, CDK6 overexpression often outcompetes CDK4 in driving cell cycle progression, contributing to resistance against CDK4/6 inhibitors (CDK4/6i). This suggests distinct functional and conformational differences between these two kinases, despite their striking structural and sequence similarities. Understanding the mechanisms that differentiate CDK4 and CDK6 is crucial, as resistance to CDK4/6i-frequently linked to CDK6 overexpression-remains a significant therapeutic challenge. Notably, CDK6 is often upregulated in CDK4/6i-resistant cancers and rapidly proliferating hematopoietic stem cells, underscoring its unique regulatory roles. We hypothesize that their distinct conformational dynamics explain their differences in phosphorylation of retinoblastoma protein, Rb, inhibitor efficacy, and cell cycle control. This leads us to question how their dissimilar conformational dynamics encode their distinct actions. To elucidate their differential activities, molecular mechanisms, and inhibitor binding, we combine biochemical assays and molecular dynamics (MD) simulations. We discover that CDK4 and CDK6 have distinct allosteric networks connecting the β3-αC loop and the G-loop. CDK6 exhibits stronger coupling and shorter path lengths between these regions, resulting in higher kinase activity upon cyclin binding and impacting inhibitor specificity. We also discover an unrecognized role of the unstructured CDK6 C-terminus, which allosterically connects and stabilizes the R-spine, facilitating slightly higher activity. Our findings bridge the gap between the structural similarity and functional divergence of CDK4 and CDK6, advancing the understanding of kinase regulation in cancer biology.
Insights
Cyclin-dependent kinases 4 and 6 (CDK4 and CDK6) differ in dynamics, impacting cell cycle control and resistance to CDK4/6 inhibitors. Understanding these differences is key to overcoming therapeutic challenges in cancer.
Area of Science:
- Biochemistry
- Molecular Biology
- Structural Biology
Background:
- Cyclin-dependent kinases 4 and 6 (CDK4 and CDK6) regulate the cell cycle G1-S transition.
- CDK6 overexpression drives cancer progression and resistance to CDK4/6 inhibitors (CDK4/6i).
- Distinct functional differences between CDK4 and CDK6 remain poorly understood despite structural similarities.
Purpose of the Study:
- To elucidate the molecular mechanisms differentiating CDK4 and CDK6 activities.
- To investigate how distinct conformational dynamics influence retinoblastoma protein (Rb) phosphorylation and inhibitor efficacy.
- To understand the structural basis for CDK4/6 inhibitor resistance linked to CDK6.
Main Methods:
- Biochemical assays were employed to study kinase activity and inhibitor binding.
- Molecular dynamics (MD) simulations were used to analyze conformational dynamics and allosteric networks.
- Structural analysis focused on the interplay between key regions like the β3-αC loop and G-loop.
Main Results:
- CDK4 and CDK6 exhibit distinct allosteric networks, with CDK6 showing stronger coupling between the β3-αC loop and G-loop.
- CDK6 displays higher kinase activity upon cyclin binding due to enhanced allosteric communication.
- An unstructured C-terminus in CDK6 allosterically stabilizes the R-spine, contributing to its activity and potentially inhibitor specificity.
Conclusions:
- Differential conformational dynamics explain the functional divergence of CDK4 and CDK6.
- Understanding these dynamics is crucial for developing effective CDK4/6 inhibitors and overcoming resistance.
- Findings provide insights into kinase regulation and therapeutic strategies for CDK4/6i-resistant cancers.
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